High-temperature vacuum pressing machine for TP material
Through the design of the high-temperature vacuum compressor, the quality problem caused by uneven pressure in the heating roller of TP material is solved, and the high-quality production of TP sheets is achieved, which reduces the defect rate and production costs and improves product competitiveness.
Patent Information
- Application Number
- CN202510847626.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-08-15
AI Technical Summary
In the existing TP material heating roller pressing process, the roll pressure distribution is uneven or the roll gap deviation is large, resulting in uneven surface concave and convexity of the TP sheet, which is poor in quality, high defect rate, large production costs, and insufficient product competitiveness.
A high-temperature vacuum compressor is adopted, including a frame, control box, carrier conveyor, heating device, vacuum compressor and vehicle return device. The TP material is driven horizontally through the carrier conveyor, and double-sided heating is used to heat the aluminum plate and infrared heating plate, vacuum compressing and cooling is provided to provide uniform and stable pressure, avoid unevenness and reduce the defect rate.
Improve the flatness and quality of TP sheets, reduce defect rate, reduce production costs, improve product competitiveness, reduce manual operation, and improve production efficiency.
Smart Images

Figure CN120481291A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of laminating machines, in particular to a high-temperature vacuum laminating machine for TP materials. Background Art
[0002] With the continuous development of social economy, more and more mechanical equipment has been manufactured and widely used in agriculture, industry and service industries. There are many types of mechanical equipment. According to the different needs of people, they have been further innovated and played an indispensable role in people's work and life. Mechanical equipment is everywhere.
[0003] The internal structure of mechanical equipment is becoming increasingly complex, its functions are becoming more and more diverse, and it is constantly being improved. Mechanical equipment generally includes a drive device, a speed change device, a transmission device, a working device, a braking device, a protective device, a lubrication system, a cooling system, etc., and different devices play different roles in the mechanical equipment.
[0004] TP materials are thermoplastic materials. Common TP materials include TPE (thermoplastic elastomer) and TPU (thermoplastic polyurethane). Generally, a sheet of TP material has a standard thickness. However, the thickness required to produce other products using TP material varies. Therefore, multiple sheets of TP material must be laminated and pressed into a TP sheet of the desired thickness before the product can be manufactured.
[0005] The current TP material lamination process generally uses a heated roller pressing method, where multiple sheets of TP material are pressed together using multiple lamination rollers to form a single TP sheet. However, due to uneven roller pressure distribution or large deviation in the roller gap, the position of the TP material relative to the lamination rollers can easily shift, resulting in uneven and less than smooth surfaces on the laminated TP sheet. This results in poor quality TP sheets, a high defect rate, and product quality assurance. This creates inconvenience and high production costs, making the product less competitive and unable to meet existing needs. Therefore, it is necessary to develop a new technical solution to address these issues. Summary of the Invention
[0006] In view of this, the present invention addresses the deficiencies in the prior art, and its main purpose is to provide a high-temperature vacuum pressing machine for TP materials, which can effectively solve the problems in the prior art of the heated roller pressing process of TP materials. Due to uneven roller pressure distribution or large roller gap deviation, the position of the TP material relative to the pressing roller is easily offset, which easily makes the surface of the TP sheet after pressing uneven and not smooth enough, resulting in poor quality of the produced TP sheet and a high defective rate. The quality of the product cannot be guaranteed, which brings inconvenience to production, high production cost, and low competitiveness of the product.
