IL71528A

Methods and apparatus for injection molding and injection blow molding multi-layer articles and the articles made thereby

Abstract

This record has no abstract on file.

IL71528A, drawing sheet 1
Sheet 1 of 84

Term

No projected expiry on record.

  1. Priority
  2. Filed
  3. Published
  4. Today

410 claims: 167 independent, 243 dependent

  1. 1
    A method of forming multi-layer plastics articles wherein said method involves use of a multi-cavity injection molding machine, characterised in that a combined multi-layer material stream is injected from each of a plurality of co-injection nozzle means of said machine into an associated injection cavity to fonn each article, said method being further characterised by:- providing polymeric materials to fonn layers of the articles, and moving streams thereof separately to each of the nozzle means, - forming in the plural nozzle means combined multi-layer streams, which are e.g. substantially identical, from the separate material streams, and - injecting the combined multi-layer streams to form the multi-layer plastics articles.
  2. 5
    A method according to any of claims 1 to 4, further characterised by the forming step including effecting substantially simultaneous control of flow and non-flow of the corresponding material streams.
  3. 6
    A method according to claim .5, characterised by said control being effected by operation of positively substantially identical flow conditions. 5. A method according to claim 2 or claim 4, characterised by the substantially identical flow conditions being obtained by providing flow paths of substantially identical configuration for each corresponding material stream. 6. A method according to claim 2 or claim 4, character!sed by said substantially identical flow conditions being obtained by providing substantially the same flow path and experience for each corresponding material stream.
  4. 7
    A method according to any of claims 1 to 6, further character!sed by the forming step including effecting substantially simultaneous control of flow and non-flow of the corresponding material streams.
  5. 9
    A method according to any of claims 1 to 6, further characterised by the forming step including positively effecting the initiation and termination of flow of the corresponding material streams substantially simultaneously in said nozzle means.
  6. 11
    A method according to any of claims 1 to 10, for producing articles having at least three layers and characterised by the steps of forming each of said combined streams from material streams corresponding to two of said layers while preventing material corresponding to another layer from flowing, raising the pressure of the arrested material to a level above the pressure of the combined two layer stream, and establishing flow of the so pressurized material so that it forms with the other material streams a ‘multi-layer combined stream having at least three layers.
  7. 14
    A method according to any of claims 11 to 13, characterised in that the pressure is imparted by a common pressure source while said materials are arrested by a positive blocking thereof, and flow of the so-pressurized materials is effected substantially simultaneously in nozzles by positive unblocking of said materials.
  8. 15
    Apparatus for forming a plurality of multi-layer plastics articles, comprising a plurality of co-injection nozzle means (296) for injecting materials into associated cavities (102) to form the articles and means (208 to 212) for providing streams of materials for injection to form corresponding layers of the articles, characterised by means (288,294) associated with the nozzle means to channel the material streams separately from one another to each of the nozzle means (296), means (232, 234, 252, 260, 262) for moving the material streams along their respective channels to the respective nozzle means (296), and means (540, 462, 482, 502, 522) for combining in each nozzle means the streams moved thereto, to form substantially identical combined streams in the said nozzle means (296), for injection into their associated injection cavities (102) to form said articles.
  9. 16
    Apparatus for forming a plurality of multi-layer plastics articles, comprising a plurality of co-injection nozzle means (296) for injecting materials into associated cavities (102) to form the articles and means (208 to 212) for providing streams of materials for injection to form corresponding layers of the articles, characterised by means (288,294) associated with the nozzle means to channel the material streams separately from one another to each of the nozzle means (296), means (232, 234, 252, 260, 262) for moving the material streams along their respective channels to the respective nozzle means (296), and means (540, 462, 482, 502, 522) for combining in each nozzle means the streams moved thereto, to form combined streams in the said nozzle means (296), for injection into their associated injection cavities (102) to form said articles.
  10. 18
    Apparatus according to any of claims 15 to 17, characterised in that the channelling (288, 294) and moving means (232, 234, 252, 260, 262) are operative to subject corresponding material streams entering the plural nozzle means to substantially identical flow conditions.
  11. 21
    Apparatus according to any of claims 15 to 20, characterised by means (e.g. 800, 860, 856;834, 844, 850) to effect substantially simultaneous control of the flow or non-flow of the corresponding material streams in the plural nozzle means (296).
  12. 23
    Apparatus according to any of claims 15 to 20, characterised by means (e.g. 800, 860, 856;834, 844, 850) operative to effect positive initiation and termination of flow of the corresponding material streams substantially simultaneously in the plural nozzle means (296).
  13. 25
    Apparatus according to any of claims 15 to 23, for use to produce articles having at least three layers, characterised in that each of the nozzle means (296) have, associated therewith, flow controlling means (800, 834) to prevent flow of a corresponding one of the materials (e.g. C) to form a corresponding layer of the articles, and means (252) to raise the pressure of the arrested material to a level above the pressure of the materials (e.g. A, B, etc.) which are to form other corresponding layers of the articles, the flow-controlling means (800, 834) being operable when the said material (C) has been so pressurized to establish flow of the said material for providing the multi-layer combined stream having at least three layers, one of which is formed by the said material (C).
  14. 28
    Apparatus according to any of claims 25 to 27, characterised in that said flow controlling means (800, 834) provide positive blocking of the material (e.g. C) controlled thereby while said material is pressurized, and means (850, 856) is provided to operate the flow controlling means (800, 834) for all the plural nozzle means substantially simultaneously to effect a positive unblocking of the pressurized material, thereby to establish onset of flow thereof substantially simultaneously in all the nozzle means (296).
  15. 29
    Apparatus according to any of claims 25 to 28, characterised in that the plural nozzle means have flow control means operative to control flow and/or non-flow of at least two material streams.
  16. 30
    Apparatus according to any of claims 25 to 29, characterised in that each flow control means is or are substantially identical in the plural nozzle means.
  17. 31
    A method of injection molding a plurality of substantially identical plastics articles characterised by injection of substantially identical multi-layer combined polymeric material streams from a plurality of co-injection nozzle means each having a central channel, into a plurality of juxtaposed injection cavities, and further characterised by the steps of:. - 281 feeding separately each nozzle means with a melt stream of polymeric material for each layer of the articles to be formed, the separate streams of each material being fed along substantially identical flow paths to the several nozzle means, positively blocking corresponding melt streams from entering the central channel of each nozzle means substantially simultaneously, pressurizing the positively blocked corresponding melt streams in the different nozzle means, substantially simultaneously removing the blockage to allow the corresponding melt streams to flow substantially simultaneously into the central channels and be injected into the juxtaposed injection cavities, and thereafter substantially simultaneously positively blocking flow of each corresponding stream substantially simultaneously to terminate the injections and complete the injection operation.
  18. 32
    A method of injection molding a plurality of substantially identical articles substantially simultaneously, characterised by feeding a plurality of polymeric melt streams to a plurality of substantially identical co-injection nozzles means for co-injection to form plural multi-layer articles, and further characterised by the steps of providing a melt stream of polymeric material for each of the corresponding layers of the articles to be formed, feeding the melt streams to the plurality of nozzle means such that the material streams to form corresponding layers in the articles pass along separate, substantially equal flow paths to the nozzle means, applying substantially identical pressures to the corresponding melt streams to establish substantially identical flows of the corresponding materials to and from each nozzle means, positively effecting the initiation, flow and termination of flow of the corresponding materials substantially identically in all the nozzle means by employing substantially identical valve means in the nozzle means, and operating all the valve means substantially simultaneously and Identically.
  19. 35
    A method according to any of claims 31 to 34, characterised by pressurizing the corresponding material streams substantially simultaneously.
  20. 36
    A method of injection molding suitable for use in producing at least three layer, e.g. five layer multi-material plastics articles, such as containers having side walls with marginal end portions, and those total side wall thicknesses below the marginal end portions average from 1.010 inch to 0.035 inch (0.25 to 0.89 mm), characterised by:providing a source of supply of each polymer melt material which is to form a layer of the container, establishing an advancing flow of each polymer melt material from the source thereof towards a plurality of co-injection nozzle means, channelling each advancing flow into separate flow streams to the nozzle means, and bringing the separate flow streams arriving at each nozzle means together as a combined flow stream having at least three materials therein for co-injection from the nozzle means into associated juxtaposed cavities.
  21. 37
    The method according to claim 37, characterised by using valve means operative in or for each of the nozzle means for controlling the combining of the separate streams fed to each nozzle means. 38. The method according to claim 36 or claim 37, characterised in that valve means in a central channel of each nozzle means is employed for positively controlling flow and non-flow of the respective materials into the central channel, there to form the combined multi-material, multi-layer flow stream.
  22. 41
    42. The method according to claim 41, characterised by splitting the advancing flows and, from the points whereat the flows are split, establishing for all of the separate split flow streams, paths and flow experiences which are substantially identical for the corresponding material streams.
  23. 42
    43. The method according to any of claims 36 to 40, characterised by the providing of the flow stream travel path and experience is from each stream's origination point.of continuous flow in an injection shot, to within each nozzle means.
  24. 43
    44. The method according to any of claims 36 to 43, further characterised by the step of injection blow molding to form an article, such as a container, whose total side wall thickness averages from 0.012 inch to 0.030 inch (0.30 to 0.76 mm).
  25. 44
    45. The method according to any of claims 36 to 44, characterised by the use of four co-injection nozzle means, one at each corner of a foursided pattern, and by the steps of bringing the separate polymer material streams close to each other in a pattern in substantially the same horizontal and axial plane wherein they are transaxially offset from each other and between the four nozzle means, and directing each flow stream to the respective nozzle means.
  26. 45
    46. The method according to any of claims 36 to 44, characterised by the use of eight nozzle means, aligned in a pattern of two rows each having four nozzle means therein, the rows being positioned along respective elongated sides of a rectangle and by the steps of bringing the separate flow streams of polymer material into substantially horizontal alignment along a plane centered in the rectangle between the parallel rows of nozzle means, then into horizontally and axially respectively displaced alignment, then outward towards the narrow ends of the rectangle to the center of each of the upper and lower patterns of four nozzle means, T-splitting at each side center each of the polymer streams into two opposite horizontal streams each of which extends to a point between the point at which the streams were T-split and the respective adjacent two nozzles on either side of the pattern, and, at such latter point Y-splitting the respective streams into divergent streams, and directing each stream to a respective one of the eight nozzle means.
  27. 46
    47. The method according to any of claims 36 to 46, characterised by bringing the separate flow streams together into combined streams in combining areas of the respective nozzle means.
  28. 47
    48. A method according to any of claims 36 to 47, characterised by establishing the combined streams in the nozzle means such that the combined streams have the same mass flow characteristics.
  29. 48
    49. An injection molding apparatus for injection molding multi-layer, multi-material plastics articles, characterized by (1) a plurality of injection cavities (102) on a mounting member, a plurality of co-injection nozzle means (296) juxtaposable with the cavities, and (ii) means for abutting the juxtaposed nozzles and injection cavities, (Hi) a source (202) of polymeric material located upstream of the nozzle means (596) for each material which is to form a layer of the article, characterised by (iv) each of the nozzle means having a central channel (540), and polymer flow stream passageways (450, 460, 480, 500, 520) in communication with the central channel, said central channel having an open end with a gate (596) and a polymer material combining area (546) in communication with the passageways and the gate, (v) means (232, 234, 252, 260, 262) located upstream of the nozzle means (296) for displacing the polymer materials to form the layers of the articles from their sources to respective passageways, via separate flow channels (e.g. 250) for each polymer material, and for pressurizing said material in its passageway, (vi) flow channel splitter means (290, 292) in each flow.channel (e.g. 220) downstream of its associated displacement and pressurizing means, for splitting the flow channel into a plurality of separate branched flow channels (708, 709;350, 351;352, 353;356, 357), there being a separate branched flow channel for each material which is to form a layer of the article, (vii) means (294) in communication with a branched flow channel for each material for separately feeding each separate polymer material to it associated nozzle means (296), the flow channels, branched flow channels and feeding means providing for each corresponding polymer travel paths to all the nozzle means which are of substantially identical configuration and length, (viii) valve means (800, 834) cooperatively associated with each of the nozzle means, each valve means being operative in the combining area (546) of the central channel of the associated nozzle means, (ix) drive means (860, 856;844, 850) for driving all the valve means substantially simultaneously and substantially identically within the central channels of their respective nozzle means (296) to provide substantially simultaneous and identical control over the initiation, regulation, and termination of the flows of the polymer materals through all the nozzle means, and (x) control means (2040) connected to the drive means for moving all the valve means (800, 834) in a predetermined mode which provides the substantially identical simultaneous movements of the separate valve means in their respective co-injection nozzle means (296).
