A hydrogen energy battery heating material laminating device and method

By designing the hydrogen energy battery heating material lamination equipment for hydraulic cylinder-driven laminate and energized components, the problem of low lamination efficiency of multiple sets of heating materials in the prior art is solved, and efficient lamination of multiple sets of heating materials and convenient material pick-up and placement are achieved.

CN119910990BActive Publication Date: 2025-08-05JIANGSU DIPU IND LTD BY SHARE LTD
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Patent Information

Application Number
CN202510405785.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-02
Publication Date
2025-08-05
Estimated Expiration
2045-04-02

AI Technical Summary

Technical Problem

The existing membrane electrode hot pressing device can only stack one set of heating materials and cannot efficiently process multiple sets of heating materials, resulting in low lamination efficiency.

Method used

A hydrogen energy battery heating material lamination equipment is designed, using hydraulic cylinders to drive the laminate to move in opposite directions, and multiple sets of heating materials are realized through the energized assembly and the insulating assembly to achieve simultaneous heating lamination. Combined with the sealing assembly, the clamping assembly is used to facilitate the pick-up and placement of materials.

Benefits of technology

Simultaneous lamination of multiple groups of heating materials is realized, which improves lamination efficiency and reduces heat loss through sealing components, improves heat dissipation efficiency and facilitates the pick-up and placement of materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the technical field of hydrogen energy battery production, and discloses a hydrogen energy battery heating material lamination device and method, including a device body, and also including: a sliding door, the sliding door is slidably connected to the inner wall of the device body through a sealing component installed on one side of the device body; a hydraulic cylinder, the hydraulic cylinder is installed inside the device body; a laminate, the above technical solution is provided with an energized component and an insulating component. When multiple groups of heating materials are placed between the laminates, the upper and lower laminates can be pushed toward each other by starting the hydraulic cylinder, and the middle laminate is squeezed toward each other at the same time. When the laminates move toward each other, the energized component and both sides of the electric heating plate will be smoothly energized, so that the electric heating plate can smoothly perform hot pressing treatment on the multiple groups of heating materials placed between the laminates, thereby achieving the purpose of simultaneously heating and laminating multiple groups of heating materials, thereby greatly improving the lamination efficiency.
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Description

Technical Field

[0001] The present invention belongs to the technical field of hydrogen energy batteries, and in particular relates to a hydrogen energy battery heating material lamination device and method. Background Art

[0002] Hydrogen energy battery heating material lamination equipment, especially hot pressing equipment for hydrogen fuel cell membrane electrodes, is one of the key equipment in the hydrogen fuel cell manufacturing process. This type of equipment is mainly used to laminate the various materials of the membrane electrode (such as proton exchange membrane, catalyst layer, diffusion layer, etc.) under specific temperature and pressure to form a membrane electrode assembly with complete structure and good performance.

[0003] However, when laminating hydrogen energy battery heating materials, the existing membrane electrode hot pressing device can usually only perform stacking hot pressing on one group of heating materials. When multiple groups of heating materials need to be hot pressed, they need to be placed and hot pressed in sequence, which greatly reduces the lamination efficiency. Therefore, it needs to be improved. Summary of the Invention

[0004] In order to solve the problems raised in the above background technology, the present invention provides a hydrogen energy battery heating material lamination device and method, which has the advantage of facilitating the simultaneous lamination of multiple groups of heating materials.

[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a hydrogen energy battery heating material laminating device, comprising a device body, and also comprising: a draw-out door, the draw-out door being slidably connected to the inner wall of the device body through a sealing component installed on one side of the inner body of the device; a hydraulic cylinder, the hydraulic cylinder being installed inside the device body; a laminate, the laminate being slidably connected to the surface of the energized component installed on both sides of the inner wall of the device body, and the outer end being fixedly connected to the output end of the hydraulic cylinder, an insulating component located on the outer side of the energized component being provided between the laminates, and the outer sides of the laminates being connected to each other through The scissor-fork structure is linked and connected; the electric heating plate is installed inside the laminate and located inside the power-carrying component; wherein the power-carrying component includes electrode sheets arranged on both sides of the electric heating plate, the interior of the device body is electrically connected to a power-carrying rod located inside the electrode sheet, and the surface of the power-carrying rod is provided with a conductive sleeve located between the electrode sheets; the insulating component includes a first insulating corrugated sleeve installed between the end laminate and the inner wall of the device body, an insulating plate located inside the electrode sheet is provided between the laminates, and a second insulating corrugated sleeve is provided between the insulating plates;

[0006] The sealing assembly includes a sealing baffle, a sliding plate, a first limiting column and a movable block;

[0007] The sealing baffle is arranged in the inner cavity of the device body and is located between the drawing door and the laminate. The sliding plate is slidably installed inside the sealing baffle. The first limiting column is fixedly installed inside the drawing door. The movable block is slidably connected to the surface of the first limiting column and corresponds to the sliding plate one by one. The two ends of one side of the movable block are provided with clamping components, and one end of the clamping component passes through the sliding plate and extends to the top of the inner side of the laminate.