[0007] To achieve the above object, the present invention adopts the following technical solutions:
[0008] A high-temperature vacuum laminating machine for TP materials, comprising a frame, a control box, a carrier conveying device, a carrier, a heating device, a vacuum laminating device, and a carrier reflow device;
[0009] The control box is mounted on the frame; the carrier conveying device is transversely mounted on the frame and electrically connected to the control box; the carrier is mounted on the carrier conveying device and is driven to move transversely by the carrier conveying device;
[0010] The heating device and the vacuum pressing device are arranged on the frame and in sequence along the conveying direction of the material, and the heating device and the vacuum pressing device are both electrically connected to the control box; the heating device includes a first bracket, an aluminum plate and an infrared heating plate, the first bracket is arranged on the frame, the aluminum plate is arranged on the first bracket and is electrically connected to the control box, the infrared heating plate is arranged on the first bracket and is located above the aluminum plate, the infrared heating plate and the aluminum plate form a heating cavity, and the infrared heating plate is electrically connected to the control box; the aluminum plate has good thermal conductivity and uniform heat distribution, which avoids the problem of local overheating or uneven temperature. The thermal conductivity of the aluminum plate is high and can quickly transfer heat to the TP material, thereby improving the heating efficiency; the infrared heating plate has a very fast heating speed and high energy transfer efficiency, can quickly transfer heat to the TP material, has low energy consumption, and the infrared heating plate heats evenly, which is beneficial to improving the quality of the product. The infrared heating plate can achieve precise control of the heating temperature and area The vacuum pressing device is a kind of vacuum pressing device which is used for pressing and forming the sheet materials, and the vacuum pressing device is a kind of vacuum pressing device which is used for pressing and forming the sheet materials. The vacuum pressing device is a kind of vacuum pressing device which is used for pressing and forming the sheet materials. The vacuum pressing device is a kind of vacuum pressing device which is a kind of vacuum pressing device which is used for pressing and forming the sheet materials. The vacuum pressing device is a kind of vacuum pressing device which is a kind of vacuum pressing device which is used for pressing and forming the sheet materials. The vacuum pressing device is a kind of vacuum pressing device which is a kind of vacuum pressing device which is a kind of vacuum pressing device which is a kind of vacuum pressing device
[0011] The carrier reflux device is arranged on the frame and located below the carrier conveying device. The input end of the carrier reflux device is connected to the output end of the carrier conveying device, the output end of the carrier reflux device is connected to the input end of the carrier conveying device, and the carrier reflux device is electrically connected to the control box.
[0012] As a preferred solution, the carrier conveying device includes two conveying rails, two transverse driving mechanisms and four clamping mechanisms for clamping the carrier. The two conveying rails are arranged on the frame and extend laterally. The two conveying rails are arranged on both sides of the carrier. The two transverse driving mechanisms can be arranged on the corresponding conveying rails so as to move back and forth laterally. The two transverse driving mechanisms are electrically connected to the control box. Every two clamping mechanisms are arranged on the corresponding conveying rails and are driven to move back and forth laterally by the corresponding transverse driving mechanism. The four clamping mechanisms are all electrically connected to the control box.
[0013] As a preferred solution, the clamping mechanism includes a third bracket, a first cylinder and a clamping block. The third bracket is arranged on the conveying guide rail and is driven by the horizontal driving mechanism to move back and forth horizontally. The first cylinder is arranged on the third bracket. The first cylinder is electrically connected to the control box. The clamping block is arranged at the output end of the first cylinder and is driven by the first cylinder to move back and forth.
[0014] As a preferred solution, the carrier conveying device includes two second up and down driving mechanisms, which are electrically connected to the control box. The two second up and down driving mechanisms are respectively arranged on the corresponding conveying guide rails and driven by the corresponding horizontal driving mechanisms to move back and forth horizontally. Every two clamping mechanisms are arranged on the corresponding second up and down driving mechanisms and driven by the second up and down driving mechanisms to move back and forth up and down.
[0015] As a preferred solution, the second up and down driving mechanism is a second cylinder structure.
[0016] As a preferred solution, the carrier reflow device includes a plurality of first conveying rollers and two lifting mechanisms, the plurality of first conveying rollers are arranged side by side horizontally and located between the two lifting mechanisms, each lifting mechanism includes a fourth bracket, a third up and down driving mechanism and a lifting platform, the fourth bracket is arranged on the frame, the third up and down driving mechanism can be arranged on the fourth bracket so as to move up and down, the third up and down driving mechanism is electrically connected to the control box, the lifting platform is arranged on the fourth bracket and is driven up and down by the third up and down driving mechanism, the lifting platform is provided with a plurality of second conveying rollers, the plurality of second conveying rollers of one lifting platform are arranged on the side of the aluminum plate, and the plurality of second conveying rollers of the other lifting platform are arranged on the side of the vacuum support plate.