  30. 49
    50. Apparatus according to claim 49, characterised in that the valve means is comprised of (a) an open-ended elongated sleeve (800) having a close tolerance slip fit within the nozzle central channel (540) and a port (804) in its wall opening to an elongated central passageway (820) leading to the open end (812), and (b) an elongated pin (834) mounted for relative axial movement within the central channel passageway of the sleeve and having a close tolerance slip fit within the passageway (820) sufficient to prevent any significant accumulation or passage of polymer melt material between the pin and the sleeve, the elongated sleeve being a close tolerance slip fit within the central channel of the nozzle likewise to prevent any significant accumulation or passage of polymer material between the nozzle (296) and the sleeve (800).
  31. 52
    53. Apparatus according to any of claims 49 to 52, characterised in that the valve means (800, 834) and drive means (860, 856;844, 850) are operative at the end of an injection cycle whereby the valve means is moved in the combining areas to clear melt materials therefrom and thereafter block the materials from flowing from the passageways (450, 460, 480, 500, 520) into the central channels (540) of the nozzle means.
  32. 53
    54. Apparatus according to any of claims 49 to 53, characterised in that the flow channels (e.g. 220), branched flow channels, feeding means (232, 234, 252, 260, 262) and nozzle means (296) are adapted to provide substantially the same polymer stream flow path in terms of distance, diameter, restrictions, and pattern of flow for each corresponding material in its corresponding flow channels (e.g. 220), branched channels and nozzle passageways (e.g. 450) for forming a corresponding layer of each multi-layer article injected from each nozzle means (296).
  33. 54
    55. Apparatus according to any of claims 49 to 54, characterised in that said cavities are for molding parisons and said apparatus includes plurality of blow mold cavities (108) wherein said parisons are inflated into containers.
  34. 55
    56. Apparatus according to any of claims 49 to 54, wherein said cavities (102 or 108) are shaped to define articles in the form of containers.
  35. 56
    57. Apparatus according to any of claims 49 to 56, characterised in that each passageway (e.g. 500) of the plurality thereof has an orifice (502) which communicates with the central channel (540) of the associated nozzle means and at least one of the passageways (e.g. 500) is tapered to converge toward its orifice.
  36. 57
    58. Apparatus for injection molding multi-layer, multi-material plastics containers, characterised by a plurality of injection cavities (102) on a mounting member (104), a plurality of co-injection nozzles (296) on a juxtaposable mounting member (288), said cavities and nozzles being operative to form containers having side walls with portions below the marginal end portions of the containers which are 0.010 inch to 0.035 inch (0.25 to 0.89 mm), the apparatus being further characterised by a source (e.g. 202) of polymer material located upstream of the nozzles, for each material which is to form a layer of each multi-layer container, means (232, 234, 252, 260, 261) for each polymer material to form a layer of the container, to move streams of the materials towards the nozzle means, a flow channel (e.g. 220, 222, 250, 257, 258) for each stream of polymer material to form a layer of the container, each flow channel for each stream of material extending from each of the pressurizing and moving means to each nozzle means, the flow channels being separate from one another and providing substantially identical polymer flow stream travel paths and experience for each polymer stream of the same material channelled to each nozzle means (296).
  37. 58
    59. The apparatus according to claim 58, characterised in that there are fewer sources (202, 204,206) than pressurizing and moving means, there are polymer stream flow channels between and communicating with the respective sources and moving means, and wherein the flow channel (e.g. 217) from at least one source (202) is split such that each of the split flow channels (220, 222) communicates with a respective moving means (232, 234), and the paths of the split flow channels for the same material between the sources and respective moving means are substantially the same.
  38. 60
    61. The apparatus according to any of claims 58 to 60, characterised in that adjacent, between and equidistant from the plurality of nozzle means are means for arranging the respective channels (220, 222, 250, 257, 258) in a linear pattern, means (276, 290, 292) for splitting each linearly-arranged channel into sets of branched flow channels (700 to 709), means (294) for rearranging each set of said linearly-arranged branched flow channels and aligning them in a direction substantially parallel to the axis of each of the nozzle means (296), and means for directing each of said linearly-arranged, axially-aligned branched flow channels toward each of the respective nozzle means (296) so as to communicate therewith.
  39. 61
    62. The apparatus according to claim 61, characterised in that there are eight nozzles (296) arranged in a rectangular pattern of two columns of four equidistant nozzle means in each column with a nozzle means at each corner of said rectangular pattern, the aligned pattern of flow channels is located axially along a line between the middle set of four nozzle means of said rectangular patterns, and, from said vertical axially-aligned and offset pattern which is parallel to the axis of each of the nozzle means, each of said channels is directed to, and the apparatus includes, first splitting means (290) for splitting each of said channels (e.g. 350, 351) into T-split channels (e.g. 352 to 355) flowing in opposite directions and communicating with, and the apparatus includes, second splitting means (292) which Y-split each of the respective T-split channels (e.g. 352) into two diagonally divergent Y-split channels (e.g. 358, 359) one of which communicates with one, and the other of which communicates with the other of the two respective nozzles near the top on each one side, and the opposingly Y-split channels likewise communieating with the two nozzle means on the other side of the lowermost and uppermost nozzle means of the rectangular pattern.
  40. 62
    63. The apparatus according to any of claims 58 to 62, characterised by valve means (800, 834) operative in the nozzle means (296) for controlling the flow and non-flow of the polymer materials from the nozzles into the injection cavities (102). 64. The apparatus according to claim 63, characterised in that the valve means includes an elongated sleeve (800) having a side wall with a port (804) therein, an open end (812), and an elongated central passageway (820) in communication with the port and the open end, and an elongated pin (834) mounted and adapted to axially reciprocate within the sleeve central passageway (820) and having a side wall whose outer surface is adapted to close and open said port and is in a close tolerance slip fit within said central passageway (820),
  41. 63
    65. A nozzle apparatus for injection molding a multi-layer article, characterised by having a gate (596) at one end, and a central channel (540) in communication with the gate, at least three polymeric melt material flow stream passageways (440, 460, 500) in communication with the central channel (540) each through an associated orifice, a first of said orificies (462) being more proximate the gate (596) than the other orifices, and a third of said orifices (440) being disposed more remotely from the gate than the other orifices, and the nozzle apparatus further including valve means (800, 834) moveable in the nozzle central channel (540) and operative to block and unblock the orifices and thereby selectively prevent and allow flow of polymeric melt materials through the orifices (462, 502, 440) into the central channel for injection.
  42. 66
    69. The nozzle apparatus according to any of claims 66 to 68, characterised by the valve means being also adapted in one position to block the second orifice (502) while all other orifices are not blocked, and in another position to block all orifices except the second orifice.
  43. 69
    72. The nozzle apparatus according to any of claims 65 to 71, further characterised by means (232, 252, 234) removed from the co-injection nozzle for moving polymeric melt material to each of the nozzle passageways (440, 460, 500), and for reducing the flow of polymeric material through the third orifice (440) while the valve means (800, 834) is in a position wherein neither the second nor the third orifice is blocked.
  44. 70
    73. The nozzle apparatus according to any of claims 65 to 72, further characterised by the valve means comprising an elongated sleeve (800) having an open end (812) and a port (804) in its wall opening to an elongated central passageway (820) in the sleeve, the sleeve being mounted within the nozzle central channel (540) in a close tolerance slip fit at least adjacent the first orifice (462) and sufficient to prevent significant accumulation or passage of polymeric material therebetween, and an elongated pin (834) mounted within the sleeve in a close tolerance slip fit within the central passageway (820) of the sleeve sufficient to prevent significant accumulation or passage of melt material between the pin and the sleeve central passageway;the said sleeve being adapted to reciprocate axially within the nozzle central channel (540) and operative to block and unblock said first and second orifices (462, 502) and to bring its port (804) into and out of alignment with said third orifice (440) and the pin (834) being adapted to reciprocate axially within the sleeve to block and unblock the said port (804) when the port is aligned with the third orifice.
  45. 80
    83. The nozzle apparatus according to claim 80, characterised in that the central channel (540) has a uniform cross-sectional area at least from the first passageway orifice (462) to the second passageway orifice (502).
  46. 85
    88. An injection molding machine for injection molding a plurality of plastics articles which comprises, sources (e.g. 202, 204, 206) of polymer materials for the layers of the article, runner means (278, 289) extending downstream of the sources of polymer materials to each of a plurality of co-injection nozzle apparatuses each according to any of claims 65 to 87 and each mounted in the front of the runner means, said runner means including a plurality of polymer flow stream channels (220, 222, 250, 257, 258) therein each for separately channelling a polymer melt material which is to form a layer of the article, from the source to each of the injection nozzles (296), and means (232, 234, 252) for moving each stream of polymer material through the flow channels and into the respective nozzles, the valve means (800, 834) within the respective nozzles being operative to control the flow of the respective polymer melt materials from said passageways into the central channel (540) of the injection nozzles for the injection of combined streams of said materials as simultaneous shots from the nozzles into juxtaposed injection cavities (102).
  47. 86
    89. Apparatus for an injection molding machine, which is characterised by a co-injection nozzle means (296) having a central channel (540) with an open end, a gate (596) at the open end, and two polymeric material melt flow stream passageways (440, 450;460) each having an orifice (440, 462) in communication with the central channel, the apparatus having a channel (220, 222) for each melt flow stream, each channel communicating with a respective passageway, common means (214, 232, 234) in communication with each passageway for moving both polymeric material melt flow streams through their channels, passageways and orifices, and valve means (800, 834) mounted in the central channel (540) and operative to block, partially block and unblock the orifices.
  48. 91
    94. The apparatus according to claim 91, characterised in that the valve means (800, etc.) operative in each nozzle means (296) includes an elongated axially reci procable sleeve (800) seated in a close tolerance slip fit within the central channel (540), the sleeve having a central passageway (82), a forward open end (812) to communicate with the central channel and a port (804) in its wall to communicate with the third passageway orifice, the sleeve (800) being adapted to block and unblock the first, second, fourth and fifth orifices (462, 502, 482, 522), and an elongated pin (834) mounted axially reciprocably within the sleeve central passageway (820) in a close tolerance slip fit, said sleeve and pin being cooperatively associated and adapted to be moved to different respective positions, so that in one position, said third passageway orifice (440) is blocked while the first orifice (462) is not blocked, in another position, the third orifice is partially blocked but the first orifice is not blocked, and in yet another position the fourth orifice (482) is blocked but not the first, second and third orifices.
  49. 92
    95. Apparatus according to any of claims 89 to 94, characterised by a plurality of substantially identical co-injection nozzle means (296) having passageways (e.g. 440, 450;460) for plural melt streams (B, A) which are to form corresponding respective layers of a plurality of injection molded articles, the apparatus having means (214, 252) common to and in communication with the passageways for each of at least two melt streams operative to move said at least two melt streams to each of the plural nozzle means (296), and each nozzle means having valve means (800, etc.) to block, unblock, partially block flow through the passageways for said at least two melt streams, said valve means (800, etc.) preferably being substantially identical and preferably operable substantially simultaneously.
