Method and apparatus for the continuous production of thermoplastic sheets.
Abstract
The invention relates to a process for the continuous production of thermoplastic webs of at least one extruded, heated to processing temperature door thermoplastic web. These thermoplastic web is cooled under the influence of surface pressure up to the temperature at which the smoothing of the surface is completed. The calibration and smoothing device in the apparatus for carrying out the inventive method consists of a double band press, which has means for removing heat from the thermoplastic web in the reaction zone in which the surface pressure is applied.

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Projected expiry passed 12 July 2006, 20.2 years ago.
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45 claims: 7 independent, 38 dependent
- c-de-00011. A process for the continuous production of thermoplastic plastic webs, in particular for the further processing into plates or foils extruded from at least one, heated to processing temperature thermoplastic web by calibrating and smoothing the surface during cooling of the thermoplastic web, characterized, that the cooling of the thermoplastic web is carried from the processing temperature to the final temperature at which the smoothing and calibration of the surface is completed, under the action of surface pressure.
- c-de-00088. The method anch claim 7, characterized in that the thermoplastic flakes are scattered into a fiber fleece.
- c-de-00099. A method according one of claims 1 to 8, characterized in that the thermoplastic web is heated additionally before the cooling.
- c-de-002727. Device according to claims 24, 25 or 26, characterized in that an extruder (2) in front of the double band press (1) is mounted so that the of the extruder (2) extruded plastic melt (4) directly into the double belt press (1) enters ,
- c-de-003636. Device according to one of claims 24, 25 or 26, characterized in that, before the double band press (1) Abwikkeleinheiten (55,56) with rollers (57,58) and spare rollers (57a, 58a) for extruded thermoplastic webs or foils are arranged are, these webs drawn off the rolls, merged into a layered web (59) and be directly introduced into the double belt press (1).
- c-de-003838. Device according to one of claims 24, 25 or 26, ABy in that the spreading device (67) for extruded thermoplastic flakes (68) or powder before the double band press (1), is mounted in the vicinity of the inlet zone (61) so that the thermoplastic flakes (68) or the powder are scattered into a fiber fleece which runs into the double belt press (1).
- c-de-003939. Device according to one of claims 24, 25 or 26, characterized in that the lower belt unit (65) of the double band press (1) is so preferred that it protrudes from the inlet zone (61) and above this lower band unit, the spreading device (67 ) is attached to the sprinkling of the extruded thermoplastic flakes (68) before the entry zone (61) so that the web of scattered thermoplastic flakes (68) from the press belt (66) of the lower belt unit (65) into the reaction zone (62) of the double band press (1) is transported.
Independent claims7
32 paragraphs, as filed
Method and apparatus for the continuous production of thermoplastic plastic webs
The invention relates to a process for the continuous production of thermoplastic plastic webs according to the preamble of claim 1 and an apparatus for performing this method.
Semi-finished products made of thermoplastic material, such as sheets, films, tapes, etc., are produced mainly by extrusion. In the extruder die, the macromolecules of the plastic melt judge due to the acting external forces in a preferred direction corresponding to the direction of flow. This orientation will freeze at the rapid cooling after leaving the die, leading to internal stresses of the semifinished product. Furthermore lead such orientations, amplified by vortex arising from cross-sectional constrictions in the nozzle, often to melt fracture, wherein the plastic melt then a stick-slip phenomenon emerges from the nozzle, resulting in a rough surface of the semifinished product. Reworking the surface of the extrudate after leaving the die of the extruder is therefore required.
Known production lines for extruded sheets or films made of thermoplastic materials consist of an extruder with nozzle, a subsequent smoothing and calibrating unit, a cooling device, a deduction for the plastic sheet and means for cutting the plastic sheet, stacking the plates, etc. The result of the rough surface of the extrudate required reworking takes place in the calibrating unit. Such Kalbrierwerk is usually one of several rolls of existing with highly polished surfaces calender. The calender causes cooling of the extrusion taking utmost elimination of thickness variations and a smoothing of the surface of the plastic sheet. Here, the Kalan must be the set so that only a smoothing of the surface, but not a deformation of the entire web takes place, since then additional non-symmetrical internal stress states may occur, which results in warping of the web by itself.