[0008] The ends of the sliding plates adopt a stacked telescopic design;

[0009] Limit rods are provided at both ends of one side of the movable block, one end of the limit rod passes through the sliding plate and extends into the inner cavity of the device body;

[0010] The inner sides of the insulating plates are elastically connected via a connecting spring, and the connecting spring is installed on the outer side of the second insulating corrugated sleeve.

[0011] Preferably, the inner sides of the insulating plates are elastically connected via a connecting spring, and the connecting spring is installed on the outer side of the second insulating corrugated sleeve.

[0012] Preferably, the first insulating corrugated sleeve, the insulating plate and the second insulating corrugated sleeve are all made of fluororubber.

[0013] Preferably, the clamping assembly includes a clamping support plate, a second limiting column, a tension spring, a first inclined block and a second inclined block;

[0014] The clamping support plate is movably installed at both ends of one side of the movable block, and one end passes through the sliding plate and extends to the top of the inner side of the laminate. The second limiting column is installed inside the movable block, and the surface is slidably connected to the inside of the other end of the clamping support plate. The outer side of the other end of the clamping support plate is elastically connected to the inner wall of the movable block through a tension spring.

[0015] Preferably, the inner wall of the tension spring is slidably connected to the surface of the second limiting column.

[0016] Preferably, the size of the inner inclined surface of the first inclined block is adapted to the size of the outer inclined surface of the second inclined block.

[0017] A method for laminating a hydrogen energy battery heating material, the lamination method is as follows:

[0018] S1: First, pull the drawer door to one side and pull it out, then place the heating material to be laminated on the top of the clamping assembly for clamping support;

[0019] S2: Pushing the sliding door drives the heating material clamped between the clamping components to move to the top of the inner side of the laminate inside the device body, and activating the hydraulic cylinder to push the laminates toward each other to squeeze the heating material clamped between the clamping components;

[0020] S3; start the power supply assembly to heat the entire electric heating plate, so that the heating material between the laminate is squeezed and heated at the same time, thereby achieving the purpose of heating lamination;

[0021] S4; After lamination is completed, the hydraulic cylinder can be started to drive the laminate to reset through the scissor structure and the connecting spring, and then the sliding door is pulled to drive the heating material between the clamping components to be completely pulled out, so that the clamping components release the heating material inside and perform the material removal operation.

[0022] Compared with the prior art, the present invention has the following beneficial effects:

[0023] The above technical solution sets up an energized component and an insulating component. When multiple groups of heating materials are placed between the laminates, the upper and lower laminates can be pushed toward each other by starting the hydraulic cylinder, and the middle laminate is squeezed toward each other at the same time. When the laminates move toward each other, the energized component and both sides of the electric heating plate will be energized smoothly, so that the electric heating plate can smoothly perform hot pressing treatment on the multiple groups of heating materials placed between the laminates, thereby achieving the purpose of heating and laminating multiple groups of heating materials at the same time, greatly improving the lamination efficiency.

[0024] The present invention provides a sealing component. Through the design of the sealing component, the inner side of the sliding door can be shielded and sealed, and part of the sealing component and the follower laminate move and slide synchronously toward each other, so as to maintain the sealing of the sliding door. Moreover, when the sliding door is pulled out to take out materials, the sealing component can be used to reduce the area of the internal connection between the device body and the outside world, thereby improving the internal heat dissipation efficiency and reducing the rate of heat loss inside the device body.