  50. 93
    96. A co-injection nozzle means for co-injecting a five layer plastic article, characterised by having an open end, a gate (596) at the open end, a cylindrical central channel (540) in communication with the gate, and five polymer flow stream passageways (440, 450;460;480;500, 520), each having an orifice (440, 462, 482, 502, 522) in communication with the central channel and each adapted for passing a melt flow stream of polymeric material through the orifice into the central channel for forming a layer of the article, there being a first passageway (460) having its orifice (462) more proximate to the gate (596) than any other orifice, for passing a melt stream of structural material (B) into the central channel for forming the outside surface layer of the article, a second passageway (500) for passing a melt stream of material (C) into the central channel for forming an internal layer of the article, a third passageway having its orifice (440) more remote from the gate (596) than any other orifice for passing a melt stream of structural material (A) into the central channel for forming the inside surface layer of the article, a fourth passageway (480) between the first and second passageways for passing a melt stream of polymeric material (E) into the central channel for forming an intermediate layer between the outside surface layer and the internal layer of the article, and a fifth passageway (520) between the second passageway and the third passageway for passing a melt stream of material (D) into the central channel for forming an intermediate layer between the internal layer and the inside surface layer of the article, and further characterised by valve means (800, etc.) for the nozzle means (296) and operative adjacent at least the second orifice (502) and the third orifice (440) and adapted at the same time to block the second orifice and not block the third orifice.
  51. 96
    99. The co-injection nozzle means according to claim 96 or 97, characterised in that valve means is operative with respect to all five of the orifices and is adapted to block the second, fourth and fifth passageway orifices (502, 482, 522) while said valve means does not block the third passageway orifice (440).
  52. 98
    101. The co-injection nozzle means according to any of claims 96 to 100, further characterised in that the first, second, fourth and fifth nozzle passageways (460, 480, 500, 520) are tapered towards their respective orifices (462, 482, 502, 522) such that each tapered passageway has a greater gap at an adjacent location remote from the orifice and a smaller gap at the orifice.
  53. 99
    102. A method of injection molding characterised by forming a multi-layer combined stream of a plurality of polymer materials in injection nozzle means such that leading edges of the respective layers in the combined stream lie in planes in the nozzle which are substantially unbiased when viewed in vertical cross-section, the method involving the use of a co-injection nozzle having a central channel with a gate at one end, and at least first, second and third passageways, each having an orifice communicating with the central channel, there being one passageway for each layer to be formed in the combined stream, the first passageway orifice being more proximate the gate than the other passageway orifices for flow of the polymer material to form the outside layer of the combined stream, the third passageway orifice being remote from the gate for flow of the polymer material which will form the inside layer, and one or more second passageway orifices intermediate the first and third passageway orifices for flow of one or more polymer materials to form the internal layer or layers of the stream, the nozzle means further including valve means operative in the central channel for blocking the flow of polymer material from the orifices into the central channel, and for independently and selectively controlling the flow of polymer materials from the orifices, and the method involves the steps of operating the valve means for:preventing flow from all of the orifices, preventing the flow of polymer material from the second passageway orifice or orifices, while allowing flow of material from the third orifice, the first orifice, or both the third and first orifices, and allowing flow of material through the second orifice or orifices while allowing material to flow through the third orifice or both the third and first orifices.
  54. 103
    106. A method of making a multi-layer article by forming a substantially concentric combined stream of at least three polymeric materials and injecting said stream into a cavity to form the article, which has outside, at least one internal and inside layers formed from respective streams of the combined stream, namely an outer melt stream, at least one internal melt stream, and a core melt stream, the method being characterised by the use of a co-injection nozzle means having a gate at one end, a cylindrical central channel in communication with the gate, and at least three polymer passageways each communicating with the central channel by way of respective orifices, namely a first orifice located more proximate the gate than the other orifices, for routing the outer stream into the channel, a third orifice further removed from the gate than the other orifices for routing the core stream i nto the channel, and at 1 east one second ori fi ce positioned between the first and third orifices, for routing at least one internal stream into the channel, the nozzle further including valve means operative adjacent the orifices and adapted to prevent and to allow the flow of the internal stream(s) through the second orifice(s), and for independently controlling the flow or non-flow of the core stream through the third orifice, the method being further characterised by operating the valve means in the nozzle means (a) preventing flow of the internal stream(s) through the second orifice(s) while allowing flow through the first, the third, or both the first and third orifices, and then, (b) allowing flow through the second orifice(s) while allowing flow through the third orifice.
  55. 107
    110. The method according to any of claims 106 to 109, characterised in that before the flow preventing step (a), there is included the step of utilizing the valve means for preventing flow of polymeric material from all of the orifices.
  56. 110
    113. The method according to any of claims 106 to 112, further characterised by a step of substantially knitting in the nozzle means the internal melt stream material with itself through the core material, and by moving the valve means forward through the central channel toward the gate to assist in knitting the internal layer material.
  57. 113
    116. The method according to any of claims 106 to 115, characterised in that after flow-allowing step (b) there is included the steps of utilizing the valve means for allowing the flow of materials from all the orifices and then for preventing the flow from all the orifices, and the time elapsed between these allowing and preventing steps is from 60 to 700 centiseconds, preferably from 60 to 250 centiseconds.
  58. 117
    120. The method according to claim 117, 118 or 119, further characterised by including the step of moving the valve means through the central channel towards the gate during step (v) to assist in knitting the internal layer material.
  59. 119
    122. The method according to any of claims 117 to 121, characterised in that during step (iii) material is allowed to flow through the first orifice, and steps (ii) and (iii) are performed within 250 centiseconds, preferably within 100 centiseconds.
  60. 122
    125. A method according to any of claims 106 to 124, further characterised by a step of forming the combined stream wherein the leading edge of the one or more internal layer{s) is substantially unbiased relative to a vertical plane drawn perpendicularly and transaxially through the shot.
  61. 123
    126. The method according to any of claims 102 to 125 further characterised by practicing the method to form a plurality of combined streams in a plurality of the co-injection nozzle means and injecting the said streams'with a plurality of associated injection cavities, the nozzle means preferably including valve means which are substantially identical and are preferably operable substantially simultaneously.
  62. 124
    127. A method of injection molding to produce an article, such as a parison, having a wall composed of at least three layers, wherein melt material streams to form said layers are injected into a mold cavity through a co-injection nozzle having a central channel, at least three melt stream passageways each with an orifice which communicates with the central channel, the method being characterised by the use of a nozzle containing valve means in the central channel, and further characterised by the steps of moving the valve means to a first position to prevent flow of the melt material streams into the nozzle central channel, moving the valve means to a second position to permit the flow of a first material stream into the nozzle central channel, moving the valve means to a third position to permit continued flow of said first material stream and to permit flow of a second material stream into the nozzle central channel, and moving the valve means to a fourth position to permit continued flow of said first and second streams, and to permit flow of a third material stream into the nozzle central channel between the first and second streams.
  63. 130
    133. Co-injection nozzle means for a multi-polymer injection blow molding machine for co-injecting at least three streams of melt materials to form a multi-layer article therefrom, the nozzle means (296) having a cylindrical central channel (1546) open at one end with a gate (596) at the open end and in communication with the central channel, the nozzle means being characterised in having at least two passageways (460, 500) each with an annular orifice (462, 502) close to the gate (596) and a third passageway (440, 450) with an orifice (440) remote from the gate, al) said passageways being in communication with the central channel (1546) by way of their orifices, the first orifice (462) being proximate the gate, and the second orifice (502) being adjacent the first orifice, each of these orifices having its center line in a plane substantially perpendicular to the axis of the central channel and each of these orifices being defined by a leading lip (e.g. 461) close to the open end and a trailing lip remote from the open end, and the nozzle central channel (1546) having two cylindrical portions, the first portion (595) extending from the gate (596) to the leading lip of the first orifice (462), and the second portion (766) extending from the trailing lip of the first orifice in an upstream direction to at least the trailing lip of the second orifice, said first portion (595) being of smaller diameter than the second portion, and the nozzle means being further characterised by valve means in operative association with the nozzle central channel and the orifices, the valve means including:(1) an elongated sleeve (8000 1 ) having an open end (812), a port (8040) in its side wall and an elongated central passageway (1820) in communication with the port and the open end, the sleeve being mounted within the nozzle central channel (1540) in a close tolerance slip fit within the second portion (766) of the central channel sufficient to prevent significant accumulation or passage of polymer material, the said sleeve further having an outer surface portion (1835) of a diameter which provides a close tolerance slip fit within the first portion (595) of the nozzle central channel, and the sleeve being capable of blocking each of the first and second orifices (462,502), and (ii) an elongated pin (1834) mounted within the central passageway (1820) of the sleeve (8000*) in a close tolerance slip fit within the central passageway of the sleeve sufficient to prevent significant accumulation or passage of melt material between the pin and the sleeve, the sleeve being adapted to reciprocate axially within the nozzle central channel (1540) to block and unblock said first and second orifices (462, 502) and to bring said port (804) into and out of alignment with said third orifice (440) and the valve means being capable of clearing the central channel first portion (595) of polymer melt material at the end of an injection cycle and to prevent back flow of polymer material into the said orifices.
  64. 133
    136. The co-injection nozzle means according to any of claims 133 to 135, characterised in that the said valve means are adapted to move forward toward the gate (596) sufficient!fy to clear a combining area of the nozzle of polymer material, and the pin (1834) and sleeve (8000') are such that said pin is capable of being positioned with its forward end axially offset upstream from the forward end of the sleeve and further characterised in that the pin and sleeve together are axially moveable forward through the central channel, with the offset position of said pin forward end providing an accumulation area in the forward end of the sleeve for accumulation of polymer melt material, for pushing said material forward through the channel when said channel is cleared by the clearing action of said pin and sleeve.
  65. 134
    137. Co-injection nozzle means for a multi-polymer injection molding machine, the co-injection nozzle means having a central channel, an open end with a gate at the open end, the nozzle means (296) being characterised by:(i) at least three passageways.(460, 480, 500) each having an orifice (462, 482, 502) for discharging melt material into the central channel (1546), each orifice being annular and encircling the periphery of the central channel, a leading edge of each orifice and the center line for each orifice being perpendicular to the axis of the central channel, the first passageway orifice (462) being most proximate the gate, the third passageway orifice (502) being most proximate the gate, the third passageway orifice (502) being most remote from the gate, and the second passageway orifice (482) being intermediate the first and third orifices, (11) the central channel has stepped, cylindrical sections (760, 762, 764, 766) having different diameters, and (iii) valve means comprising (a) an elongated sleeve (8000*) seated within and axially reciprocable within the central channel, the sleeve having a central passageway (1820), a forward open end to communicate with a portion (766) of the central channel located between the first and second orifices, and a port (8040) in its wall to coact with a passageway orifice (440) remote from the open end of the central channel and to block and unblock the said remote passageway orifice, the sleeve wall having radially stepped cylindrical surface portions (761, 763, 765, 767), each adapted to block one or more of the nozzle passageways when the sleeve is fully forward in the central channel, and, (b) an elongated pin (1834) mounted in the sleeve central passageway (1820) in a close tolerance slip fit sufficient to prevent significant accumulation or passage of melt material between the pin and the sleeve central passageway, the pin (1834) being reciprocal axially within said sleeve to block and unblock the said port (8040 1 ) when the sleeve is positioned with the port and the said remote orifice are aligned.
  66. 138
    141. The co-injection nozzle means according to any of claims 137 to 140, characterised in that the central channel has a combining area extending from the leading edge of the first orifice (462) to a trailing edge of the second orifice (502) and said combining area has an axial length of from 100 to 900 mils. (2.54 to 22.9 mm), for example 100 to 300 mils (2.54 to 7.62 mm).
  67. 139
    142. The co-injection nozzle means according to claim 139, characterised in that the axial length from a leading lip of the fourth orifice (482.) to a trailing lip of the fifth orifice (522) is from 100 to 900 mils (2.54 to 22.9 mm), for example 100 to 300 mils (2.54 to 7.62 mm).