A disadvantage of the use of the calender for the smoothing and calibration of the extrudate, therefore, is that so that although a certain smoothing of the surface can be achieved, however, it is not possible to remove the already present in the web by extruding residual stresses. There is even a danger, yet incorporate other additional stresses. In the area of the rollers of the calender takes place a bend of the plastic sheet around these rolls, so that the web must be in the thermoelastic state, thus also the temperature of the rolls must be kept relatively high so that there is only a limited cooling in the range of the rollers. Therefore, this cooling takes place mainly during the plastic sheet, the cooling rolls of the calender wraps, is so bent, thus being dimensionally erred for the aspired level, low-stress plastic sheet. The subsequent further cooling in the subsequent cooling unit is then depressurized. But also during the passage of the plastic web through the calender affects only one brief line pressure on the cooling path, so only briefly applied pressure in total throughout the cooling phase of the plastic sheet, and thus the so far achieved properties of the surface of the plastic sheet still far from ideally aspired condition.
Starting from this prior art the invention has the object of providing a method and apparatus for the continuous production of extruded plastic webs of thermoplastic material, in particular for the further processing into plates or foils, to specify with which both an improved quality of the surface of the plastic web as well as reduced internal stress thereof is reached.
This object is mediated by the technical teaching described in the characterizing part of claim 1 and serving for carrying out this process is specified in the characterizing part of patent claim 24th
The advantages attainable with the invention consist in particular in that the pressure-dimensionally throughout the cooling time on the extruded plastic sheet in the flat position in which also the finished product is intended to apply and acts. This excellent surface of the plastic sheet up results not yet unheard goodness. Since the web is not subjected to bending stress during cooling, but perfectly flat remains, no further internal stresses in the sheet may occur. Rather, it has been shown that the inevitable resulting from extruding residual stresses can be greatly reduced with the aid of the inventive method. The cooling rate of the plastic web may advantageously be adapted to the requirements of the micro structure of the particular thermoplastics. therefore, the novel process brings about a decisive improvement in the properties of extruded plastic webs of thermoplastic material.
A preferred embodiment of the invention will be described in more detail below. Show it<ul><li>FIG. 1 is a general view of a production plant for the continuous production of a plate-like or sheet-like extrudate</li><li>Fig. 2 shows a section through a double belt press with an upstream extruder,</li><li>FIG. 3 is a printing plate in plan view,</li><li>Fig. 4 is a section, by the pressure plate along the line AA in Fig. 3</li><li>Fig. 5 shows an apparatus for the continuous coating of substrate webs,</li><li>Fig. 6 shows an enlarged detail of the inlet zone in a device for two-sided coating of carrier webs,</li><li>Fig. 7 shows the inlet zone of a double belt press,</li><li>Fig. 8 shows a device for welding a plurality of extruded thermoplastic webs,</li><li>FIG. 9, the inlet zone of a double belt press with heated and idlers</li><li>Fig. 10 the inlet zone a double belt press with projecting lower band unit.</li></ul>
In Fig. 1, a production plant for continuous production of thermoplastic sheets and films is shown schematically. It consists of a double belt press 1, an extruder 2 is in front of things, enema. The emerging from the nozzle 3 of the extruder 2 web-shaped plastic melt 4 is introduced according to the inventive method in the double belt press 1 and cooled down in this by the action of surface pressure, that the plastic melt 4 after leaving the double band press 1 to form a solid plastic sheet 5 having a smooth and polished or embossed surface is formed. This plastic sheet 5 passes at a uniform rate to a cross cutting unit 6, where it is divided into plates 7 of any size that are stacked in pallets for transportation. 8 Alternatively, the plastic web 5, if it is a thin, flexible plastic sheet or a film, to be wound onto a roll 12 in a winder unit 11 after leaving the double band press. 1 If the roller 12 is filled, it can be further 5 wound onto a spare roll 13 without interrupting production the plastic web. The entire plant is controlled by a computer in a control cabinet. 9 The data input by the user via the terminal 14th
The Fig. 2 shows the extruder 2 with a downstream double belt press 1 schematically in section. The known as trained extruder 2 has an elongated cylinder 19, in which one of a motor 16 via a reduction 17 driven screw 18 is located. The screw 18 takes in its rear part, in its helical grooves 20, the granules 14 to be processed for the thermoplastic material on which is filled in a hopper 15 of the extruder second These granules are transported with the screw 18 and melted during this transport. Given more heating jackets 21 are around the cylinder 19 placed. At the front end of the screw 18, the plastic melt is homogenized and densified, and exits through the nozzle 23 of the flanged on the front part of the cylinder 19 extruder tool 22nd The nozzle 23 of the extruder tool 22 are the outgoing and warm plastic melt 4, the cross-sectional shape. The nozzle 23 is formed as a slot die, so as to obtain a flat and sheet-shaped plastic melt 4 of substantially rectangular cross section.
