EP0125787B2

Injection molding methods, injection molding apparatus and injection nozzle devices for use in molding multiple-layer articles, and multiple-layer injection molded articles

Abstract

This record has no abstract on file.

EP0125787B2, drawing sheet 1
Sheet 1 of 89

Term

Term ended

Expired 11 April 2004, 22.5 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

384 claims: 110 independent, 274 dependent

  1. 1
    A method of forming multi-layer plastics articles wherein said method involves use of a multi-cavity injection molding machine, in which a combined material stream is injected from each of a plurality of co-injection nozzle means (296) of said machine into an associated injection cavity (102) to form each article, and said method including :- providing polymeric materials to form layers of the articles, and moving streams thereof separately to each of the nozzle means (296), - forming in the plural nozzle means (296) combined streams which are substantially identical, from the separate material streams, and - injecting the combined streams to form the multi-layer plastics articles.
  2. 7
    A method according to any of claims 1 to 4, wherein the forming step includes positively effecting the initiation and termination of flow of the corresponding material streams substantially simultaneously in said nozzle means.
  3. 9
    A method according to any of claims 1 to 8, for producing articles having at least three layers, comprising 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.
  4. 12
    A method according to any of claims 9 to 11, wherein the pressure is imparted by a common pressure source (e.g. 252) while said materials are arrested by a positive blocking thereof, and flow of the so-pressurized materials is effected substantially simultaneously in the nozzles (296) by positive unblocking of said materials.
  5. 13
    Apparatus for forming a plurality of multi-layer plastics articles, comprising a plurality of injection nozzle means (296), each for injecting materials into an associated one of a plurality of cavities (102) to form the articles, means (208 to 212) for providing streams of materials for injection to form layers of the articles, 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, which are substantially identical, in the said nozzle means (296), for injection into their associated injection cavities (102) to form said articles.
  6. 18
    Apparatus according to any of claims 13 to 17, including 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).
  7. 20
    Apparatus according to any of claims 13 to 17, including 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).
  8. 22
    Apparatus according to any of claims 13 to 20, for use to produce articles having at least three layers, wherein 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).
  9. 25
    Apparatus according to any of claims 13 to 20, wherein 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).
  10. 26
    Apparatus according to any of claims 22 to 25, wherein the plural nozzle means have flow control means operative to control flow and/or non-flow of at least two material streams.
  11. 27
    Apparatus according to any of claims 22 to 26, wherein each flow control means is or are substantially identical in the plural nozzle means.
  12. 32
    A method according to any of claims 28 to 31, including a step of pressurizing the corresponding material streams substantially simultaneously.
  13. 41
    The method according to any of claims 33 to 38, wherein 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 (296).
  14. 42
    The method according to any of claims 33 to 41, further including the step of injection blow molding to form articles, such as containers, whose total side wall thicknesses average from 0.012 inch to 0.030 inch (0.30 to 0.76 mm).
  15. 43
    The method according to any of claims 33 to 42, involving the use of four co-injection nozzle means (296), one at each corner of a foursided pattern (see e.g. Fig. 29C), and 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.
  16. 44
    The method according to any of claims 33 to 42, involving the use of eight nozzle means (296), 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 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 (at 292) the respective streams into divergent streams, and directing each stream to a respective one of the eight nozzle means.
  17. 45
    The method according to any of claims 33 to 44, including bringing the separate flow streams together into combined streams in combining areas (546) of the respective nozzle means (296).
  18. 46
    A method according to any of claims 33 to 45, comprising establishing the combined streams in the nozzle means (296) such that the combined streams have the same mass flow characteristics.
  19. 51
    Apparatus according to any of claims 47 to 50, wherein 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.
  20. 52
    Apparatus according to any of claims 47 to 50, wherein 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).
  21. 53
    Apparatus according to any of claims 47 to 52, wherein said cavities are for molding parisons and said apparatus includes a plurality of blow mold cavities (108) wherein said parisons are inflated into containers.
  22. 54
    Apparatus according to any of claims 47 to 52, wherein said cavities (102 or 108) are shaped to define articles in the form of containers.
  23. 55
    Apparatus according to any of claims 47 to 54, wherein 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.
  24. 59
    The apparatus according to any of claims 56 to 58, wherein 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.
  25. 61
    The apparatus according to any of claims 56 to 60, including 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).
  26. 67
    The apparatus according to any of claims 64 to 66, wherein the valve means is 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.
  27. 70
    The apparatus according to any of claims 63 to 69, further including means (232, 252, 234) removed from the 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.
  28. 71
    The apparatus according to any of claims 63 to 70, wherein the valve means comprises 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) is 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 to be 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.
  29. 86
    The apparatus according to any of claims 63 to 65, which further 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 the nozzles each of which is 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).
  30. 93
    Apparatus according to any of claims 87 to 92, wherein the co-injection nozzle means (296) are substantially identical and have 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.
  31. 99