  68. 140
    143. A co-injection nozzle apparatus for an injection molding machine, characterised by the nozzle (296) having a plurality of orifices (462, 482, 502, 522, etc.) in communication with central channel (540) and valve means comprising (i) an elongated sleeve (800) having a side wall with a port (804) therein, an open end (812), and an elongated central passageway (820) in communication with the port and the open end, and (ii) an elongated pin (834) for relative axial reciprocal motion in the sleeve mounted in a close tolerance slip fit with the central passageway (820), said pin having a side wall whose outer surface is adapted to close and open said port, the said nozzle central channel (540) and sleeve (800) having between them no area for significant accumulation of injection material therein or passage of injection material therethrough.
  69. 143
    146. The nozzle apparatus according to any of claims 143 to 145, characterised in that the elongated pin (834) has a greater axial length than the sleeve (800).
  70. 144
    147. Apparatus for selectively controlling the flow of at least three melt material streams for injection molding multi-layer plastics articles from the melt materials, characterised by a nozzle (296) having a central channel (540) open at one end, a flow passageway in the nozzle for each of a plurality of material streams, at least two of the nozzle passageways (460, 500, etc.) terminating at a respective exit orifice (462, 502), each of which communicates with the nozzle central channel (540) preferably adjacent the open end, and by sleeve valve means (800) having an axial material flow passageway (820) communicating with the nozzle central channel (540) and adapted to communicate with a flow passageway (440) for conveying a material stream to the nozzle central channel, the sleeve means (800) being carried in the central channel (540) and being moveable to selected positions to block and unblock one or more of said orifices and to bring the said axial passageway (820) into and out of communication with the said flow passageway (440).
  71. 147
    150. The apparatus according to claim 147, 148 or 149, characterised in that communication from the internal axial passageway (820) of the sleeve means (800) to the said flow passageway (440) is through a port or aperture (804) in the wall of the sleeve means.
  72. 149
    153. The apparatus according to any of claims 147 to 152, characterised by the exit orifices (462, 502) completely surrounding the nozzle central channel (540).
  73. 150
    154. The apparatus according to any of claims 147 to 153, characterised in that the sleeve means (800) fits closely within the nozzle central channel (540) whereby there is no substantial cavity for polymer accumulation between the sleeve means and. the central channel.
  74. 151
    155. The apparatus according to any of claims 147 to 154, characterised by the plane of at least one of the said orifices (462, 502) being perpendicular to the axis of the central channel (540).
  75. 152
    156. The apparatus according to any of claims 147 to 155, characterised by a plurality of further flow passageways for a plurality of further material streams, and by the sleeve means having a plurality of axial flow passageways (666, 668) therefor.
  76. 153
    157. The apparatus according to any of claims 147 to 156, further characterised by means (860, 856) to actuate and move the sleeve means (800) between first, second, third, fourth, fifth and sixth modes, wherein in said first mode the sleeve means blocks all of the said orifices (e.g. 462, 482, 502, 522) and said axial passageway (820) is out of communication with the said flow passageway (440), in said second mode the sleeve means blocks all of the orificies and said axial passageway (820) is in communication with the said flow passageway (440), in said third mode the sleeve means does not block the orifice (462) most proximate to the open end of the nozzle central channel (540) and said axial passageway is in communication with the said flow passageway, in said fourth mode the sleeve means does not block at least two orifices, one of which is the orifice (462) most proximate to the open end of said nozzle central channel, and said axial passageway is in communication with the said flow passageway, in said fifth mode the sleeve means does not block at least two orifices, one of which is the orifice (462) most proximate to the open end of said nozzle central channel, and said axial passageway is out of communication with the said flow passageway, and in said sixth mode the sleeve means does not block the orifice (462) most proximate to the open end of said nozzle central channel and said axial passageway is out of communication with the said flow passageway.
  77. 155
    159. The apparatus according to any of claims 147 to 158, adapted to control five material streams.
  78. 158
    162. Apparatus according to any of claims 147 to 161, characterised by pin means (834) moveable, by actuating means (844, 850) therefor, in the axial passageway (820) of the sleeve means to selected positions to block or permit conwuni cation between said internal axial passageway (820) and the or a flow passageway (440) to communicable therewith.
  79. 161
    165. The apparatus according to any of claims 147 to 164, further characterised by material flow directing means (e.g. 464, 466) associated with the nozzle for balancing the flow of at least one material stream (B) around the nozzle passageway (460) and exit orifice (462) through which the stream flows.
  80. 162
    166. The apparatus according to any of claims 147 to 165 further characterised by means for pressurizing at least one material stream.
  81. 163
    167. The apparatus according to any of claims 147 to 166, further characterised by material flow directing means (e.g. 464, 466) in at least one of said nozzle passageways (460) for balancing the flow of the associated material stream (B) around said passageway and the exit orifice (462) through which it flows, and means (232) for pressurizing said stream to produce a pressurized reservoir of material in said nozzle passageway between said flow directing means and said orifice, whereby, when the sleeve means (800) unblocks said orifice (462), the start of flow of said material through said orifice is substantially uniform around the orifice.
  82. 165
    169. The apparatus according to any of claims 147 to 168, characterised in that the nozzle has four, five or more passageways with orifices (e.g. 462, 482, 502, 522) communicating with the central channel (540) at locations close to the open end (595).
  83. 166
    170. Apparatus according to any of claims 147 to 169 for co-injecting at least three melt material streams through the nozzle (296) into a cavity (102) to form a thin wall multi-layer plastic article having at least one thin internal layer having a terminal end, characterised in that the nozzle (296) has material flow directing means (524, 526) for balancing the flow of the material stream (C) which forms the said internal layer around the nozzle passageway (500) and exit orifice (502) through which that stream flows, the flow directing means being operative to locate the terminal end of the internal layer substantially uniformly in the injected article at the conclusion of polymer movement in said injection cavity.
  84. 170
    174. Apparatus according to any of claims 147 to 173, for co-injecting at least three melt material streams through the nozzle into a cavity (102) to form thin wall multi-layer plastic article having an outer layer having a terminal end, characterised in that the nozzle (296) has material flow directing means (464, 468) for balancing the flow of the material stream (B) which forms said outer layer around the nozzle passageway (460) and exit orifice (462) through which that stream flows, the flow directing means being operative to locate the terminal end of said outer layer substantially uniformly in the injected article at the conclusion of polymer movement in said injection cavity.
  85. 174
    178. Apparatus according to claims 170, 171, or 172 and 174, 175 or 176, characterised in that the material streams to form both the internal and the outer layers of the article are subjected to flow directing means (524, 526;464, 466) operative to balance the flows of the material streams (B, C) which form said outer and internal layers and to locate around the nozzle passageways and exit orifices through which said streams flow, to locate the terminal ends of each of these layers substantially uniformly in the injected article at the conclusion of polymer movement in said injection cavity.
  86. 175
    179. Apparatus according to any of claims 147 to 178, characterised by means for selectively controlling the flow of at least three melt material streams through the nozzle (296) of a machine for co-injecting the materials into a cavity (102) to form thin wall multi-layer plastic articles having an outer layer and at least one thin internal layer, wherein the nozzle (296) has a central channel (540) open at one end, comprising a flow passageway in the nozzle for each material stream, at least two of the nozzle passageways (460, 500) terminating at an exit orifice (462, 502), each of said orifices communicating with the nozzle central channel (540) at locations close to the open end (596), sleeve means (800) having at least one internal axial flow passageway (820) communicating with the nozzle central channel and adapted to communicate with one of the flow passageways (e.g. 440) in the nozzle, said sleeve being carried in said nozzle central channel (540) and being moveable to selected positions to block and unblock one or more of said orifices, pin means (834) moveable in the axial passageway (820) of the sleeve means to selected positions to block and establish communication between said internal axial passageway (820) and said nozzle passageway (440), and material flow directing means (464, 466;524, 526) associated with the nozzle for balancing the flows of the material streams (B, C) which form said outer layer and the internal layer around the respective nozzle passageways and exit orifices through which said streams flow, whereby the locations of the terminal ends of said outer layer and said internal layer are substantially uniform in the injected article at the conclusion of polymer movements in said injection cavity.
  87. 176
    180. Apparatus for selectively controlling the flow of at least three melt material streams for co-injecting the materials Into a cavity to form a thin wall multi-layer plastics article having at least one thin layer having a terminal end, characterised in that a co-injection nozzle (296) has a central channel (540) open at one end, a flow passageway (e.g. 460, 500) in the nozzle for each of a plurality of material streams (B, C), valve means (800) in the central channel moveable to selected positions to block and unblock one or more orifices (e.g. 462, 502) by which said passageways open to the central channel, to bring said passageways (460, 500) into and out of conmunication with said central channel, and material flow directing means (464, 466 and/or 524, 526) associated with the nozzle (296) for balancing the flow of the material stream which forms said one layer (B or C) around the nozzle passageway through which that stream flows, the flow directing means being operative to locate the terminal end of said one layer substantially uniformly in the injected article at the conclusion of the polymer movement in said injection cavity.
  88. 181
    186. The apparatus according to any of claims 180 to 185, characterised in that the or each material flow directing means is located in the nozzle passageway (500 or 460) for the flow stream (C or B) of the material to form the respective internal or outer layer, the said passageway providing a pressurized reservoir (at 518 or 478) of the material in the nozzle passageway between the said flow directing means and the exit orifice of said passageway to said central channel, whereby, when the valve means unblocks the said passageway, the start of flow of the material in the said passageway into said central channel is substantially uniform around the channel.
  89. 182
    187. The apparatus according to any of claims 180 to 186, characterised by the nozzle passageway (500, 460) for the flow stream to form either or both the internal layer and the outer layer is tapered (at 518, 478) such that it has a wider gap remote from its associated orifice and has a narrower gap at the orifice.
  90. 183
    188. Apparatus according to any of claims 180 to 187, further characterised in that there are material flow directing means (464, 466;524, 526) associated with the nozzle for balancing the flows of both the material streams (B, C) to form said outer layer and internal layer around the nozzle passageways (460, 500) through which each stream flows, whereby the location of the terminal ends of each of said outer layer and said internal layer are substantially uniform in the injected article at the conclusion of polymer movement in said injection cavity.
  91. 184
    189. A co-injection nozzle means for a multi-polymer injection molding machine for co-injecting at least three streams of melt materials to form a multi-layer article therefrom, wherein the nozzle means (296) has an axially extending central channel (540), a gate (596) in communication with the central channel, and is characterised in that it has at least two polymer stream passageways (460, 500) each having an annular orifice (462, 502), the first of said orifices (462) being proximate the gate (596), the second of said orifices (502) being adjacent the first orifice, and is further characterised in that either or both of the first and second passageways (460, 500) has a tapered portion (478, 518) adjacent its respective orifice such that each orifice has a smaller cross-sectional gap than an upstream adjacent portiorr of its respective passageway, the nozzle preferably having a third passageway (440) with an orifice opening to the central channel at a location more remote from the gate than the other orifices.
  92. 188
    193. The co-injection nozzle means according to any of claims 189 to 192, characterised by having five polymer stream passageways each having an annular orifice, the fourth passageway orifice (482) being intermediate the first and second orifices (462, 502), and the fifth passageway orifice (522) being intermediate the second (502) and third orifices (440).
  93. 189
    194. Apparatus for use in a multi-coinjection nozzle injection molding machine for injection molding a multi-layer plastic article, which comprises the co-injection nozzle means (296) according to claim 189, further characterised by valve means (800) operative in the nozzle central channel (540) for blocking and unblocking the orifices, and, means (232, 234, 260, 262) for displacing polymer melt material through each passageway and passageway orifice, and for pressurizing a melt material in a tapered passageway (478, 498, 518 or 538) while its orifice is blocked by the valve means (800).
  94. 193
    198. The apparatus according to any of claims 194 to 197, characterised in that at least the passageway (460) in communication with the first orifice (462) has in cooperative association therewith means (464, 466) for balancing the flow of the melt stream material (B) through that passageway.
  95. 195
    200. Apparatus according to any of claims 194 to 199, characterised in that the nozzle means (296) has five passageways, for five melt streams, each with a respective orifice opening to the central channel, wherein each of the first, second, fourth and fifth passageways (460, 500, 480, 520) has a tapered portion (478, 518, 498, 538) adjacent its respective orifice such that each orifice has a smaller cross-sectional gap than an upstream adjacent portion of its respective passageway, and further characterised in that the valve means (800) operative in the central channel (540) is adapted to block the fourth, second and fifth orifices (482, 502, 522) while the third orifice (440) is not blocked by the valve means.