The molten plastic material 4 exits as to processing temperature located viscoelastic web from the nozzle 23 of the extruder 2, is taken up by the belts of the double belt press 1 and introduced into the inlet zone 61 of the double belt press the first The continuously operating double belt press 1 is also shown in FIG. 2 in section. It owns four mounted in a press frame Umlenktrommein 24, 25, 26, 27. The press frame is omitted from the drawing for clarity. To two of lying on a horizontal plane deflection drums that rotate in the guide drums 24 and 25 in accordance with arrows, an endless, made of metal press belt 28, 29 is guided, which is tensioned by means of hydraulic cylinders 30th Between the two press belts 28, 29, in the reaction zone 62, which consists of the plastic melt 4 in the drawing, from right to left leading web cooled surface pressure.
The pressure exerted on the plastic melt surface pressure is 4, 29 deposited on printing plates 31, 32 hydraulically or mechanically to the inner sides of the press belts 28 and transferred from there to the plastic melt. 4 For hydraulic pressure transmitting a pressurized settable, fluid pressure medium in the space 33, which is up and down from the pressure plate 31 and the press belt inside 28 and limited to the sides of the seal 34, introduced, so that the space 33 as a pressure pad acts. As fluid pressure medium oil or air is used for example. The structure of the along the edge of the printing plate 31 rectangular closed seal 34 can be seen in Fig. 4. It consists of a U-shaped retaining bar 35 of metal, in which the elastic sealing member 36 is pinched. The U-shaped retaining strip 35 is located in a groove 38 along the edge of the printing plate 31 on the retaining strip 35 is the groove base to an O-ring 37, on the groove base is applied a printing medium, so that the sealing body 36 against the inside of the press belt 28 is pressed and the space 33 to seal the sides.
To the plastic melt 4 to cool to the desired final temperature on leaving the double belt press 1, the pressure plates 31, 32 are maintained at a temperature which is much lower than the final temperature to be reached of the plastic melt. 4 Given 32 channels 40 are four in the pressure plates 31, mounted, as is also shown in FIG. It can be seen. These channels 40 are traversed by a cooling liquid which absorbs heat and discharges and thus 31 keeps the target temperature of the printing plate at the desired low level. Of course, the cooling of the printing plate can also electrically, for example by means of Peltier elements.