    The apparatus according to any of claims 94 to 98, wherein the first, second, fourth and fifth nozzle passageways (460, 480, 500, 520) of the nozzle means (296) 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.
  32. 108
    The method according to any of claims 104 to 107, wherein 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.
  33. 111
    The method according to any of claims 104 to 110, further including a step of substantially knitting in each nozzle means (296) the internal melt stream material with itself through the core material, and by moving the valve means (800,834) forward through the central channel (540) toward the gate (596) to assist in knitting the internal layer material.
  34. 114
    The method according to any of claims 104 to 113, wherein after flow-allowing step (b) there is included the steps of utilizing the valve means (800,834) 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.
  35. 120
    The method according to any of claims 115 to 119, wherein during step (iii) material is allowed to flow through the first orifices, and steps (ii) and (iii) are performed within 250 centiseconds, preferably within 100 centiseconds.
  36. 123
    A method according to any of claims 104 to 122, further including a step of forming combined streams 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.
  37. 124
    The method according to any of claims 100 to 123, wherein the nozzle means includes valve means which are substantially identical and are preferably operable substantially simultaneously.
  38. 134
    The apparatus according to any of claims 131 to 133, wherein the said valve means are adapted to move forward toward the gate (596) sufficiently to clear a combining area of the associated 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.
  39. 139
    The apparatus according to any of claims 135 to 138, wherein 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).
  40. 144
    The apparatus according to any of claims 141 to 143, wherein the elongated pin (834) has a greater axial length than the sleeve (800).
  41. 150
    The apparatus according to any of claims 145 to 149, wherein the sleeve means (800) is moveable to selected positions to block and unblock at least two of the said orifices.
  42. 151
    The apparatus according to any of claims 145 to 150, wherein the exit orifices (462, 502) completely surround the nozzle central channel (540).
  43. 152
    The apparatus according to any of claims 145 to 151, wherein 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.
  44. 153
    The apparatus according to any of claims 145 to 152, wherein the plane of at least one of the said orifices (462, 502) is perpendicular to the axis of the central channel (540).
  45. 154
    The apparatus according to any of claims 145 to 152, wherein the nozzle means have a plurality of further flow passageways for a plurality of further material streams, and the sleeve means have a plurality of axial flow passageways (666, 668) therefor.
  46. 155
    The apparatus according to any of claims 145 to 154, further including 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.
  47. 157
    The apparatus according to any of claims 145 to 156, adapted to control five material streams.
  48. 160
    Apparatus according to any of claims 145 to 159, including 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 communication between said internal axial passageway (820) and the or a flow passageway (440).
  49. 163
    The apparatus according to any of claims 145 to 162, further including material flow directing means (e.g. 464, 466) associated with each nozzle of said plurality thereof 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.
  50. 164
    The apparatus according to any of claims 145 to 163 further including means for pressurizing at least one material stream.
  51. 165
    The apparatus according to any of claims 145 to 164, wherein each nozzle of said plurality thereof further includes 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 the apparatus has 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.
  52. 167
    The apparatus according to any of claims 145 to 166, wherein each said 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).
  53. 168
    Apparatus according to any of claims 145 to 167 for co-injecting at least three melt material streams through the nozzles (296) into the associated cavities (102) to form thin wall multi-layer plastic articles each having at least one thin internal layer having a terminal end, wherein each nozzle (296) of said plurality thereof 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 the associated injection cavity.
  54. 172
    Apparatus according to any of claims 145 to 171, for co-injecting at least three melt material streams through the nozzles into associated cavities (102) to form thin wall multi-layer plastic articles each having an outer layer having a terminal end, wherein each nozzle (296) of said plurality thereof 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 the associated injection cavity.
  55. 176
    Apparatus according to claims 168, 169, or 170 and 172, 173 or 174, wherein the material streams to form both the internal and the outer layers of the articles 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 articles at the conclusion of polymer movement in the injection cavities.
  56. 177
    Apparatus according to any of claims 145 to 176, including means for selectively controlling the flow of at least three melt material streams through the nozzles (296) for co-injecting the materials into associated cavities (102) to form thin wall multi-layer plastic articles having an outer layer and at least one thin internal layer, wherein each nozzle (296) of said plurality thereof has a central channel (540) open at one end, 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 each injected article at the conclusion of polymer movements in said injection cavity.
  57. 184
    The apparatus according to any of claims 178 to 183, wherein 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 of each said valve, 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.
  58. 185
    The apparatus according to any of claims 178 to 184, wherein 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.
  59. 186
    Apparatus according to any of claims 178 to 185, further including material flow directing means (464, 466;524, 526) associated with each said 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.
  60. 191
    The apparatus according to any of claims 187 to 190, wherein each nozzle means of said plurality thereof has 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).
  61. 196
    The apparatus according to any of claims 192 to 195, wherein 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.
  62. 198