  96. 202
    207. The co-injection nozzle means according to any of claims 202 to 206, characterised by third, fourth and fifth passageways (440, 480, 520) and respective orifices for delivering melt streams to the central channel, and further characterised by the axial distance between a leading lip of the fourth orifice (482) and a trailing lip of the fifth orifice (522) being from 100 to 900 mils (2.54 to 22.9 mm), e.g. 100 to 300 mils (2.54 to 7.62 mm).
  97. 208
    213. A co-injection nozzle assembly having a central channel with an open end for co-injecting at least three melt material streams to form a multi-layer article, characterised by the assembly (296) comprising at least two interfitting shells (434, 436) and a nozzle cap (438) enclosing at least a portion of the outermost one (436) of said interfitting shells, one of the shells (e.g. 436) containing a feed channel (460) for flow of melt material therethrough, which channel leads to an associated annular flow passageway (478) having an orifice (462) opening to the nozzle central channel (540), the said annular flow passageway being bounded on one side by a portion (589) of the outer surface of the shell containing the feed channel and on the other side by a portion (593) of the inner surface of an adjacent one of the interfitting shells or of the nozzle cap, a portion of the said outer surface having a symmetrical, frustoconical shape and a portion of the said inner surface having a symmetrical, frustoconical shape, the outer and inner symmetrical, frustoconical surface portions (589, 593) together defining a tapered, symmetrical, frustoconical portion of the said annular flow passageway (478). *
  98. 213
    219. The injection nozzle assembly according to any of claims 213 to 218, characterised by the or an orifice (e.g. 462) being located close to the open end (596) of the nozzle central channel (540).
  99. 214
    220. A co-injection nozzle means.having a central channel with an open end, for co-injecting at least three streams of melt materials to form a multi-layer article having an outside layer, an inside layer, and at least one internal layer between said outside layer and said inside layer, said nozzle means having a flow passageway for each stream of melt materi al, character!sed i n that at 1 east two of the passageways, e.g. for the streams to form an outside and an internal layer, terminate at annular orifices (462, 502) communicating with the central channel (540) at locations close to the open end (596), at least the passageway (500) for the material stream (C) to form the internal layer having means (504, 506) therein for providing a balanced flow of material through and around said passageway, this passageway further having a symmetrical, tapered portion (518) between the balancing means and the passageway orifice (502) to provide a symnetrical, tapered pool for the melt material adjacent the orifice for balanced flow therethrough into said central channel (540).
  100. 216
    222. The injection nozzle means according to any of claims 213 to 221, further characterised by means (800) in the nozzle (296) selectively moveable to prevent or permit flow into said central channel of the melt material (C) to form the said internal layer.
  101. 217
    223. Co-injection nozzle means for a multi-polymer injection blow molding machine for co-injecting at least three streams of melt materials to form a multi-layer article therefrom, wherein the co-injection nozzle has an axially extending cylindrical central channel, a gate in communication with the central channel, and is characterised by having at least three polymer stream passageways each having an orifice, the first (462) of said orifices being proximate or close to the gate (596), the second (502) of said orifices being adjacent the first orifice, and the third orifice (e.g. 440) being remote from said gate, each of the first and second (462, 502) of said orifices being annular and defined by a leading lip (e.g. 461) and a trailing lip (e.g. 523), said central channel (540) having a combining area which is a cylindrical portion of the central channel extending from the forward lip of the first orifice (462) to the trailing lip of the annular orifice most remote from the gate (596) in which area all polymer streams combine into a combined flow stream for injection from the nozzle, said combining area having an axial length of from 100 to 900 mils (2.54 to 22.9 mm), e.g. 100 to 300 mils (2.54 to 7.62 mm), and preferably the second orifice, and more preferably the first and second orifices, being fixed relative to the central channel.
  102. 218
    224. Co-injection nozzle means for a multi-polymer injection blow molding machine for co-injecting at least three streams of melt materials into a given cavity to form a multi-layer article therefrom, wherein the nozzle has an axially extending cylindrical central channel, a gate in communication with the central channel, and is characterised by having at least three polymer stream passageways (e.g. 460, 500, 440) each having an orifice preferably fixed relative to the central channel (540), there being two of said at least three orifices close to the gate, the first (462) of said orifices being proximate the gate (596), the second (502) of said orifices being adjacent the first orifice, and the third orifice (e.g. 440) being remote from said gate, each of said first and second orifices (462, 502) being narrow, annular and defined by a leading lip (e.g. 461) and a trailing lip (e.g. 523), said central channel (540) having a combining area which is a cylindrical portion defined at either end by the forward lip of the first orifice (462) and the trailing lip of the annular orifice most remote from the gate in which area all polymer streams combine into a combined flow stream for injection from the nozzle, and wherein said combining area has a volume no greater than about 5% of the volume of the injection cavity (102) into which the combined polymer flow stream is injected from the nozzle (296).
  103. 223
    229. The co-injection nozzle means according to any of claims 223 to 228, further characterised in that the leading lip (461) of the first orifice (462) is within 100 to 900 mils (2.54 to 22.9 mm), e.g. 100 to 300 mils (2.54 to 7.62 nm) of the gate (596).
  104. 225
    231. The co-injection nozzle means according to any of claims 223 to 230, further characterised in that the center lines (190, 194) of each of the first and second orifices (462, 502) lie substantially perpendicular to the axis of the central channel (540).
  105. 226
    232. The co-injection nozzle means according to any of claims 223 to 231, further characterised in that each of the first and second passageways (460, 500) has a tapered portion (478, 518) adjacent its orifice (462, 502) such that each orifice has a smaller cross-sectional gap than an adjacent upstream portion of its respective passageway. The co-injection nozzle means according to any of claims 223 to 232, characterised in that those orifices, irrespective of their number, which communicate with the combining area, are fixed relative to the central channel (540).
  106. 228
    235. The co-injection nozzle means according to any of claims 223 to 234, further characterised in there are at least three passageways (e.g. 460, 480, 500) with annular orifices (e.g. 462, 482, 502), preferably each fixed relative to the central channel (540) and preferably at least two of them (462, 502) open to the combining area.
  107. 229
    236. A method of injection molding characterised by controlling the relative flow rates of two polymeric material melt flow streams to be co-molded and including the steps of providing two polymeric material melt flow streams and feeding them to a co-injection nozzle means having a central channel with an open end, a gate thereat and a polymer flow stream passageway for each polymeric material melt flow stream, each passageway having an orifice opening to the central channel, conducting each of the two polymeric material melt flow streams to common moving means for moving each stream to its respective passageway, and utilizing the common moving means to move the material streams through their passageways while positively partially blocking the flow of one of the flow streams and not blocking the flow of the other stream.
  108. 235
    242. A method according to any of claims 236 to 241, for co-molding a plurality of articles from at least two of said melt flow streams, characterised by injection molding using a plurality of substantially identical co-injection nozzle means, and utilizing connion moving means operative to move the at least two melt streams to each of the nozzle means, and blocking, unblocking or partially blocking the at least two melt streams in each of the nozzle means by valve means therein, said valve means preferably being substantially identical and preferably operable substantially simultaneously.
  109. 236
    243. A method of injection molding a multi-layer plastics article by creating a multi-layer substantially concentric combined stream of at least three polymeric materials and co-injecting the combined stream into a cavity to form the multi-layer article, the combined stream having an outer structural material layer for forming the outer layer of the article, a core of structural material for forming the inner layer of the article, and one or more intermediate layer(s) of material for forming an internal layer(s) of the article, the method being characterised by the use of a co-injection nozzle means having, a gate at one end, a cylindrical central channel opening to the gate, and a plurality of at least three polymer passageways communicating with the central channel, of which at least the first and second passageways are annular and have annular orifices opening to the central channel, the first orifice being located closer to the gate than the other orifices for routing the outer layer structural material into the channel, the third orifice being farther from the gate than said first or second orifices for routing the core material into the channel, and the second orifice being positioned adjacent to the first orifice for routing intermediate layer material into the channel, and the method being further characterised by controlling the thickness, uniformity and radial position of the internal layer in the combined stream by providing and utilizing means either in all the annular polymer flow stream passageways or at least in the first and second passageways for balancing the flow of the respective polymer flow streams passing through the said passageways such that, as the respective streams enter the central channel, each is substantially uniform in terms of pressure and temperature about its circumference and in the combining area of the nozzle means, the respective layers which form the combined stream are substantially concentric relative to each other, the respective polymer streams preferably being condensed phase polymeric materials.
  110. 238
    245. A method of injection molding an article such as a parison formed of a plurality of layers of plastics materials and including at least an inner structural layer, an internal layer, and an outer structural layer, the method being characterised by displacing each polymeric material to form a layer of the article from a respective source thereof to a co-injection nozzle means having a central channel with a polymer stream combining area, and having a passageway and associated orifice for each layer to be formed, the passageway orifices opening to the central channel, and, to control the final lateral location of an internal layer in an article, in the course of its injection:separately channelling the streams of the displaced polymer materials each to a passageway in each nozzle, continuously controlling the displacement of each polymeric material, and controlling the radial location of the internal layer within the combining area of the central channel, by positively controlling the flow and.non-flow of the streams to form the outer and internal layers through their respective orifices by moving the streams past flow balancing means operative in their respective passageways for selectively providing desired design flows for each of the said streams, and displacing the outer and internal layer materials and the inner layer material(s) through their respective passageways to achieve their respective desired design flows, thereby to place annular streams of the respective materials uniformly radially in the combining area, and to control the radial location of the internal layer material in the combined flow stream in the combining area of the nozzle means. The method according to claim 245, characterised by introducing the outer structural material to the central channel at an angle relative to the central channel combining area, and introducing the innermost structural material axially as a solid stream into the combining area, and wherein the method also includes the steps of physically blocking the orifices of the outer and internal layer materials and prepressurizing these layers in their passageways while their orifices are blocked, thereby to minimize the transient times required to reach the desired design flows and to control the volumetric flows of the outer and internal structural materials into the combining area.
  111. 240
    248. The method according to claims 245 to 247, characterised in that the displacing step includes leaving the orifice for the outer material unblocked for a time sufficient to obtain a continuous, uniform rate and volume of flow of the outer material during 90% of the injection cycle.
  112. 241
    249. The method according to any of claims 245 to 248, further characterised by the steps of pressurizing the internal layer material or this material and the inner layer material while the orifice therefor is blocked, and then unblocking the orifice and effecting a uniform initial flow rate of the or each material across its passageway orifice at the start of the injection cycle, and maintaining a continuous flow in terms of velocity and volumetric rate of all materials during most of the injection cycle.
  113. 243
    251. A method of injection molding characterised by the use of multi-material co-injection nozzle means, which has an open end with a gate thereat, an axially extending cylindrical central channel in comnunication with the gate, and a passageway with an annular orifice in communication with the nozzle central channel, the method being further characterised by the steps of (a) providing a first polymeric melt material in the passageway and preventing the material from flowing through the orifice into the central channel, (b) flowing a melt stream of a second polymeric material through the central channel past the orifice, (c) while the first polymeric material is flowing through the central channel and while continuing to prevent the second material from flowing through the orifice, subjecting the second material in the passageway to pressure which at all points around the orifice is .greater than the ambient pressure of the first material stream at circumferential positions which correspond to the said points, the applied pressure, for example being uniform at all points around the annular orifice, and (d) after pressurizing the second material, permitting it to flow into the channel via the orifice, the pressure applied to the second material being sufficient to establish onset of flow of the second material from all points around the orifice substantially simultaneously.
  114. 247
    255. The method according to any of claims 251 to 254 for producing a multi-layer injected article having an internal layer, characterised in that one or more melt materials are caused to flow along the central channel of the multi-material co-injection nozzle and the second material, to form the internal layer of the article, is pressurised to a pressure greater than the ambient pressure of the already flowing one or more materials and thereafter caused to flow substantially simultaneously from all points around the orifice so as to form a layer surrounding the polymeric melt material already flowing in the central channel.