In the printing plate 31 are located transversely to the direction of the press belt 28 attached, sponding across the width of the printing plate rei grooves 41, as shown in FIG. 3 and 4 can be seen. In these grooves 41 rod-shaped heat-conducting elements 39 are used. These thermally conductive elements 39 are made of copper and are connected at one end to the pressure plate 31 to form a good Wärmeleitkontaktes and touch the other hand, the inside of the press belt 28 by grinding. The groove bottom of the groove 41 for lies on the heat-conducting member 39 on an elastomeric seal 42 which is acted upon by the groove base with a pressure medium, so that the heat-conducting element 39 always has contact with the press belt 28th
Since there is a thermal gradient between the pressure plate 31 and the plastic melt 4, sets a heat flow from the molten plastic material 4 via the press belt 28 and the heat conducting members 39 in the pressure plate 31, so that the plastic melt during the passage through the double belt press is continuously cooled. The rate of cooling of the molten plastic material 4 depends on the temperature level of the printing plate 31 and the number of heat conducting members 39, as well as their thermal conductivities. The achievable end temperature of the plastic melt 4 can be further than the speed of the press belts 28, rules 29 in the double belt press. Of course, the pressure plate 32 may be also formed as the pressure plate 31 and heat-conducting elements contain 39, in which case the cooling speed is doubled. Other materials and training forms for such heat-conducting elements are described in the published patent application DE-OS 33 25 578, so that there is no longer need to be discussed further.
Instead of the hydraulic pressure transmission in the laminator 1 can also be a mechanical pressure transfer can be provided, whose training will be illustrated in FIG. 2 by the pressure plate 32. Between the pressure plate 32 and the press belt 29 inside fixed, consisting of metal rollers 43 are mounted. With the aid of hydraulic cylinders 44, the pressure plate 32 and thus the rollers 43 is positioned against the inside of the press belt 29 so that thereby the desired pressure is exerted on the plastic web.
The pressure plate 32 is also, as already described above, cooled. This is a heat flow of the plastic melt 4 on the press belt 29 and the rollers 43 in the pressure plate 32 and the plastic melt 4 is cooled to the desired temperature. If not sufficient, the size of the heat flux over the rollers 43, as can additional heat conductive elements 39 which are formed as described above, are mounted between the rollers. If desired, in an inventive device can also be combined with the mechanical transmission of the hydraulic pressure with the use of heat conductive members.
The plastic melt 4 is placed so after leaving the extruder 2 to a press belt 29 or 28 of the laminator in the anterior Umlenktrommein 24, 25 and conveyed by the press belt in the double belt press, or right in the middle of the gap between the two idlers 24, 25 into the inlet zone 61 is extruded, so that the plastic melt 4 of the two press belts 28, 29 is detected simultaneously. While the resin melt 4 is continuously drawn through the double belt press 1, so that the double band press 1 also acts as a take-off device for the extrudate, it is cooled under the simultaneous action of surface pressure. The applied surface pressure acts as a calibration which imparts the thermoplastic resin sheet has a certain thickness and a certain surface structure. By uniformly and areally acting during cooling pressure is obtained, as has been found, advantageously, a correction of existing orientations of the plastic molecules and the related, originating from the extrusion residual stresses, so that the process of this invention extruded plastic sheets or films of yet not unknown quality can be produced.
The surface structure of the double belt press 1 leaving the plastic sheet 5 hangs within wide limits of the surfaces of the press belts 28, 29 from. Possess the press belts have a smooth surface, so the surface of the plastic sheet is replaced by a smooth, polished look, that the plastic sheet 5 is press polished in the double belt press. 1 This effect can be enhanced by providing the surface of the pressing belts with a high-gloss, electrodeposited chromium layer. Possess the press belts a structured surface, for example knobs, corrugations, ornaments, random structures, etc., so the plastic sheet 5 is replaced by an embossed into the surface reflection of this pattern. It is also possible to structure the carrier web, which consists for example of a metal foil with a textured surface to leave so converge in front of the laminator with the plastic melt, the non-patterned surface of the structure support web rests on a press belt of the laminator and the structured surface of the structure support web to the plastic melt, in which case the structuring of the carrier structure impresses under the surface pressure in the double-belt press in the plastic web. On leaving the double band press in the guide drums 26 and 27 of the structure support is then separated from the plastic sheet. 5
Some thermoplastics may require cooling in several stages. For this purpose, the pressure plates 31, 32 of the double belt press 1 are divided into a plurality of consecutive areas that are cooled to the required different setpoint temperatures. Each of these areas is provided with heat-conducting elements 39, so that the reaction zone 62 has decreasing temperatures. The plastic melt is then cooled 4 successively to the various temperatures during passage through the reaction zone 62 in the double belt press the first If required by the plastic melt, a region can also between any two areas in the printing plate, which are provided with heat-conducting elements may be provided with no heat-conducting elements. In the reaction zone 62 is followed by a cooling section in each case a distance, where the intermediate temperature is maintained, so that takes place a step-like cooling of the plastic melt. With this configuration, the cooling rate can be optimally adapted to the due to the microstructure of the polymer melt needs. However, it should be emphasized as essential to the invention that in the reaction zone by cooling under surface pressure on any final temperature.