    Apparatus according to any of claims 192 to 197, wherein each nozzle means (296) of said plurality thereof 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 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.
  63. 205
    The apparatus according to any of claims 200 to 204, wherein said nozzle means has third, fourth and fifth passageways (440, 480, 520) and respective orifices for delivering melt streams to the central channel, and wherein the axial distance between a leading lip of the fourth orifice (482) and a trailing lip of the fifth orifice (522) is from 100 to 900 mils (2.54 to 22.9 mm), e.g. 100 to 300 mils (2.54 to 7.62 mm).
  64. 217
    Apparatus according to any of claims 211 to 216, wherein the or an orifice (e.g. 462) is located close to the open end (596) of the nozzle central channel (540).
  65. 220
    Apparatus according to any of claims 211 to 219, further including means (800) in each of said nozzle means (296) selectively moveable to prevent or permit flow into said central channel of the melt material (C) to form the said internal layer.
  66. 227
    Apparatus according to any of claims 221 to 226, wherein 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 mm) of the gate (596).
  67. 229
    Apparatus according to any of claims 221 to 228, wherein 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).
  68. 230
    Apparatus according to any of claims 221 to 229, wherein 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.
  69. 231
    Apparatus according to any of claims 221 to 230, wherein those orifices, irrespective of their number, which communicate with the combining area, are fixed relative to the central channel (540).
  70. 233
    Apparatus according to any of claims 221 to 232, wherein 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.
  71. 240
    A method according to any of claims 234 to 239, for co-molding a plurality of articles from at least two of said melt flow streams, comprising injection molding using a plurality of substantially identical co-injection nozzle means (296), and utilizing common moving means (232,234,260,262) 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 (296) by valve means (800,832) therein, said valve means preferably being substantially identical and preferably operable substantially simultaneously.
  72. 246
    The method according to claims 243 to 245, wherein the displacing step includes leaving the orifices (462) 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.
  73. 247
    The method according to any of claims 243 to 246, further including the steps of pressurizing the internal layer material or this material and the inner layer material while the orifice (440) 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.
  74. 253
    The method according to any of claims 249 to 252 for producing multi-layer injected articles having internal layers, wherein one or more melt materials are caused to flow along the central channel (540) of each nozzle means (296) 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 (502) so as to form a layer surrounding the polymeric melt material already flowing in the central channel.
  75. 259
    The method according to any of claims 256 to 258, wherein 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 (502), 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.
  76. 277
    The method according to any of claims 274 to 276, wherein 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 (502) into the central channel (540).
  77. 278
    A method according to any of claims 269 to 277, for introducing the material (e.g. C) from the said annular internal passageway orifice (502) into the central channel (540) of each nozzle means (296) so as to surround a stream of another melt material (e.g. A) already flowing in the central channel, comprising flowing the other melt material (A) through the nozzle central channel (540) from a location upstream of the annular orifice (502) while preventing flow of the first material (C) into the central channel from the orifice (502), pressurizing the first material (C) in the passageway (500), 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 (540) and sufficiently greater than the pressure imparted to the said other flowing material (A), as to densify the first material (C) in the passageway adjacent the orifice (502) 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.
  78. 281
    The method according to any of claims 274 to 280, comprising imparting an additional pressure upon the internal material (C) 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 (540).
  79. 291
    A method according to any of claims 249 to 290, further comprising introducing outer structural material (B) to the central channel (540) at an angle relative to the central channel and introducing innermost structural material (A) axially as a solid stream into central channel, wherein the method also including the steps of physically blocking the orifices (464,440) of the outer and internal layer materials and prepressurizing these layers (B,C) 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 (540).
  80. 292
    The method according to any of claims 249 to 290, comprising introducing the outer structural material (B) to the central channel (540) at an angle relative to the central channel, and by introducing the inner structural material (A) axially as a solid stream into the combining area, the method including the steps of pressurizing the polymer melt material for the outer layer (B) in its passageway (460) while blocking its orifice (464), then unblocking said orifice, and then as part of a displacing step, effecting a uniform onset of the flow of the outer structural material (B) from all points of its passageway orifice (464) into the nozzle central channel.
  81. 293
    The method according to claims 291 or 292, wherein the displacing step includes leaving the orifice (464) for the outer material (B) 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.
  82. 294
    The method according to any of claims 291 to 293, further including the steps of pressurizing the internal layer material (C) or this material and an inner layer material (A) 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.
  83. 295
    The method according to any of claims 291 to 294, wherein the pressurizing step is effected during a displacing step to subject the polymer melt material for the outer layer (B) while it is in its passageway (460) and its orifice (464) is blocked to a first pressure which would be sufficient to cause the material to flow into the central channel (540) if its orifice was unblocked, and, prior to allowing flow of the outer layer material (B) through its orifice, operating means to displace the said outer layer material in its passageway (460) and thereby raise it to a second pressure greater than the first pressure and sufficient to create, when its orifice (464) is unblocked, a surge of said material as an onset annular flow from all points of its orifice into the central channel (540), 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 (B) past flow-blocking means (800,834) into the channel, and, during and after the unblocking of the outer orifice layer (B), 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 (540).