  115. 253
    261. The method according to any of claims 258 to 260, characterised in that the pressure subjecting step is effected in two stages, first by providing a residual pressure on the internal layer material lower than the desired pressure at which it is to flow through the blocked orifice, and then before or upon effecting the allowing or unblocking step, raising the pressure to said desired pressure at which the internal layer material is to flow through the orifice.
  116. 256
    264. A method of injection molding characterised by the use of a multi-polymer injection molding machine for forming multi-layer articles, the machine having means to displace polymer melt materials from sources thereof along runners to passageways and associated orifices of co-injection nozzle means, for delivery to a central channel in the nozzle means, the method being further characterised by the steps of blocking an orifice physically to prevent polymer melt material in the passageway leading to that orifice from flowing into the central channel and, while so blocking the orifice, retracting the displacement means for the said polymer melt material to accommodate fresh polymer melt material from the source thereof upstream of the displacement means and external to the runner system, the pressure of the fresh melt generating in the runner therefor a residual pressure sufficient to increase the rate of time response of the polymer melt material in the runner to subsequent movements of the displacement means, and the amount of retraction and the pressure cooperatively providing for a sufficient quantity of fresh melt for the corresponding layer of the article to be injection molded;and then, prior to unblocking the orifice, actuating the displacement means towards the orifice to compress the melt material further and raise the pressure in the runner to a level greater than the residual pressure, and sufficiently elevated that, when the orifice is unblocked, flow of the prepressurized polymer melt material commences substantially simultaneously from all points in the orifice into the central channel.
  117. 259
    267. A method of injection molding characterised by the use of a multi-polymer injection molding machine, which has a runner system extending from displacement means for at least one polymer melt material to co-injection nozzle means having a corresponding passageway for said polymer melt material and an orifice which in turn communicates the passageway with a central channel in the nozzle, the method being further characterised by the steps, for the at least one polymer material, of blocking the orifice physically to prevent the polymer melt material in the passageway from flowing into the central channel and, while so blocking the orifice, moving polymer melt material into that portion of the runner system extending to said blocked orifice, discerning the level of residual pressure of polymer melt material moved into said portion of the runner system, and displacing the polymer melt material in the runner system towards the orifice to compress .the material and elevate the pressure in the runner system to a level greater than the first-mentioned pressure and which is sufficiently elevated that, upon unblocking the orifice, onset of flow of the prepressurized polymer melt material occurs substantially simultaneously and uniformly from all points of the orifice into the central channel.
  118. 261
    269. A method of forming a multi-layer plastics article having a marginal edge portion, first and second surface layers, and at least one internal layer therebetween by injection in an injection cavity of an injection molding machine, characterised by the use of an injection molding machine having a runner system to convey polymer melt materials to co-injection nozzle means having a flow passageway for each melt material to form a layer of the article, a central channel, and an orifice for each passageway in communication with the central channel, means for displacing each of the melt materials to the orifices and into the nozzle central channel, means for supplying the melt materials into the runner system, and means for physically blocking and unblocking the orifices, the method being further characterised by the steps of blocking at least the orifice for the material to form the internal layer to prevent flow thereof into the central channel, moving polymer melt materials into the runner system, discerning the level of residual pressure of the polymer melt materials that have been moved into the runner system, displacing the internal layer melt material in its passageway towards its orifice to compress the material and raise the pressure of that material to a level greater than the first discerned pressure, flowing the first surface layer material into and along the central channel while preventing flow of the internal layer material into the central channel, flowing the second surface layer material into and along the central channel as an annular stream about the flowing first surface layer material, unblocking the orifice of the prepressurized internal layer material to admit it into the central channel and into the interface between the flowing inner and outer surface materials, the level of pressure of the internal layer material upon unblocking its orifice being such that its onset of flow occurs rapidly and substantially simultaneously and uniformly, e.g. uniformly thickly from all points of its orifice into the central channel to form an annular layer between the flowing first and second surface layer materials and such that the leading edge of the flowing internal layer material lies in a plane substantially perpendicular to the axis of the central channel whereby, injection of the combined flow stream into the injection cavity, results in the internal layer material extending substantially uniformly into and about the marginal edge portion of the article.
  119. 264
    272. A method of injection molding a multi-layer plastics article having an outer surface layer, an inner surface layer and one or more internal layers therebetween, which is characterised by the use of a molding machine furnished with co-injection nozzle means having an open end with a gate, an axially-extending cylindrical central channel in communication with the gate, a passageway for each polymeric material stream to form a layer of the article, the passageway for the or an internal layer stream communicating via an annular orifice with the central channel, the said annular orifice having a center line substantially perpendicular to the axis of the central channel, and the passageway for the outer surface layer stream also having an annular orifice in communication with the central channel at a location between the gate and the orifice or orifices for the internal layer stream or streams, the outer layer orifice having its center line substantially perpendicular to the axis of the central channel, and the machine including means for providing a flow of the material to form the inner surface layer into the central channel from a location more remote from the gate than any of the aforesaid orifices, the method being further characterised by the steps of:utilizing one or more condensed phase polymeric materials as the or an internal layer melt stream, flowing the inner layer melt stream into the central channel as a core stream past the or each internal melt stream orifice, flowing the outer layer melt stream into the central channel to surround the core stream flowing therein, providing the combined flowing streams for the outer and inner layers with a selected ambient pressure in the central channel, supplying the or an internal layer melt stream into the passageway, therefor, imparting a selected first pressure to the or an internal layer melt stream at the orifice therefor, the said first pressure being below that pressure which, relative to the ambient pressure, would cause the said internal layer material to flow into the central-channel, adjusting the first pressure to a level equal to or just below the said ambient pressure to compress the said internal layer melt stream to provide said stream with an enhanced flow response when onset of flow into the central channel is activated and to prevent back flow of the already flowing materials into the said internal layer orifice, and activating rapid onset flow of the said internal layer melt stream through the orifice therefor into the central channel by creating a sudden change in the relative pressures between the said internal layer material at the said orifice and the ambient pressure in the central channel, whereby the pressure of the said internal layer material is rapidly changed to a level sufficiently high relative to the ambient pressure that its onset of flow as an annular stream into the central channel occurs substantially simultaneously from all points around the said orifice.
  120. 268
    276. A method of injection molding wherein a melt stream of polymeric material is admitted via an annular orifice into the central channel of multi-material co-injection nozzle means, the method being characterised by the use of co-injection nozzle means having an open end with a gate thereat, an axially extending, e.g. cylindrical central channel in communication with the gate, and a passageway opening via an annular orifice to the nozzle central channel, the orifice having a center line substantially perpendicular to the central channel axis, and the method being further characterised by the steps of (a) providing a melt stream of a preferably condensed phase polymeric material in the passageway while preventing it from flowing through the orifice, (b) while continuing to prevent it from flowing through the orifice, subjecting the melt material in the passageway to an initial pressure which is at least sufficient to cause the material to flow into the central channel, and (c) permitting the pressurized material to flow through the orifice whereby its initial flow occurs substantially uniformly and simultaneously from all portions of the annular passageway into the central channel.
  121. 271
    279. The method according to any of claims 276 to 278, characterised in that step (c) Involves maintaining a pressure on the material sufficient to establish and maintain a substantially uniform initial and continuing steady rate of flow simultaneously from all points of the orifice into the central channel.
  122. 272
    280. A method according to any of claims 271 to 279, for introducing the material from the said annular internal passageway orifice into the central channel of the nozzle means so as to surround a stream of another melt material already flowing in the central channel, characterised by flowing the other melt material through the nozzle central channel from a location upstream of the annular orifice while preventing flow of the first material into the central channel from the orifice, pressurizing the first material in the passageway, while continuing to prevent its flow, to raise the first material to a pressure sufficiently greater than the ambient pressure in the nozzle central channel and sufficiently greater than the pressure imparted to the said other flowing material, as to densify the first material in the passageway adjacent the orifice and ensure that the initial flow of the first material occurs simultaneously and uniformly from all points around the passageway orifice therefor when the material is permitted to flow therethrough.
  123. 275
    283. The method according to any of claims 276 to 282, characterised by imparting an additional pressure upon the internal material once it is allowed to flow to maintain an effective total pressure sufficient to approach and maintain a substantially steady flow rate of said material through the second orifice into said channel.
  124. 276
    284. The method according to claim 276 or 281, characterised in that the nozzle means has passageways and orifices for conveying a plurality of melt materials into the central passage thereof, and the method is further characterised in that a polymeric melt stream preferably of condensed phase polymeric material is fed to each passageway while the materials are prevented from flowing through the orifices and, while continuing to prevent the materials from flowing through the orifices, subjecting the materials in their passageways to first pressures which are insufficient to cause leakage of the materials through their orifices into the central channel or from one orifice into another orifice, yet which would be sufficient to cause the materials to flow into the central channel if’their flows were not prevented, and prior to allowing the materials to flow through their orifices, separately and independently raising the materials in the passageways to second pressures greater than the first pressures and sufficient to create, when their orifices are unblocked, a surge of the material and uniform onset annular flows thereof into the central channel when leading edges of the respective flow streams are considered relative to planes perpendicular to the axis of the central channel, the second pressures being of sufficient magnitude and being imparted for a duration of time sufficient to ensure the uniform onset flows of the materials occur simultaneously from all points of their orifices.
  125. 278
    286. A method of injection molding a multi-layer plastics article by creating a multi-layer substantially concentric combined stream of at least three polymer materials and injecting the combined stream into a cavity to form the multi-layer article, the combined stream having an outer structural material layer for forming the outer layer of the article, a core of structural material for forming the inner layer of the article, and one or more intermediate layer(s) for forming one or more internal layer(s) of the article, the method being characterised by the use of a co-injection nozzle means having a gate at one end, and a cylindrical central channel opening to the gate, the nozzle means further including at least three polymer passageways communicating with the central channel, of which at least the first and second passageways open to the channel via annular orifices whose center line lie substantially perpendicular to the axis of the central channel, the first orifice being located closer to the gate than the other orifices for routing the outer structural material into the channel, the third orifice being farther from the gate than said first and second orifices for routing the core material into the channel, and the second orifice being positioned adjacent close to the first orifice for routing intermediate layer material into the channel, there being in the nozzle central channel valve means operative adjacent the orifices and adapted to block and unblock the second orifice for controlling flow of the intermediate polymer material therethrough and for independently controlling flow or non-flow of the core material through the third orifice, and the method being further characterised by the steps of (1) preventing flow of polymer material from all of the orifices, (2) continuing to prevent flow of polymer material through the second orifice while allowing flow of structural material through one or both of the first and third orifices, (3) prior to unblocking the second orifice, subjecting the material in the second passageway to a pressure sufficient to cause the material to flow into the central channel if its orifice was unblocked, yet less than that which would cause leakage of the material through the second orifice past the blocking valve means, the pressure being sufficient, upon unblocking the second orifice, to create a surge of the polymer material through the orifice so that the onset of flow into the central channel is established as an annular flow stream which is uniform when considered relative to a plane perpendicular to the axis of the central channel, (4) after unblocking the second orifice, increasing the rate of movement of the material to obtain a substantially steady rate of flow thereof through the second orifice, (5) preventing flow of polymer material through the third orifice while allowing the pressurized material to flow through the second orifice, to knit the pressurized intermediate layer material with itself through the core material, and (6) preventing the flow through the second orifice while allowing flow through the first orifice and, either moving the valve means forward to push the knit intermediate layer forward and substantially encapsulate the knit internal layer with material from the first orifice, or accumulating material that has flowed from the third orifice at a forward end of the valve means, and moving the valve means forward to substantially encapsulate the knit intermediate layer material with the accumulated material from the third orifice.