[0025] The present invention provides a clamping assembly. Through the design of the clamping assembly, the heating material placed between the laminates can be clamped. Then, when it is necessary to take out the heating material laminated between the laminates, the sliding door can be directly pulled to one side and the heating material clamped on the inside can be taken out together through the clamping assembly. Then, when the sliding door is completely pulled out to the outside, the clamping assembly can release the clamping effect of the heating material between the laminates, and finally the laminated heating material can be smoothly taken out. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is a schematic diagram of the structure of the present invention;

[0027] Figure 2 It is a schematic cross-sectional view of the present invention;

[0028] Figure 3 for Figure 2 Schematic diagram of the local enlarged structure at A in the middle;

[0029] Figure 4 for Figure 3Schematic diagram of the local enlarged structure at B in the middle;

[0030] Figure 5 Schematic diagram of the cross-sectional structure of the sealing assembly of the present invention;

[0031] Figure 6 This is a schematic structural diagram of the sealing baffle of the present invention;

[0032] Figure 7 Schematic diagram of the structure of the first limiting column of the present invention;

[0033] Figure 8 Schematic diagram of the cross-sectional structure of the movable block of the present invention;

[0034] Figure 9 for Figure 8 Schematic diagram of the local enlarged structure at point C in the middle.

[0035] In the figure: 1. Device body; 2. Sliding door; 3. Hydraulic cylinder; 4. Laminate; 5. Electric heating plate; 6. Power-on component; 601. Electrode sheet; 602. Power-on rod; 603. Conductive sleeve; 7. Insulation component; 701. First insulating corrugated sleeve; 702. Insulation plate; 703. Second insulating corrugated sleeve; 8. Connecting spring; 9. Sealing component; 901. Sealing baffle; 902. Sliding plate; 903. First limiting column; 904. Movable block; 10. Limiting rod; 11. Clamping component; 1101. Clamping support plate; 1102. Second limiting column; 1103. Tension spring; 1104. First inclined block; 1105. Second inclined block; 12. Scissors structure. DETAILED DESCRIPTION

[0036] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0037] like Figures 1 to 9As shown, the present invention provides a hydrogen energy battery heating material lamination device, including a device body 1, and also including: a drawing door 2, the drawing door 2 is slidably connected to the inner wall of the device body 1 through a sealing component 9 installed on one side of the inner body 1; a hydraulic cylinder 3, the hydraulic cylinder 3 is installed inside the device body 1; a laminate 4, the laminate 4 is slidably connected to the surface of the power-carrying component 6 installed on both sides of the inner wall of the device body 1, and the outer end is fixedly connected to the output end of the hydraulic cylinder 3, an insulating component 7 located on the outer side of the power-carrying component 6 is provided between the laminates 4, and the outer sides of the laminates 4 are linked to each other by a scissor structure 12; an electric heating plate 5, The electric heating plate 5 is installed inside the laminate 4 and is located on the inner side of the power-carrying component 6; wherein, the power-carrying component 6 includes electrode sheets 601 arranged on both sides of the electric heating plate 5, and the interior of the device body 1 is electrically connected to a power-carrying rod 602 located on the inner side of the electrode sheet 601, and the surface of the power-carrying rod 602 is provided with a conductive sleeve 603 located between the electrode sheets 601; the insulating component 7 includes a first insulating corrugated sleeve 701 installed between the end laminate 4 and the inner wall of the device body 1, and insulating plates 702 located on the inner side of the electrode sheet 601 are provided between the laminates 4, and a second insulating corrugated sleeve 703 is provided between the insulating plates 702.

[0038] When the top and bottom laminates 4 are pushed toward each other by the operation of the hydraulic cylinder 3, the inner laminates 4 will move toward each other synchronously, and at this time, the electrode sheets 601 on both sides of the electric heating plate 5 will move toward each other and contact the surface of the conductive sleeve 603. Finally, the current can be transmitted from the conductive sleeve 603 and the electrode sheets 601 to the electric heating plate 5 through the energizing rod 602 to energize and heat it, so as to achieve simultaneous heating during the lamination.

[0039] The sealing assembly 9 includes a sealing baffle 901, a sliding plate 902, a first limiting column 903 and a movable block 904;

[0040] The sealing baffle 901 is provided in the inner cavity of the device body 1 and is located between the drawing door 2 and the laminate 4. The sliding plate 902 is slidably installed inside the sealing baffle 901. The first limiting column 903 is fixedly installed inside the drawing door 2. The movable block 904 is slidably connected to the surface of the first limiting column 903 and corresponds one-to-one with the sliding plate 902. The two ends of one side of the movable block 904 are provided with a clamping assembly 11. One end of the clamping assembly 11 passes through the sliding plate 902 and extends to the top of the inner side of the laminate 4.

[0041] With the above solution, by using the sealing baffle 901 and the sliding plate 902 in conjunction with each other, the space between the inside of the device body 1 and the outside world can be reduced to the opening between the inner side of the sliding plate 902 and the clamping assembly 11, thereby preventing heat loss.