[0017] As a preferred solution, the multiple first conveying rollers are driven by a first motor, and the multiple second conveying rollers are driven by a second motor. The first motor and the second motor are electrically connected to the control box.
[0018] As a preferred solution, the carrier is provided with a receiving cavity for placing materials. The carrier is square, and correspondingly, the receiving cavity is also square.
[0019] As a preferred solution, the infrared heating plate is provided with a plurality of infrared heating tubes, and the plurality of infrared heating tubes are electrically connected to the control box. The plurality of infrared heating tubes are evenly spaced and arranged side by side, so that the heating is more uniform.
[0020] Compared with the prior art, the present invention has obvious advantages and beneficial effects. Specifically, it can be seen from the above technical solution that:
[0021] The carrier is placed on the carrier conveying device and the carrier conveying device drives the horizontal movement, the heating device and the vacuum pressing device are placed on the frame and arranged in sequence along the conveying direction of the material, the carrier reflux device is placed on the frame and is located below the carrier conveying device, the input end of the carrier reflux device is connected to the output end of the carrier conveying device, and the output end of the carrier reflux device is connected to the input end of the carrier conveying device, and the carrier conveying device, the heating device, the vacuum pressing device and the carrier reflux device are electrically connected to the control box. The high-temperature vacuum pressing machine with this structure can heat and soften multiple TP materials before performing vacuum pressing operations. The vacuum pressing method can provide more uniform and stable pressure, making the pressing The resulting TP sheet has a higher flatness, avoiding unevenness and lack of smoothness, effectively improving the quality of the TP sheet, greatly reducing the defective rate, ensuring the quality of the TP sheet, reducing production costs, and making the product more competitive; secondly, the setting of the aluminum plate and infrared heating plate in the heating device can heat multiple TP materials on both sides, fully softening the multiple TP materials, which is conducive to the subsequent vacuum pressing operation; and the cooling mechanism can quickly cool and shape the sheets after pressing and forming, saving more time and improving product quality; the carrier reflow device can transport the carrier to its original position and can perform continuous circulation operations. There is no need for manual handling of the carrier, reducing manual operations, bringing convenience to production, and meeting existing needs.
[0022] In order to more clearly illustrate the structural features and effects of the present invention, the present invention is described in detail below with reference to the accompanying drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the three-dimensional structure of a preferred embodiment of the present invention;
[0024] Figure 2 is a cross-sectional view of a preferred embodiment of the present invention;
[0025] Figure 3 It is a partial structural diagram of a preferred embodiment of the present invention;
[0026] Figure 4 This is another structural diagram of a preferred embodiment of the present invention;
[0027] Figure 5 is a schematic diagram of the three-dimensional structure of a carrier in a preferred embodiment of the present invention;
[0028] Figure 6 This is a schematic diagram of the three-dimensional structure of the infrared heating plate in a preferred embodiment of the present invention;
[0029] Figure 7 It is a partial structural diagram of a vacuum pressing device in a preferred embodiment of the present invention;
[0030] Figure 8 It is a schematic diagram of the three-dimensional structure of the lifting mechanism in a preferred embodiment of the present invention.
[0031] Description of the accompanying drawings:
[0032] 10. Frame 20, carrier conveying device
[0033] 21. Conveyor guide rail 22. Horizontal drive mechanism
[0034] 23. Clamping mechanism 231. Third bracket
[0035] 232, first cylinder 233, clamping block
[0036] 24. Second up and down driving mechanism 241. Second cylinder
[0037] 30. Carrier 31. Accommodation cavity
[0038] 40. Heating device 41. First bracket
[0039] 42. Aluminum plate 43. Infrared heating plate
[0040] 431, infrared heating tube 401, heating chamber
[0041] 50. Vacuum pressing device 51. Second bracket
[0042] 52. Vacuum support plate 53. First up and down driving mechanism
[0043] 54. Vacuum suction plate 501, vacuum pressing chamber
[0044] 60. Carrier reflow device 61. First conveyor roller
[0045] 611, first motor 62, lifting mechanism
[0046] 621, fourth bracket 622, third up and down driving mechanism
[0047] 623, lifting platform 6231, second conveyor roller
[0048] 6232, second motor. DETAILED DESCRIPTION
[0049] Please refer to Figures 1 to 8 As shown, it shows the specific structure of a preferred embodiment of the present invention, including a frame 10, a control box (not shown), a carrier conveying device 20, a carrier 30, a heating device 40, a vacuum pressing device 50 and a carrier reflow device 60.