  126. 283
    291. A method of injection molding a multi-layer plastics article by creating a multi-layer substantially concentric combined stream of at least three polymeric materials and injecting the stream into a cavity to form the article, the combined stream having an outer structural material layer for forming the outer layer of the article, a core of structural material for forming the inner layer of the article, and one or more intermediate layers of material for forming an internal layer(s) of the article, characterised by the use of a co-injection nozzle means having a gate at one end and a cylindrical central channel opening to the gate, the nozzle means further including at least three polymer passageways communicating with the central channel, of which at least the first and second passageways open via an annular orifice to the central channel and each orifice having a center line in a plane substantially perpendicular to the axis of the central channel, the first orifice being located closer to the gate than the other orifices for routing the outer layer structural material into the channel, the third orifice being farther than said first or second orifices from the gate for routing the core material into the channel, and the second orifice being positioned adjacent to the first orifice for routing intermediate layer material into the channel, the nozzle means further including valve means operative in the nozzle central channel adjacent the orifices to prevent and allow flow of polymer materials through the first, second and third orifices, the method being further characterised by the steps of:utilizing the valve means for blocking the first and second orifices, subjecting the polymer materials in the passageways blocked by said valve means to a first pressure which would be sufficient to cause the blocked materials to flow into the central channel if the valve means were not blocking the first and second orifices, just before moving the valve means to unblock said first and second orifices, subjecting the materials in the said passageways to a second pressure greater than the first pressure, the second pressure being sufficient to establish a uniform onset annular flow of the said materials into the central channel when the valve means is moved, each flow having an onset or leading edge in a plane substantially perpendicular to the axis of the central channel, after subjecting the materials in the said passageways to the second pressure, unblocking the first and second orifices by moving the valve means to provide the uniform onset annular flows, into the central channel, and maintaining a pressure on the said materials at least for 10 to 80 centiseconds so as to obtain a steady flow of said materials through said first and second orifices and thereby maintain uniform thickness about the annular material flows from the first and second orifice, the materials subjected to pressurization preferably being condensed phase polymeric materials.
  127. 284
    292. A method of injection molding to produce a multi-layer article such as a parison the wall of which has an inside layer, an outside layer and at least one internal layer between said inside and outside layers, the method being characterised by the use of co-injection nozzle means having a central channel and means in the nozzle means moveable to selected positions to prevent and to permit flow into said channel of at least the material to comprise said internal layer, and further characterised by the steps of moving the said means to a first position preventing flow into said channel of the material to comprise said internal layer, commencing the flow into said channel of the material to comprise said outside layer while maintaining the flow of the material to comprise said inside layer, raising the pressure of said internal layer material to a level greater than the pressure in said channel of either of the materials to comprise said inside layer and said outside layer, and moving the said means to a second position to permit flow into the channel of the material to comprise said internal layer, the materials preferably being caused to enter the channel so as flow therealong concentrically with respect to one another.
  128. 285
    293. A method according to any of claims 251 to 292, further characterised by introducing outer structural material to the central channel at an angle relative to the central channel and introducing innermost structural material axially as a solid stream into central channel, wherein the method also including the steps of physically blocking the orifices of the outer and internal layer materials and prepressurizing these layers in their passageways while their orifices are blocked, thereby to minimize the transient times required to reach the desired design flows and to control the volumetric flows of the outer and internal structural materials into the combining area.
  129. 286
    294. The method according to any of claims 251 to 292, characterised by introducing the outer structural material to the central channel at an angle relative to the central channel, and by introducing the inner structural material axially as a solid stream into the combining area, the method including the steps of pressurizing the polymer melt material for the outer layer in its passageway while blocking its orifice, then unblocking said orifice, and then as part of a displacing step, effecting a uniform onset of the flow of the outer structural material from all points of its passageway orifice into the nozzle central channel.
  130. 287
    295. The method according to claims 293 or 294, characterised in that the displacing step includes leaving the orifice for the outer material unblocked for a time, sufficient to effect and maintain a continuous, uniform rate and volume of flow of the outer material during 90% of the injection cycle.
  131. 288
    296. The method according to any of claims 293 to 295, further characterised by the steps of pressurizing the internal layer material or this material and an inner layer material while the orifice therefor is blocked, and then unblocking the orifice and effecting a uniform initial flow rate of the said material across its passageway orifice at the start of the injection cycle, and maintaining a continuous flow in terms of velocity and volumetric rate of all materials during most of the injection cycle.
  132. 289
    297. The method according to any of claims 293 to 296, characterised in that the pressurizing step is effected during a displacing step to subject the polymer melt material for the outer layer while it is in its passageway and its orifice is blocked to a first pressure which would be sufficient to cause the material to flow into the central channel if its orifice was unblocked, and, prior to allowing flow of the outer layer material through its orifice, operating means to displace the said outer layer material in its passageway and thereby raise it to a second pressure greater than the first pressure and sufficient to create, when its orifice is unblocked, a surge of said material as an onset annular flow from all points of its orifice into the > central channel, the resulting flow stream being uniform when considered relative to a plane perpendicular to the axis of the central channel, the said second pressure being less than that which would cause leakage of the outer layer material past the flow-blocking means into the channel, and,. during and after the unblocking of the outer orifice layer, increasing the rate of polymer displacement to a desired, design substantially steady flow rate of the said material through the orifice therefor into the central channel.
  133. 290
    298. A multi-layer molded plastics container whose side and bottom walls (26, 27) are comprised of an outside surface layer. (B), an inside surface layer (A), and an intervening internal layer (C), characterised in that the ratio of the internal layer thickness in at least a portion of the bottom wall (27) to the total bottom wall thickness is greater than the ratio of the internal layer thickness in the side wall (26) relative to the total side wall thickness.
  134. 294
    302. A container according to any of claims 298 to 301, characterised by being an injection or injection blow molding.
  135. 295
    303. A container according to any of claims 298 to 302, characterised by an adherent layer (D, E) on both sides of said internal layer (C).
  136. 296
    304. An injection molded plastics article such as a container comprised of at least five layers of plastics material, namely an outside surface layer (B), an inside surface layer (A), an internal layer (C), a first intermediate layer (E) between the outside surface layer and the internal layer, and a second intermediate layer (D) between the inside surface layer and the internal layer, characterised in that the internal layer (C) has a terminal end (33) encapsulated by at least one of the intermediate layer materials, for example, primarily by the first intermediate layer material (E).
  137. 300
    308. The article according to claito 305, characterised by the folded over portion (46) of the internal layer being folded toward the inside of the container (Fig. 7).
  138. 301
    309. The article according to any of claims 305 to 308, wherein an end closure (52) such as a flexible lid (64), is secured to a portion such as a flange portion of the marginal end portion, e.g. by a double seam.
  139. 302
    310. The article according to any of claims 304 to 309, characterised in that the inside and outside surface layers (A, B) are each comprised of polyolefin, the internal layer (C) is an oxygen barrier material and the intermediate layers (D, E) are comprised of material suitable for adhering the surface layers to the internal layer.
  140. 304
    312. A method of injection molding, involving injecting a multi-layer flow stream comprising three layers into an injection cavity characterised in that the speed of flow of the layered stream is highest on a fast flow streamline positioned intermediate the boundaries of said layered stream, and characterised by:establishing flows of materials for a first layer and a second layer of the flow stream and forming an interface between the flowing first and second layers, positioning the interface at a first location which is not coincident with said fast flow streamline, interposing flow of material for a third layer of the flow stream between said first and second layers, the third layer being at a position which is not coincident with said fast flow streamline, and either (1) moving the third layer to a second location which is closer to, or substantially coincident with, or proximate said fast flow streamline, or (ii) moving the third layer across the fast flow streamline to a second location.not coincident therewith.
  141. 309
    317. The method according to any of claims 312 to 316, characterised in that the layered flow stream is formed in a nozzle having an injection channel, e.g. centrally located, and then is injected into the injection cavity, the flow stream formed in said channel having a flow streamline which corresponds to the fast flow streamline in the injection cavity, and the first location of the interface in said channel is not coincident with the flow streamline in said channel that corresponds to the fast flow streamline in the injection cavity, the third layer being interposed between said first and second layers at a position which is not coincident with the said flow streamline in the channel that corresponds to the fast flow streamline in the injection cavity, and the third layer either is moved to a second location in said channel which is closer to or substantially coincident with the flow streamline in said channel that corresponds to the fast flow streamline in the injection cavity, or is moved across the said flow streamline to the non-coincident second location.
  142. 310
    318. The method according to any of claims 312 to 317, characterised by forming the multi-layer flow stream comprising three layers for injection into an injection cavity into an annular or tubular layered stream, in which the second layer material is formed around the first layer material to establish an annular or tubular interface between the flowing materials of said first and second layers, the interface being positioned between the flowing materials of said first and second layers at the first location which is not coincident with said fast flow streamline, the latter being annular for preference.
  143. 311
    319. The method according to any of claims 312 to 318, characterised by forming the third layer for interposition between the first and second layers as a plural layer composite from a plurality of constituent materials.
  144. 312
    320. A method of overcoming bias of a portion of the terminal end of the internal layer of a multi-layer injection blow molded container which comprises folding over the biased terminal end portion to provide the internal layer with a substantially unbiased overall leading or terminal edge.
  145. 313
    321. A method of forming an injection molded multi-layer rigid plastic parison for forming a blow molded container wherein the parison side wall has an internal layer therein, characterised by injecting a multi-layer stream into an injection cavity, and during the injection step, causing a portion of the marginal end portion of the internal layer to fold over as the said portion moves into the cavity, to form a parison in said cavity having a portion of the internal layer folded over within the marginal end portion of the side wall.
  146. 315
    323. An injection molded, multi-layer plastics article, e.g. a parison for blow molding, the article having a side wall (26) with an internal layer (C), and being characterised by the latter having a portion, e.g. a terminal end portion, (33) which is folded over within the side wall (26).
  147. 318
    326. The article according to any of claims 323 to 325, characterised in that the folded over portion (46) is folded towards the inside of the article (Fig. 7).
  148. 319
    327. The article according to any of claims 323 to 326, characterised by the side wall (26) comprising an outside surface layer (B), an inside surface layer (A), and the internal layer (C) therebetween, by the side wall having a terminal end portion (28, 29) and the internal layer having a terminal end (33), and by a portion (46) of the terminal end of the internal layer (c) being folded over within the side wall (26), whereby the terminal end (33) of an unfolded portion of the internal layer (0 and the fold line (44) of the folded over portion (46) are located in the terminal end portion of the side wall.
  149. 320
    328. The article according to any of claims 323 to 327, characterised by an outwardly disposed terminal flange (29) for attachment of a closure, and at least a part of the folded over portion (46) of the internal layer (C) is in the flange (29).
  150. 321
    329. The article according to any of claims 323 to 328, characterised in that the internal layer (C) is an oxygen barrier material.
  151. 326
    334. The article according to any of claims 323 to 333, characterised in that the side wall (26) has a terminal end, and the internal layer (C) has a terminal edge (33) which is substantially unbiased relative to the terminal end (48) of the side wall.
  152. 328
    336. An injected molded multi-layer container wherein the container has a side wall (26) having an internal layer (C) and having a marginal end portion, characterised by the internal layer (C) having in said marginal end portion a leading edge whose plane is substantially unbiased relative to the axis of the container, said leading edge being comprised at least in part of the fold line (44) of a folded over portion (46) of said internal layer.
  153. 329
    337. An injection molded multi-layer plastics article having a side wall (26) with an internal layer (C), characterised in that the latter has a terminal end portion (33) farther from the terminal end (48) of the container than is another adjacent, directionally related marginal end portion (44) of the internal layer. An injection molded multi-layer plastics article having a side wall (26) with a terminal end (48) and an internal layer (C), characterised by the latter having a fold line (44) from which extends a folded over portion (46), and a terminal end (33) of the folded over portion is farther from the terminal end of the article than the fold line.
  154. 330
    339. An injection molded multi-layer plastics article having a terminal end (48) and a side wall (26) with an internal layer (C), characterised by the latter having a fold line (44) and a terminal end (33), wherein there is less variation in distance from the fold line to the terminal end of the article than from the terminal end of the internal layer to the terminal end of the article.