[0042] The ends of the sliding plate 902 adopt a stacked telescopic design;

[0043] With the above solution, the end portion of the sliding plate 902 is designed to be retractable, so that when the laminate 4 drives the sliding plate 902 to move toward each other, the end portion can smoothly retract and retract, thereby maintaining the sealing effect between the sealing baffle 901 and the sliding plate 902. Since the distance that the bottom laminate 4 and the clamping assembly 11 move toward each other as a whole is much greater than that of other parts, the bottom sliding plate 902 is larger than other parts to meet the sealing requirements.

[0044] Limit rods 10 are provided at both ends of one side of the movable block 904. One end of the limit rod 10 passes through the sliding plate 902 and extends to the inner cavity of the device body 1.

[0045] With the above solution, the movable block 904 and the sliding plate 902 can be connected together by the design of the limiting rod 10, so that the clamping assembly 11 is squeezed and moved by the laminate 4, and the movable block 904 and the sliding plate 902 can move smoothly and synchronously.

[0046] The inner sides of the insulating plates 702 are elastically connected via a connecting spring 8 , and the connecting spring 8 is installed on the outer side of the second insulating corrugated sleeve 703 .

[0047] Adopting the above scheme: when the hydraulic cylinder 3 is running, it can push the end laminates 4 to move toward each other, and then simultaneously push the inner laminates 4 to move toward each other, and at the same time compress the connecting spring 8. When the hydraulic cylinder 3 drives the end laminates 4 to reset, the elastic force of the connecting spring 8 will be released, so as to push the inner laminates 4 to move and reset.

[0048] like Figure 3 and Figure 4 As shown, the first insulating corrugated sleeve 701, the insulating plate 702 and the second insulating corrugated sleeve 703 are all made of fluororubber.

[0049] Adopting the above scheme: Fluororubber refers to a synthetic polymer elastomer containing fluorine atoms on the carbon atoms of the main chain or side chain, and it has strong high temperature resistance. Like silicone rubber, it can be said to be the best elastomer currently available. Type 246 fluororubber in fluororubber still maintains good elasticity after aging in hot air at 350°C for 16 hours and aging in hot air at 400°C for 110 minutes. Usually, the heat requirement of hydrogen energy battery heating materials during hot pressing is 20-300°C. Therefore, the use of type 246 fluororubber in fluororubber can smoothly insulate the outside of the power rod 602 and the conductive sleeve 603, and meet the heat resistance requirements.

[0050] like Figure 9 As shown, the clamping assembly 11 includes a clamping support plate 1101, a second limiting column 1102, a tension spring 1103, a first inclined block 1104 and a second inclined block 1105;

[0051] The clamping support plate 1101 is movably installed at both ends of one side of the movable block 904, and one end passes through the sliding plate 902 and extends to the top of the inner side of the laminate 4. The second limiting column 1102 is installed inside the movable block (904), and the surface is slidably connected to the inside of the other end of the clamping support plate 1101. The outer side of the other end of the clamping support plate 1101 is elastically connected to the inner wall of the movable block 904 through a tension spring 1103.

[0052] The above solution is adopted: by providing a movable block 904, when the sliding door 2 is pulled to drive the movable block 904 and the clamping support plate 1101 to be pulled out as a whole, the tension of the tension spring 1103 will be released, thereby pulling the clamping support plate 1101 to move in opposite directions, releasing the clamping effect on the inner laminated heating material, and finally the heating material can be smoothly taken out.

[0053] like Figure 9 As shown, the inner wall of the tension spring 1103 is slidably connected to the surface of the second limiting column 1102.

[0054] Adopting the above solution: through the design of the second limiting column 1102, the movement of the clamping support plate 1101 can be limited while the extension and contraction of the tension spring 1103 can be limited synchronously, so as to avoid the tension spring 1103 being twisted when being squeezed or stretched and reset, affecting the elastic effect.

[0055] like Figure 9 As shown, the size of the inner inclined surface of the first inclined block 1104 matches the size of the outer inclined surface of the second inclined block 1105 .

[0056] The above-mentioned scheme is adopted: when the sliding door 2 is pulled to drive the movable block 904 and the clamping support plate 1101 to be pulled out to one side as a whole, the tension spring 1103 will be released to pull the clamping support plate 1101 to reset, so that the outer inclined surface of the second inclined block 1105 slides along the inner inclined surface of the first inclined block 1104 and moves smoothly back to each other. Then, when the sliding door 2, the movable block 904 and the clamping support plate 1101 are pushed to move as a whole to the inside of the device body 1, the outer inclined surface of the second inclined block 1105 will be squeezed by the inner inclined surface of the first inclined block 1104, so that the second inclined block 1105 and the clamping support plate 1101 will move smoothly towards each other as a whole, so that the clamping support plate 1101 can clamp the heating material inside to achieve the purpose of loading.