It is also within the scope of the invention 24 and 25 heat the inlet-side deflection drums on a purposeful temperature. For example, such a temperature between the final temperature of the plastic sheet 5 lying on leaving the double belt press 1 and the temperature of the plastic melt leaving the extruder at 4 second 25 As shown in FIG. 9, have the Umlenktrommein 24, in the cylinder casing 64 across the width of Umlenktrommein 24, 25 reaching channels 63. These channels 63 are traversed by a thermal oil that gives off heat to the Umlenktrommein from where the press belts 28 , 29 are also heated by heat conduction. The press belts 24 and 25 also have then this elevated temperature and the resin melt 4 then remains in the inlet zone 61 of the double belt press 1 in the viscoelastic state. This can advantageously be the residual stresses of the plastic sheet 5 further reduce and increase their dimensional accuracy. In the field of printing plates 31, 32, the plastic sheet is then cooled along with the press belts 28, 29th It may also be advisable to divide the printing plates in a heating and cooling area, said the inlet side guide drums 24, 25 facing the area is heated to a purposeful temperature and thus the plastic melt 4 further heated via the heat conductive members. 39 This can replace the heating of the inlet-side idler pulleys or support the same happened. This is particularly important in the following exemplary embodiment where a plurality of extruded thermoplastic webs are welded together. Of the outlet side Umlenktrommein 26, 27 facing the area of the reaction zone 62 is then again, as explained above, designed as a cooling zone.
In the extrusion of the plastic melt 4, as shown in Fig. 7, possible to work with a little excess, resulting in the formation before the Umlenktrommein 24 and 25, a bead 53 made of accumulated plastic melt at the inlet of the double band press. This will advantageously prevents air from entering the reaction zone 62 with the melt and creates an erroneous plastic sheet with pores. Advantageously, the extrusion of the quantity of the plastic melt 4 in dependence on the size of the bead can be controlled 53rd This uniform conditions are achieved during the entire processing time. In order to be able to already expel dissolved air by extruding the plastic melt to the inlet side Umlenktrommein 24, 25 to one another to be adjustable in the direction of arrow 54, causing an additional calendering of plastic melt 4 and leakage of air against the flow direction of the plastic melt. The calendering of the plastic melt 4 in the inlet zone 61 by controlling the roll gap can be important in order to compensate a volume contraction of the cooling melt and so to ensure the dimensional stability of the plastic sheet. 5 The formation of the inlet-side deflection drums a double belt press for calendering is known per se and can be carried out according to the published patent application DE-OS 34 02 751st
Another operating according to the inventive method, apparatus used for the production of plastic-coated carrier webs is shown in Fig. 5. This apparatus has an extruder 2 with a slot die 23 and a double belt press the first front of the double belt press 1 is 25, a roller 46 mounted near the deflection drum, which is located at a known, in the drawing unwinding unit not shown. From the roll 46 is a carrier web 47, which may consist for example of a paper, metal or fabric, unwound and brought together in the inlet zone 61 of the double belt press 1 with the plastic melt from the extruder 4 second It is also possible that the carrier sheet 47 consists of a scattered fibrous web. If necessary, the carrier may be pre-heated track 47 between the roller 46 and the inlet into the double belt press by means of an infrared lamp heater or hot air. During the passage of plastic melt 4 on the carrier web 47 through the reaction zone 62, the plastic melt is cooled under areal pressure 4 and goes to the carrier web 47, a composite one. After leaving the double belt press 1, the coated backing web 48 may be on a roll in a winding unit, as shown in Fig. 1, is wound.