  155. 331
    340. An injection molded multi-layer plastics article having a terminal end (48) and a side wall (26) with an internal layer (C), characterised by the latter having a marginal end portion and a terminal end (33), part of the marginal end portion being folded over along a fold line (44) such that the folded over part (46) is located adjacent another portion of the internal layer (C), and the terminal end (33) of the internal layer is farther from the terminal end of the container than the fold line.
  156. 332
    341. The article according to any of claims 337 to 340, characterised in that the article is a container having a marginal end portion (28), for example which includes a flange (29), wherein the terminal end (33) of the internal layer (0 is located.
  157. 333
    342. The article according to any of claims 338 to 341, characterised in that the article is a container having a marginal end portion (28), for example which includes a flange (29), and wherein the fold line (44) is located.
  158. 334
    343. A multi-nozzle injection molding apparatus for an injection molding machine, characterised by runner means (276, 288) having a forward end with a plurality of co-injection nozzle means (296) mounted therein, means (950, 282) for supporting the runner means, and means (956, 951;974, 982) mounting the runner means on the support means to allow the runner means (276, 288) to float axially, or both axially and radially, on the support means while the apparatus is in operation.
  159. 343
    353. The apparatus according to any of claims 343 to 351, characterised in that the support means includes axial supporting bores (945, 982), one adjacent each of the forward and rearward ends of the runner means (288, 276), and the runner means includes axially extending elongated members (951, 276) mounted on the axial center line of the runner means, one at the forward end and one at its rearward end, each member being adapted to be seated in one of the respective axial supporting bores (945, 982) for supporting the runner means at each end, each member and associated bore being configured to allow the runner means to float within the support means.
  160. 345
    355. A method of injection molding characterised by juxtaposing a plurality of co-injection nozzle means (296) and a plurality of injection cavities (104) are juxtaposed and a plurality of polymer material streams are fed along a runner means (276, 288) to each of the nozzle means, mounting the runner means (276, 288) on an axial center line thereof to allow it to float axially, radially or both axially and radially, due to thermal expansion and injection back pressure, and compensating for the rearward force exerted through the runner means during said axial floatation, by exerting on the runner means through and along its axial center line a forward force sufficient to compensate for the rearward force and sufficient to provide an effective pressure contact seal between the nozzles and the cavities during operation of the machine.
  161. 346
    356. An elongated feeding device for redirecting and feeding polymer flow streams from a runner block to an injection nozzle in an injection molding machine, characterised in that the device (294) is designed to receive a plurality of separate polymer flow streams from the runner block and, while maintaining the flow streams separate, to redirect them so as to flow axially out of a forward end of the device for entry into a multi-polymer co-injection nozzle, the device having a plurality of inlets (392 to 396) cut radially into its periphery, each for receiving one of the plurality of separate polymer flow streams from the runner block, a plurality of separate feed channels, each communicating with a respective inlet and having an inwardly directed portion (404, 408, 412) leading toward the central axis of the device and an axial portion (406, 412, 416, 414) leading axially forwards through the device to an associated exit hole (407, 411, 417, 415) in a forward end portion (388) of the device, the plurality of exit holes being disposed in the forward end portion, preferably in a circumferentially and radially staggered pattern for feeding the polymers as separate flow streams into the rear of the co-injection nozzle of a multi-polymer injection molding machine.
  162. 354
    364. The feeding device according to any of claims 356 to 363, characterised in that the exit holes are radially spaced from each other and there is an arc of 60* between most of the exit holes and an arc of 120’ between two of the exit holes.
  163. 358
    368. An elongated flow stream splitter device (e.g. 276) for use in a runner block of a multi-nozzle, injection molding machine, characterised by a polymer flow stream entrance zone (278), a plurality of flow stream exit zones (344, 346), a plurality of spaced flow channels (220, 222, 250, 257, 258) extending through a portion of the device, and a plurality of spaced entrance ports at the entrance zone (278) communicating with the flow channels (220, 222, 250, 275, 258), each of the flow channels having a portion (715 to 720) which branches at a branch point (342) within the device whereat it splits into first and second exit branches (e.g. 700, 701) of substantially equal length which lead to respective first and second exit ports, the plurality of the first exit ports (344) and the plurality of second exit ports (346) being arranged as longitudinally-aligned rows of spaced exit ports, for communication with corresponding flow channel entrances of a runner block (288) of the injection molding machine.
  164. 362
    372. The splitter device according to any of claims 368 to 371, characterised in that the axial center line of the entrance flow channel (e.g. 250;367;373) intersects the axial center line of each of its associated branched exit flow channels (704, 705;368, 368';374, 374') at a point on the axial center line of the device.
  165. 364
    374. The splitter device according to any of claims 368 to 373, characterised in that the first and second exit branches (e.g. 374, 374') extend in opposite directions, at an angle of less than 90״ relative to each other, and at angles of greater than 90’ relative to the flow channel (373) from which they branch.
  166. 366
    376. The splitter device according to any of claims 368 to 375, characterised in that each branch point (e.g. 342) and its associated first and second exit ports (344, 346) are in a common plane.
  167. 367
    377. The splitter device according to any of claims 368 to 375, characterised in that each flow channel (e.g. 250), its branch point (342C) and its first and second exit branches (704, 705) and the associated first and second exit ports (344, 346) are in a common plane.
  168. 368
    378. The splitter device according to any of claims 368 to 377, characterised in that the first and second exit branches (700, 701) lie in planes perpendicular to the longitudinal axis of the device (276״).
  169. 369
    379. The splitter device according to any of claims 368 to 378, characterised in that the respective first and second exit ports are on opposed surface portions of the splitter device (276, 290, 292).
  170. 370
    380. The splitter device according to any of claims 368 to 379, further characterised by means for isolating the respective polymer flow streams which exit the device through the first and second branched exit ports (344, 346) having a common branch point (e.g. 342C), from the other flow streams which exit the device through other first and second branched exit ports having other common branch points.
  171. 379
    389. The splitter device according to any of claims 384 to 388, characterised in that the forward end portion of the device includes isolation means for maintaining flow streams which exit from the exit ports (344, 346) isolated from one another.
  172. 382
    392. The splitter device according to any of claims 384 to 391, characterised in that the forward end portion is adapted to be seated within a conform!ngly-shaped hole (e.g. 286) in a runner block (288), and includes sealing means adjacent to and downstream of the foremost pair of first and second exit ports (344, 346-B) and adjacent to and upstream of the rearmost pair of first and second exit ports (344, 346-A), for substantially preventing flow streams which exit the exit ports from flowing axially in said hole downstream past the foremost sealing means and upstream past the rearmost sealing means.
  173. 384
    394. The splitter device according to claims 388 or 393, characterised in that the peripheral arc from the center of each entrance port to the center of each of its associated exit ports is about 90’.
  174. 385
    395. The splitter device according to any of claims 388, 393, or 394, characterised in that each flow channel and the branch point, first and second exit branches, and first and second exit ports associated therewith are in the same transverse plane.
  175. 386
    396. The splitter device according to any of claims 388 and 393 to 395, characterised in that the first and second exit branches (374, 374') of a flow channel (373) extend in opposite directions at an angle of less than 90’ relative to each other and each is at an angle greater than 90’ to the flow channel.
  176. 388
    398. The splitter device according to any of claims 388 and 393 to 397, characterised by isolation means for isolating from one another flow streams which are directed at and enter through the entrance ports (364, 371), and for isolating the flow streams which leave the device through the first and second exit ports (366, 366';372, 372') having a common branch point, from the other flow streams which leave the device through their respective first and second exit ports having other branch points.
  177. 391
    401. Apparatus for simultaneously injection molding a plurality of structures having a plurality of layers and formed from streams of at least two molding materials having different compositions, said apparatus being characterised by a plurality of molding nozzles (296) and a plurality of supply duct means (220, 222, 250, 257, 258) corresponding to the number of layers in the structures, and further characterised by means (e.g. 276, 290, 292) connecting said supply duct means with said nozzles, said means comprising a series of branched channels (e.g. 700, 701;368, 368';374, 374') extending from each of the supply duct means, the length and branch angles of the channels connecting with any one supply duct means being substantially equal, thereby to insure identical treatment of each molding material being delivered to the several molding nozzles.
  178. 393
    403. Apparatus for simultaneously injection molding a plurality of structures each having a plurality of layers formed from streams of molding materials having compositions corresponding to the layers of said structure, characterised by said apparatus comprising a plurality of molding nozzles (296), a plurality of essentially parallel supply duct means (220, 250, 222, 257, 258) for directing the flow of said molding materials, and means connecting said nozzles with said duct means, and further characterised by the connecting means comprising runner extension means (276) for dividing the stream of molding material from each of said ducts and reorienting said divided streams for further division, said runner extension means comprising an elongated, e.g. cylindrical, block having a plurality of primary channels (220, 222, 250, 257, 258) each connecting with a respective supply duct means, said channels having portions extending generally axially of the block and being of different lengths, and the channels connecting to a plurality of branches (e.g. 700, 701) extending therefrom to the surface of the block, the branches extending from each channel being of the same length and each making substantially the same angle with the channel.
  179. 397
    407. A method for simultaneously injection molding by means of molding nozzles, a plurality of multi-layered structures, which method is characterised in that it comprises establishing a plurality of streams, e.g. parallel streams, of molding material of compositions corresponding to the layers of said structure, for delivery to the molding nozzles (296), dividing each of said streams into a plurality of branches a plurality of times, the angle between each branch and the stream prior to branching, at any point of branching (e.g. 342), being substantially the same for each branch, and the distance between points of branching after the first branching, being substantially the same for each branch, whereby each given molding material in its travel to a molding nozzle (296) follows a path substantially identical to the path followed to every other nozzle.
  180. 398
    408. A method for simultaneously injection molding multi-layered structures by means of molding nozzles which method is characterised in that it comprises establishing a plurality of substantially parallel streams of molding material of compositions corresponding to the layers of said structure, angularly directing each of said streams to first division points (e.g. 342A), splitting each of said streams at said first division points into two branches (708, 709), each of the branches at any division point making substantially the same angle with the stream from which it originated as any other branch, conveying each of said branches to second division points (290), splitting each of said branches into two sub-branches (352A, 353A), each of said sub-branches being at approximately a right angle to the branch (350A, 351A) from which it originated, conveying each of said sub-branches to third division points (292), splitting each of said sub-branches into two end lines (356A, 357A), each of the end lines at a third division point making the same angle with the sub-branch (352A) from which it originated as any other end line, and conveying each of the end lines to a nozzle (296), to a nozzle feed block means (294) located between the end line and the nozzle, or to a fourth division point, the length of each branch, sub-branch and end line for the molding material of a layer of the multi-layered structure being substantially the same as every other respective branch, sub-branch and end line for that material.
  181. 399
    409. A multi-polymer injection molding machine, characterised by a plurality of co-injection nozzle means (296);a plurality of identical valve means (e.g. 800) one in each nozzle means (296) for identically initiating, regulating and terminating the flow of polymer materials through the respective nozzles;drive means adapted for simultaneously and identically driving the plurality of valve means, and including common moving means (e.g. 856) to which each of the valve means (e.g. 800) is cooperatively associated in a manner that simultaneously provides identical movements of all the valve means within the co-injection nozzle means within which they operate to provide simultaneous and identical control over the initiation, regulation and termination of the flows of polymer materials through all the co-injection nozzle means (296);and control means (2040) connected to the common moving means (e.g. 856), for moving the common moving means in a desired mode to provide the identical simultaneous movements of the valve means and said identical simultaneous flow controls.
  182. 401
    411. The apparatus according in that the valve means includes the common moving means includes bar (850). to claim 410, characterised an elongated pin (834) and an elongated pin shuttle cam
  183. 409
    419. The apparatus according to any of claims 409 to 418, characterised in that the drive means includes compensating means associated with the valve means, e.g. each of the first valve means, to compensate for axial play in the drive means, the valve means or both, and for dimensional deviations in associated structures, the compensating means e.g. including a compression spring (888) mounted between the valve means and the common moving means.
Independent claims183