[0050] The control box is arranged on the frame 10; the carrier conveying device 20 is arranged horizontally on the frame 10 and is electrically connected to the control box; in this embodiment, the carrier conveying device 20 includes two conveying rails 21, two horizontal driving mechanisms 22 and four clamping mechanisms 23 for clamping the carrier, the two conveying rails 21 are arranged on the frame 10 and extend horizontally, the two conveying rails 21 are arranged on both sides of the carrier 30, the two horizontal driving mechanisms 22 are respectively arranged on the corresponding conveying rails 21 so as to be movable back and forth horizontally, the two horizontal driving mechanisms 22 are electrically connected to the control box, and each two clamping mechanisms 23 are arranged The four clamping mechanisms 23 are all electrically connected to the control box, and are arranged on the corresponding conveying guide rail 21 and driven by the corresponding transverse driving mechanism 22 to move back and forth laterally. Specifically, the clamping mechanism 23 includes a third bracket 231, a first cylinder 232 and a clamping block 233. The third bracket 231 is arranged on the conveying guide rail 21 and is driven by the transverse driving mechanism 22 to move back and forth laterally. The first cylinder 232 is arranged on the third bracket 231. The first cylinder 232 is electrically connected to the control box. The clamping block 233 is arranged at the output end of the first cylinder 232 and is driven by the first cylinder 232 to move back and forth.
[0051] In this embodiment, the carrier conveying device 20 includes two second up and down driving mechanisms 24, which are electrically connected to the control box. The two second up and down driving mechanisms 24 are respectively arranged on the corresponding conveying guide rails 21 and are driven by the corresponding horizontal driving mechanisms 22 to move back and forth horizontally. Every two clamping mechanisms 23 are arranged on the corresponding second up and down driving mechanisms 24 and are driven by the second up and down driving mechanisms 24 to move back and forth up and down; the second up and down driving mechanism 24 is a structure of a second cylinder 241.
[0052] The carrier 30 is disposed on the carrier conveying device 20 and is driven by the carrier conveying device 20 to move laterally. In this embodiment, a receiving cavity 31 for placing materials is provided on the carrier 30. The carrier 30 is square, and correspondingly, the receiving cavity 31 is also square.
[0053] The heating device 40 and the vacuum pressing device 50 are arranged on the frame 10 and arranged in sequence along the conveying direction of the material. The heating device 40 and the vacuum pressing device 50 are both electrically connected to the control box; the heating device 40 includes a first bracket 41, an aluminum plate 42 and an infrared heating plate 43, the first bracket 41 is arranged on the frame 10, the aluminum plate 42 is arranged on the first bracket 41 and electrically connected to the control box, the infrared heating plate 43 is arranged on the first bracket 41 and is located above the aluminum plate 42, the infrared heating plate 43 and the aluminum plate 42 enclose a heating chamber 401, and the infrared heating plate 43 is electrically connected to the control box; the aluminum plate has good thermal conductivity and uniform heat distribution, which avoids local overheating or uneven temperature problems. The thermal conductivity of the aluminum plate is high. It can quickly transfer heat to the TP material and improve heating efficiency; the infrared heating plate has a very fast heating speed and high energy transfer efficiency, can quickly transfer heat to the TP material, has low energy consumption, and the infrared heating plate heats evenly, which is beneficial to improving product quality. The infrared heating plate can achieve precise control of the heating temperature and area to meet different needs; the aluminum plate 42 and the infrared heating plate 43 heat multiple sheets of TP materials on both sides, fully softening the multiple sheets of TP materials, which is beneficial to subsequent vacuum pressing operations; in this embodiment, the infrared heating plate 43 is provided with multiple infrared heating tubes 431, and the multiple infrared heating tubes 431 are all electrically connected to the control box. The multiple infrared heating tubes 431 are evenly spaced side by side, and the heating is more uniform.