[0057] A method for laminating a hydrogen energy battery heating material, the lamination method is as follows:

[0058] S1: First pull the drawer door 2 to one side and pull it out, then place the heating material to be laminated on the top of the clamping assembly 11 for clamping support;

[0059] S2: Push the sliding door 2 to move the heating material clamped between the clamping components 11 to the top of the inner side of the laminate 4 inside the device body 1, and start the hydraulic cylinder 3 to push the laminate 4 toward each other to squeeze the heating material clamped between the clamping components 11;

[0060] S3; start the power supply assembly 6 to energize the electric heating plate 5 as a whole, so that the heating material between the laminate 4 is extruded while being heated to achieve the purpose of heating lamination;

[0061] S4; After lamination is completed, the hydraulic cylinder 3 can be started to drive the laminate 4 to reset with the assistance of the scissor structure 12 and the connecting spring 8, and then the sliding door 2 is pulled to drive the heating material between the clamping components 11 to be completely pulled out, so that the clamping component 11 releases the heating material inside and performs the material removal operation.

[0062] The working principle and use process of the present invention:

[0063] First, the operator can pull out the sliding door 2 and place the heating material on the top inside the clamping support plate 1101, and then push the sliding door 2 to the other side so that the outer inclined surface of the second inclined block 1105 slides along the inner inclined surface of the first inclined block 1104, so that the clamping support plate 1101 is squeezed to move toward each other as a whole, and at the same time compresses the tension spring 1103. At this time, the clamping support plate 1101 can smoothly clamp the heating material inside, and then the clamping support plate 1101 and the heating material will pass through the sliding plate 902 and move smoothly to the top between the laminates 4.

[0064] Then, the operator can start the hydraulic cylinder 3 so that the output end of the hydraulic cylinder 3 pushes the top and bottom laminates 4 to move toward each other, thereby making the electrode sheet 601 inside the electric heating plate 5 contact smoothly with the conductive sleeve 603, and when the top and bottom laminates 4 move toward each other, the inner laminate 4 will be squeezed toward each other at the same time, and the electrode sheets 601 on both sides of the inner laminate 4 will also contact the inner conductive sleeve 603, while compressing the second insulating corrugated sleeve 703 and the connecting spring 8. After that, the power rod 602 is energized, and the current can be transferred to the electric heating plate 5 through the conductive sleeve 603 and the electrode sheet 601 for energizing and heating. Finally, the laminates 4 can move toward each other to heat and laminate the heating material clamped between the clamping support plates 1101.

[0065] Afterwards, when the lamination of the heat-generating material between the laminates 4 is completed, the hydraulic cylinder 3 can be started to drive the top and bottom laminates 4 to reset at the same time, and at this time the elastic force of the connecting spring 8 between the laminates 4 will be released, thereby driving the inner laminate 4 to reset synchronously. It should be noted that due to the design of the sliding plate 902, it can slide toward and away from the laminate 4 while maintaining the sealing effect on the sealing baffle 901.

[0066] Finally, when the heating material between the laminated plates 4 needs to be taken out, the sliding door 2 can be pulled out to one side as a whole, so that the clamping support plate 1101 drives the laminated heating material clamped therebetween to be pulled out synchronously. When the sliding door 2 is completely pulled out, the outer side of the second inclined block 1105 at one end of the clamping support plate 1101 will lose the extrusion pressure, and when the elastic force of the tension spring 1103 is released, the outer inclined surface of the second inclined block 1105 will first slide along the inner inclined surface of the first inclined block 1104 and move in opposite directions, which can smoothly release the clamping effect of the laminated heating material. Finally, the corresponding heating material can be taken out and the next lamination operation can be carried out.