The production of a two-sided plastic coated carrier web is shown in Fig. 6 where the inlet zone 61 of the double belt press 1 is shown enlarged. In the vicinity of the upper inlet drum 24, an upper extruder 49 is attached, the 50 extrudes a molten plastic material on the press belt 28th This hot plastic melt 50 is adhered to the press belt 28 and is transported by it in the double belt press. 1 A lower extruder 45 is mounted in the vicinity of the lower inlet drum 25, and extruded a molten plastic material 51 on the press belt 29 so that this plastic melt 51 is likewise transported into the double belt press the first A drawn from a roller support web 52 runs between the two plastic masses 50 and 51 at the double belt press 1 and is 51 so merged into the inlet zone 61 with the plastic melt 50 that 52 is a plastic melt located on any surface of the carrier web. In the reaction zone 62 of the double belt press 1, the double-coated carrier web is then cooled down under areal pressure.
The apparatus shown in Fig. 2 is also suitable for incorporation of fillers in the plastics sheet 5, such as glass or metal fibers. For this purpose, mounted between the extruder die 22 and the inlet-side return pulley 24, a dispersing device for the fibers. This scatterer scatters the corresponding fibers in the plastic melt 4, the then applicable sink into the melt that they are surrounded by the thermoplastic plastic composition. The plastic melt 4 with the embedded fibers is then, as described above, cooled in the double belt press 1 to a filler-reinforced plastic sheet. 5
A further apparatus for carrying out the inventive method is shown in Fig. 8. This device is used for welding of individual thermoplastic plastic sheets or films into a compact plastic sheet. The individual plastic sheets may be made of conventional extruded and calendered thermoplastic films which were stored until further processing on rollers. Before the double band press 1 unwinding 55, 56 are erected, in which rollers 57 and 58 are located on thermoplastic films. These individual thermoplastic sheets are drawn off the rolls 57, 58, joined in front of the double belt press 1 to form a layered web 59, and introduced into the double belt press the first For each roll 57, 58 is a spare roll 57a, 58a are provided so that at the end of a roll, the production can be maintained by threading the respective spare part without interruption. If necessary, may be mounted for preheating the layered web 59 or the individual thermoplastic films before the double belt press 1 is an infrared radiator heating.
To weld the individual thermoplastic sheets together, they must first be heated in the inlet zone applicable until they are in the viscoelastic state. For this, the inlet-side deflection drums of the double belt press 1 as described above with reference to Fig. 9, heated, so that the individual films are heated when in contact with the press belts 28, 29. If this is not sufficient, so the inlet side portion of the reaction zone can also be heated by means of heat-conducting elements of the printing plate forth, as described in detail above. Once the films have the viscoelastic state corresponding temperature, welding each slide under the surface pressure in the reaction zone with each other to form a compact web.
During the further passage through the reaction zone of the double band press 1 this layered, welded sheet 59 is cooled in accordance with the inventive method in the reaction zone under surface pressure. For this, the pressure plate in the double belt press is in turn provided with heat conducting elements shown in FIGS. 3 and 4 and at least of the outlet side Umlenktrommein area facing the pressure plate is cooled. If necessary, the pressure plate again be divided into separate areas with different temperatures or allow a stepped cooling. At the outlet of the double band press 1 to obtain a cooled, compact plastic web 60 of thermoplastic material, which may be as shown in Fig. 1, wound or divided into individual plates.
Also possible is also a calendering the laminated web 59 by means of the inlet-side Umlenktrommein, desired in accordance with the Fig. 7. If desired, with the various thermoplastic films to reinforce a tissue sheet of glass cloth, textile fabric, etc. run in order to a reinforced thermoplastic web 60 to to lead. Although the individual thermoplastic films or sheets on the rollers 57, 58 are conventional extruded and calendered is pointed out that the compact plastics web 60 in which the films are welded to one another, the inventive benefits, such as reduced residual stress, a press polished surface, good dimensional stability , etc. has.