  84. 301
    The method according to any of claims 296 to 300, wherein each layered flow stream is formed in a corresponding nozzle (296) having an injection channel (540), e.g. centrally located, and then is injected into an associated injection cavity (102), 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 (540) is not coincident with the flow streamline in said channel that corresponds to the fast flow streamline in the injection cavity, the third layer (C) being interposed between said first and second layers (A,B) at a position which is not coincident with the said flow streamline in the channel (540) that corresponds to the fast flow streamline in the injection cavity, and the third layer (C) 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.
  85. 302
    The method according to any of claims 296 to 301, comprising 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 (B) is formed around the first layer (A) 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.
  86. 303
    The method according to any of claims 296 to 302, comprising forming the third layer (C) for interposition between the first and second layers as a plural layer composite from a plurality of constituent materials.
  87. 307
    Apparatus according to any of claims 13 to 27 or 47, including 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.
  88. 312
    The apparatus according to any of claims 307 to 311, wherein portions of the runner means (276, 288) are mounted within structure of the apparatus with a clearance (G) between the runner means and the said structure to ensure freedom of the runner means to float axially, or both axially and radially, within the structure.
  89. 317
    The apparatus according to any of claims 307 to 315, wherein 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.
  90. 319
    A method according to any of claims 1 to 12, wherein a plurality of polymer material streams are fed along a runner means (276, 288) to each of the nozzle means (296), 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.
  91. 320
    Apparatus according to any of claims 13 to 27 or 47, further including an elongated feeding device for redirecting and feeding polymer flow streams from a runner block to an injection nozzle (296) of the apparatus, wherein 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 said 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 said nozzle.
  92. 328
    Apparatus according to any of claims 320 to 327, wherein the exit holes of the feeding device 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.
  93. 329
    Apparatus according to any of preceding claims 320 to 328, including isolation means (424) for maintaining the polymer flow streams directed radially at the feeding device isolated from one another, wherein the isolation means preferably includes a plurality of annular grooves (425) cut into the periphery of the device, each one being located between two inlets, and an expandable piston ring (424) seated in each annular groove.
  94. 332
    Apparatus according to any of claims 13 to 27 or 47, further including an elongated flow stream splitter device (e.g. 276) for use in a runner block of the apparatus, the splitter device including 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 the runner block (288).
  95. 336
    Apparatus according to any of claims 332 to 335, wherein 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 splitter device.
  96. 338
    Apparatus according to any of claims 332 to 337, wherein 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.
  97. 340
    Apparatus according to any of claims 332 to 339, wherein each branch point (e.g. 342) and its associated first and second exit ports (344, 346) are in a common plane.
  98. 341
    Apparatus according to any of claims 332 to 339, wherein 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.
  99. 342
    Apparatus according to any of claims 332 to 341, wherein the first and second exit branches (700'', 701'') lie in planes perpendicular to the longitudinal axis of the splitter device (276'').
  100. 343
    Apparatus according to any of claims 332 to 342, wherein the respective first and second exit ports are on opposed surface portions of the splitter device (276, 290, 292).
  101. 344
    Apparatus according to any of claims 332 to 343, further including means for isolating the respective polymer flow streams which exit the splitter 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.
  102. 353
    Apparatus according to any of claims 348 to 352, wherein 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.
  103. 356
    Apparatus according to any of claims 348 to 355, wherein the forward end portion of the splitter device is adapted to be seated within a conformingly-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.
  104. 358
    Apparatus according to claims 352 or 357, wherein the peripheral arc from the center of each entrance port to the center of each of its associated exit ports is about 90°.
  105. 359
    Apparatus according to any of claims 352, 357, or 358, wherein 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.
  106. 360
    Apparatus according to any of claims 352 and 357 to 359, wherein 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.
  107. 362
    Apparatus according to any of claims 352 and 357 to 361, including 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 splitter 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.
  108. 371
    A method according to any of claims 1 to 12, which comprises establishing a plurality of streams, e.g. parallel streams, of molding material of compositions required of the layers of said articles, 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.
  109. 372
    A method according to any of claims 1 to 12, which comprises establishing a plurality of substantially parallel streams of molding material of compositions required of the layers of said articles, 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 respective nozzle (296), to a respective 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 article being substantially the same as every other respective branch, sub-branch and end line for that material.
  110. 383
    The apparatus according to any of claims 373 to 382, wherein 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 claims110