[0067] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0068] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A hydrogen energy battery heating material lamination device, comprising a device body (1), characterized in that: Also includes; A draw-out door (2), wherein the draw-out door (2) is slidably connected to the inner wall of the device body (1) via a sealing component (9) installed on one side of the interior of the device body (1); A hydraulic cylinder (3), the hydraulic cylinder (3) being installed inside the device body (1); A laminate (4), wherein the laminate (4) is slidably connected to the surface of an energized component (6) installed on both sides of the inner wall of the device body (1), and the outer end is fixedly connected to the output end of the hydraulic cylinder (3), an insulating component (7) located outside the energized component (6) is provided between the laminates (4), and the outer sides of the laminates (4) are linked to each other through a scissor structure (12); An electric heating plate (5), the electric heating plate (5) being installed inside the laminate (4) and located inside the energized component (6); The energizing component (6) includes electrode sheets (601) arranged on both sides of the electric heating plate (5); the interior of the device body (1) is electrically connected to a energizing rod (602) located inside the electrode sheets (601); and a conductive sleeve (603) located between the electrode sheets (601) is provided on the surface of the energizing rod (602); The insulating assembly (7) comprises a first insulating corrugated sleeve (701) installed between the end laminate (4) and the inner wall of the device body (1); an insulating plate (702) located inside the electrode sheet (601) is provided between the laminates (4); and a second insulating corrugated sleeve (703) is provided between the insulating plates (702); The sealing assembly (9) comprises a sealing baffle (901), a sliding plate (902), a first limiting column (903) and a movable block (904); The sealing baffle (901) is arranged in the inner cavity of the device body (1) and is located between the drawer door (2) and the laminate (4); the sliding plate (902) is slidably installed inside the sealing baffle (901); the first limiting column (903) is fixedly installed inside the drawer door (2); the movable block (904) is slidably connected to the surface of the first limiting column (903) and corresponds one-to-one to the sliding plate (902); the two ends of one side of the movable block (904) are provided with clamping components (11), and one end of the clamping component (11) passes through the sliding plate (902) and extends to the top of the inner side of the laminate (4); The end of the sliding plate (902) adopts a stacking telescopic design; Limiting rods (10) are provided at both ends of one side of the movable block (904), and one end of the limiting rod (10) passes through the sliding plate (902) and extends to the inner cavity of the device body (1); The inner sides of the insulating plates (702) are elastically connected via a connecting spring (8), and the connecting spring (8) is installed on the outer side of the second insulating corrugated sleeve (703).

2. The hydrogen energy battery heating material lamination equipment according to claim 1, characterized in that: The first insulating corrugated sleeve (701), the insulating plate (702) and the second insulating corrugated sleeve (703) are all made of fluororubber.

3. The hydrogen energy battery heating material lamination equipment according to claim 1, characterized in that: The clamping assembly (11) comprises a clamping support plate (1101), a second limiting column (1102), a tension spring (1103), a first inclined block (1104) and a second inclined block (1105); The clamping support plate (1101) is movably mounted at both ends of one side of the movable block (904), and one end thereof passes through the sliding plate (902) and extends to the inner top of the laminate (4). The second limiting column (1102) is mounted inside the movable block (904), and its surface is slidably connected to the inside of the other end of the clamping support plate (1101). The outer side of the other end of the clamping support plate (1101) is elastically connected to the inner wall of the movable block (904) via a tension spring (1103).

4. The hydrogen energy battery heating material lamination equipment according to claim 3, characterized in that: The inner wall of the tension spring (1103) is slidably connected to the surface of the second limiting column (1102).

5. The hydrogen energy battery heating material lamination equipment according to claim 3, characterized in that: The size of the inner inclined surface of the first inclined block (1104) is adapted to the size of the outer inclined surface of the second inclined block (1105).

6. A method for laminating hydrogen energy battery heating materials, characterized in that: The lamination method of the hydrogen energy battery heating material laminating device according to any one of claims 1 to 5 is as follows: S1: first pull the drawer door (2) to one side and draw it out, then place the heating material to be laminated on the top of the clamping assembly (11) for clamping support; S2: Pushing the drawer door (2) drives the heating material clamped between the clamping components (11) to move to the top of the inner side of the laminate (4) inside the device body (1), and starting the hydraulic cylinder (3) to push the laminate (4) toward each other to squeeze the heating material clamped between the clamping components (11); S3; starting the power supply component (6) to heat the electric heating plate (5) as a whole, so that the laminate (4) can be heated while the heating material is squeezed between the laminates, thereby achieving the purpose of heating and laminating; S4: After lamination is completed, the hydraulic cylinder (3) can be started to drive the laminate (4) to reset with the assistance of the scissor structure (12) and the connecting spring (8), and then the drawer door (2) is pulled to drive the heating material between the clamping components (11) to be completely withdrawn, so that the clamping components (11) release the heating material inside and perform the material removal operation.

Citation Information

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