[0054] The vacuum pressing device 50 includes a second bracket 51, a vacuum supporting plate 52, a first up-and-down driving mechanism 53, a vacuum suction plate 54 and a cooling mechanism (not shown) for cooling and shaping the sheet after pressing and forming. The second bracket 51 is set on the frame 10, the vacuum supporting plate 52 is set on the second bracket 51, the first up-and-down driving mechanism 53 can be set on the second bracket 51 and is located above the vacuum supporting plate 52. The first up-and-down driving mechanism 53 is electrically connected to the control box, and the vacuum suction plate 54 is set on the second bracket 51 and is driven by the first up-and-down driving mechanism 53. The lower driving mechanism 53 drives the up and down movements. The vacuum suction plate 54 is arranged above the vacuum support plate 52, and the vacuum suction plate 54 and the vacuum support plate 52 form a vacuum pressing chamber 501. The vacuum suction plate 54 is electrically connected to the control box. The cooling mechanism is arranged on the second bracket 51 and is located on the side of the vacuum support plate 52. The cooling mechanism is electrically connected to the control box. In this embodiment, the cooling mechanism can be an air gun cooling structure. A film is also provided on the vacuum suction plate 54, which can cover the TP material before vacuum, which is beneficial to subsequent vacuuming operations.
[0055] The carrier reflux device 60 is arranged on the frame 10 and is located below the carrier conveying device 20. The input end of the carrier reflux device 60 is connected to the output end of the carrier conveying device 20, and the output end of the carrier reflux device 60 is connected to the input end of the carrier conveying device 20. The carrier reflux device 60 is electrically connected to the control box. In this embodiment, the carrier reflux device 60 includes a plurality of first conveying rollers 61 and two lifting mechanisms 62. The plurality of first conveying rollers 61 are arranged side by side in a horizontal direction and are located between the two lifting mechanisms 62. Each lifting mechanism 62 includes a fourth bracket 621, a third up and down driving mechanism 622 and a lifting platform 623. The fourth bracket 621 is arranged on the frame 10, and the third up and down driving mechanism 622 can be moved up and down. It is movably arranged on the fourth bracket 621, the third up-down driving mechanism 622 is electrically connected to the control box, the lifting platform 623 is arranged on the fourth bracket 621 and is driven up and down by the third up-down driving mechanism 622 to move back and forth, the lifting platform 623 is provided with a plurality of second conveying rollers 6231, the plurality of second conveying rollers 6231 of one lifting platform 623 are arranged on the side of the aluminum plate 42, and the plurality of second conveying rollers 6231 of the other lifting platform 623 are arranged on the side of the vacuum support plate 52; the plurality of first conveying rollers 61 are a structure driven by the first motor 611, and the plurality of second conveying rollers 6231 are a structure driven by the second motor 6232, and the first motor 611 and the second motor 6232 are electrically connected to the control box.
[0056] The working process of this embodiment is described in detail as follows:
[0057] First, place the carrier 30 on the multiple second conveyor rollers 6231 of the lifting platform 623 near the aluminum plate 42, and stack multiple TP materials in different directions and place them in the accommodating cavity 31 of the carrier 30 (stacking in different directions can make the TP sheets stronger after pressing); start the machine, the multiple second conveyor rollers 6231 rotate forward (along the material conveying direction), and the four clamping mechanisms 23 of the carrier conveying device 20 cooperate to clamp the carrier 30 and convey the carrier 30 to the heating cavity 401 of the heating device 40. , the aluminum plate 42 and the infrared heating plate 43 heat the multiple TP materials on both sides, and after heating for 80S, the multiple TP materials are baked soft; then, the carrier conveying device 20 conveys the carrier 30 to the vacuum supporting plate 52 of the vacuum pressing device 50; then, the first up and down driving mechanism 53 of the vacuum pressing device 50 drives the vacuum suction plate 54 to move downward, and the vacuum suction plate 54 cooperates with the vacuum supporting plate 52 to evacuate, and the negative pressure generated is used to press the multiple TP materials tightly into shape, thereby obtaining a pressed TP sheet, and vacuum pressing makes the formed TP sheet The flatness of the TP sheet is higher, and the cooling mechanism is used to quickly cool and shape the TP sheet after pressing and forming, which saves more time; then, the carrier conveying device 20 conveys the carrier 30 to the multiple second conveying rollers 6231 of the lifting platform 623 close to the vacuum support plate 52, completing the operation of pressing multiple TP materials into TP sheets. At this time, the pressed TP sheet can be taken out from the carrier 30; then, the third up and down driving mechanism 622 of the two lifting mechanisms 62 drives the lifting platform 623 to move downward, so that the lifting platform 623 The multiple second conveying rollers 6231 are on the same horizontal plane as the multiple first conveying rollers 61, and the multiple second conveying rollers 6231 and the multiple first conveying rollers 61 rotate in opposite directions (in the opposite direction of material conveying). The multiple second conveying rollers 6231 and the multiple first conveying rollers 61 convey the empty carriers 30 to the multiple second conveying rollers 6231 of the lifting platform 623 close to the aluminum plate 42, and the third up and down driving mechanism 622 drives the lifting platform 623 to move upward, thereby returning the empty carriers 30 to their original position and starting the next round of operation.