In Fig. 10 an embodiment of the inventive method is shown to be processed in which extruded thermoplastic flakes to a plastic web. The lower band unit 65 of the double belt press 1 is slightly forward, so that the lower press belt 66 slightly projects out of the inlet zone 61st Shortly before the inlet zone 61, over the press belt 66, a scattering device 67 is mounted, the extruded thermoplastic flakes 68 interspersed on the lower press belt 66 to form a nonwoven. This fleece is transported by the press belt 66 in the inlet zone 61, where they are compressed and heated to the extent as already explained above, that it forms a cohesive viscoelastic plastic web 69th Subsequently during the further passage through the double belt press 1, the plastic sheet 69 is then cooled down under areal pressure. It is here again calendering the scattered web by means of the inlet-side deflection drum 24 possible. If desired, a nonwoven fabric can run into the double belt press 1, and the extruded thermoplastic flakes or powder can be sprinkled into this nonwoven fabric as described before the inlet zone 61st The already mentioned advantages according to the invention for the cooled plastic sheet are also available in this embodiment again.
In the above description, various embodiments of devices for carrying out the inventive method are described. It is important in all of these embodiments, that the thermoplastic material is cooled under pressure surface, to which the inventive apparatuses are equipped with a double band press with heat-conducting elements in the plate.
10 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10
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| EP3922452A1 | Cited by | European Patent Office (EPO) | Applicant |
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Priority claims5
| Document | Office | Kind | Date |
|---|---|---|---|
| 3530309 | Germany | A | |
| 3530309 | Germany | A | |
| 3530309 | Germany | – | |
| 3530309 | – | – | – |
| DE19853530309 | – | – | – |
Members11
| Document | Office | Kind | |
|---|---|---|---|
| CN86105159A | China | A | |
| DE3530309A1 | Germany | A1 | |
| JPS6248524A | Japan | A | |
| EP0212232A2This record | European Patent Office (EPO) | A2 | |
| EP0212232A3 | European Patent Office (EPO) | A3 | |
| US4826560A | United States of America | A | |
| US4844766A | United States of America | A | |
| DE3530309C2 | Germany | C2 | |
| EP0212232B1 | European Patent Office (EPO) | B1 | |
| JPH0453693B2 | Japan | B2 | |
| RU1788931C | Russian Federation | C |
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| Search report despatchedORIGINAL CODE: 0009013PUAL | PUAL | EP | |
| Designated contracting statesAK | AK | EP | |
| Public reference made under article 153(3) epc to a published international application that has entered the european phaseORIGINAL CODE: 0009012PUAI | PUAI | EP |
Numbers
- Publication
- 0212232
- Publication, DOCDB
- 0212232
- Publication, EPODOC
- EP0212232
- Application
- 86109578
- Application, DOCDB
- 86109578
- Application, EPODOC
- EP19860109578
Titles3
- German
- Verfahren und Vorrichtung zum kontinuierlichen Herstellen thermoplastischer Kunststoffbahnen
- English
- Method and apparatus for the continuous production of thermoplastic sheets
- French
- Procédé et appareil pour la fabrication continue de feuilles thermoplastiques
Classification
- CPC, 13
- B29C43/28
- B29C43/222
- B29C43/228
- B29C43/34
- B29C43/48
- B29C43/52
- B29C2043/483
- B29K2105/0854
- Y10S264/65
- B29C48/00
- B29C48/07
- B29C48/08
- Y10T156/1741
- IPC, 11
- B29C43 22
- B29C43 34
- B29C43 48
- B29C43 52
- B29C48 00
- B29C48 07
- B29C48 08
- B29C48 90
- B29C48 92
- B29K105 06
- B29L7 00
Designated states1
- Contracting states, 1
- Sweden