[0058] The design emphasis of the present invention is:
[0059] The carrier is placed on the carrier conveying device and the carrier conveying device drives the horizontal movement, the heating device and the vacuum pressing device are placed on the frame and arranged in sequence along the conveying direction of the material, the carrier reflux device is placed on the frame and is located below the carrier conveying device, the input end of the carrier reflux device is connected to the output end of the carrier conveying device, and the output end of the carrier reflux device is connected to the input end of the carrier conveying device, and the carrier conveying device, the heating device, the vacuum pressing device and the carrier reflux device are electrically connected to the control box. The high-temperature vacuum pressing machine with this structure can heat and soften multiple TP materials before performing vacuum pressing operations. The vacuum pressing method can provide more uniform and stable pressure, making the pressing The resulting TP sheet has a higher flatness, avoiding unevenness and lack of smoothness, effectively improving the quality of the TP sheet, greatly reducing the defective rate, ensuring the quality of the TP sheet, reducing production costs, and making the product more competitive; secondly, the setting of the aluminum plate and infrared heating plate in the heating device can heat multiple TP materials on both sides, fully softening the multiple TP materials, which is conducive to the subsequent vacuum pressing operation; and the cooling mechanism can quickly cool and shape the sheets after pressing and forming, saving more time and improving product quality; the carrier reflow device can transport the carrier to its original position and can perform continuous circulation operations. There is no need for manual handling of the carrier, reducing manual operations, bringing convenience to production, and meeting existing needs.
[0060] The above description is merely a preferred embodiment of the present invention and does not limit the technical scope of the present invention. Therefore, any minor modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention are still within the scope of the technical solution of the present invention.
Claims
1. A high-temperature vacuum laminating machine for TP materials, characterized by: It includes a rack, a control box, a carrier conveying device, a carrier, a heating device, a vacuum pressing device and a carrier reflow device; The control box is mounted on the frame; the carrier conveying device is transversely mounted on the frame and electrically connected to the control box; the carrier is mounted on the carrier conveying device and is driven to move transversely by the carrier conveying device; The heating device and the vacuum pressing device are arranged on the frame and arranged in sequence along the conveying direction of the material, and the heating device and the vacuum pressing device are both electrically connected to the control box; the heating device includes a first bracket, an aluminum plate and an infrared heating plate, the first bracket is arranged on the frame, the aluminum plate is arranged on the first bracket and electrically connected to the control box, the infrared heating plate is arranged on the first bracket and located above the aluminum plate, the infrared heating plate and the aluminum plate form a heating chamber, and the infrared heating plate is electrically connected to the control box; the vacuum pressing device includes a second bracket, a vacuum support plate, a first upper and lower driving mechanism, a vacuum suction plate and a cooling mechanism for the sheet material after pressing and forming. The cooling mechanism is fixed, the second bracket is arranged on the frame, the vacuum supporting plate is arranged on the second bracket, the first up-down driving mechanism can be arranged on the second bracket to move up and down and is located above the vacuum supporting plate, the first up-down driving mechanism is electrically connected to the control box, the vacuum suction plate is arranged on the second bracket and is driven up and down by the first up-down driving mechanism to move back and forth, the vacuum suction plate is arranged above the vacuum supporting plate, and the vacuum suction plate and the vacuum supporting plate are surrounded to form a vacuum pressing cavity, the vacuum suction plate is electrically connected to the control box, the cooling mechanism is arranged on the second bracket and is located on the side of the vacuum supporting plate, and the cooling mechanism is electrically connected to the control box; The carrier reflux device is arranged on the frame and located below the carrier conveying device. The input end of the carrier reflux device is connected to the output end of the carrier conveying device, the output end of the carrier reflux device is connected to the input end of the carrier conveying device, and the carrier reflux device is electrically connected to the control box.
2. The high-temperature vacuum laminating machine for TP materials according to claim 1, characterized in that: The carrier conveying device includes two conveying rails, two transverse driving mechanisms and four clamping mechanisms for clamping the carrier. The two conveying rails are arranged on the frame and extend laterally. The two conveying rails are arranged on both sides of the carrier. The two transverse driving mechanisms can be arranged on the corresponding conveying rails so as to move back and forth laterally. The two transverse driving mechanisms are electrically connected to the control box. Every two clamping mechanisms are arranged on the corresponding conveying rails and are driven to move back and forth laterally by the corresponding transverse driving mechanism. The four clamping mechanisms are all electrically connected to the control box.
3. The high-temperature vacuum laminating machine for TP materials according to claim 2, characterized in that: The clamping mechanism includes a third bracket, a first cylinder and a clamping block. The third bracket is arranged on the conveying guide rail and is driven by the horizontal driving mechanism to move back and forth horizontally. The first cylinder is arranged on the third bracket. The first cylinder is electrically connected to the control box. The clamping block is arranged at the output end of the first cylinder and is driven by the first cylinder to move back and forth.
4. The high-temperature vacuum laminating machine for TP materials according to claim 2, characterized in that: The carrier conveying device includes two second up and down driving mechanisms, which are electrically connected to the control box. The two second up and down driving mechanisms are respectively arranged on the corresponding conveying guide rails and are driven to move back and forth horizontally by the corresponding horizontal driving mechanisms. Every two clamping mechanisms are arranged on the corresponding second up and down driving mechanisms and are driven to move back and forth up and down by the second up and down driving mechanisms.
5. The high-temperature vacuum laminating machine for TP materials according to claim 4, characterized in that: The second up and down driving mechanism is a structure of a second cylinder.
6. The high-temperature vacuum laminating machine for TP materials according to claim 1, characterized in that: The carrier reflow device includes a plurality of first conveying rollers and two lifting mechanisms, the plurality of first conveying rollers are arranged side by side horizontally and between the two lifting mechanisms, each lifting mechanism includes a fourth bracket, a third up and down driving mechanism and a lifting platform, the fourth bracket is arranged on the frame, the third up and down driving mechanism can be arranged on the fourth bracket so as to move up and down, the third up and down driving mechanism is electrically connected to the control box, the lifting platform is arranged on the fourth bracket and is driven up and down by the third up and down driving mechanism, the lifting platform is provided with a plurality of second conveying rollers, the plurality of second conveying rollers of one lifting platform are arranged on the side of the aluminum plate, and the plurality of second conveying rollers of the other lifting platform are arranged on the side of the vacuum support plate.
7. The high-temperature vacuum laminating machine for TP materials according to claim 6, characterized in that: The plurality of first conveying rollers are driven by a first motor, and the plurality of second conveying rollers are driven by a second motor. The first motor and the second motor are electrically connected to the control box.
8. The high-temperature vacuum laminating machine for TP materials according to claim 1, characterized in that: The carrier is provided with a receiving cavity for placing materials. The carrier is square, and correspondingly, the receiving cavity is also square.
9. The high-temperature vacuum laminating machine for TP materials according to claim 1, characterized in that: The infrared heating plate is provided with a plurality of infrared heating tubes, and the plurality of infrared heating tubes are electrically connected to the control box, and the plurality of infrared heating tubes are evenly spaced and arranged side by side.