A photovoltaic double glass assembly laminating tool

CN224805347UActive Publication Date: 2026-09-25HONGYUAN PHOTOENERGY (WUXI) CO LTD +1
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Patent Information

Application Number
CN202521438353.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-10
Publication Date
2026-09-25
Estimated Expiration
2035-07-10

AI Technical Summary

Technical Problem

[0003]本实用新型的目的在于提供一种光伏双玻组件层压工装,以解决上述背景技术中提出现有的光伏双玻组件层压工装在使用时拿取和放置不便捷性且生产成本较高的问题

Benefits of technology

1、在该光伏双玻组件层压工装中,在使用光伏双玻组件层压工装时,先将高温布主体平铺在加工台的上端,然后将第一挡块和第二连块板安装在高温布主体的上端左右两侧,接着将多个第二挡块和第二连接块安装在高温布主体的上端且位于第一挡块的内侧,从而使得第一挡块、第一连接块、第二挡块和第二连接块以及相邻两个第一挡块和第一连接块之间形成限制框架,这时再将光伏双玻组件放置在框架中进行层压组装,通过高温布主体、第一挡块、第二挡块、第一连接块和第二连接块的配合使用,不仅加强了光伏双玻组件层压工装拿取和放置的便捷性,还降低了生产成本。

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Abstract

The utility model discloses a photovoltaic double glass component laminating tool, including high temperature cloth main part and the first stopper of setting in high temperature cloth main part upper end left and right sides position department, when using photovoltaic double glass component laminating tool, first high temperature cloth main part is laid in the upper end of processing platform, then the first stopper and second link block board are installed in high temperature cloth main part's upper end left and right sides, then a plurality of second stoppers and second connecting block are installed in the upper end of high temperature cloth main part and are located in the inside of first stopper, to make first stopper, first connecting block, second stopper and second connecting block and the adjacent two first stopper and first connecting block between formation limit frame, when again photovoltaic double glass component is placed in the frame and carries out laminating assembly, through the cooperation of high temperature cloth main part, first stopper, second stopper, first connecting block and second connecting block, not only has strengthened photovoltaic double glass component laminating tool take and place convenient, also has reduced production cost.
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Description

Technical Field

[0001] This utility model belongs to the technical field of solar photovoltaic modules, specifically relating to a lamination tooling for a photovoltaic double-glass module. Background Technology

[0002] Photovoltaic modules are currently mainly double-glass modules, with the structure from the front to the back consisting of front glass, upper encapsulation film, cell string, lower encapsulation film, and back glass. During the lamination process, double-glass modules experience significant pressure at their four corners, leading to thinner edges and cell cracking at the edges after lamination. Currently, traditional lamination fixtures are used to achieve consistent and uniform thickness after lamination in double-glass photovoltaic modules. These traditional fixtures, often rectangular frames, are bulky and require substantial manpower for placement and retrieval, making unmanned lamination impossible. Furthermore, each module requires a separate fixture, resulting in high turnover rates, increased costs, and significant time consumption. This new photovoltaic double-glass module lamination fixture is composed of components such as a first stop block, a second stop block, a first connecting block, a second connecting block, a high-temperature cloth body, an installation block, a locking block, a locking groove, a sponge pad, a limiting block, a limiting groove, a placement groove, and springs. Existing photovoltaic double-glass module lamination fixtures are inconvenient to handle and place, and have high production costs, making a new type of photovoltaic double-glass module lamination fixture essential. Utility Model Content

[0003] The purpose of this invention is to provide a photovoltaic double-glass module lamination fixture to solve the problems mentioned in the background art, such as the inconvenience of handling and placing the existing photovoltaic double-glass module lamination fixture during use and the high production cost.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a photovoltaic double-glass module lamination fixture, comprising... The high-temperature cloth body and the first stop block disposed on the left and right sides of the upper end of the high-temperature cloth body; A first connecting block is connected to the upper end of the high-temperature cloth body and at the front and rear sides of the first block. Multiple second blocks are provided at the upper end of the high-temperature cloth body and inside the first block. A second connecting block is connected to the upper end of the high-temperature cloth body and at the front and rear sides of multiple second blocks; The combined use of the high-temperature cloth body, the first block, the second block, the first connecting block, and the second connecting block not only enhances the ease of handling and placing the photovoltaic double-glass module lamination fixture, but also reduces production costs.

[0005] Preferably, an installation block is provided at the connection between the first stop block and the first connecting block, and between the second stop block and the second connecting block, and a placement groove is provided inside the installation block.

[0006] Preferably, a spring is installed inside the placement groove, and a sponge pad is connected to the inside of the placement groove and outside the spring. The sponge pad is made of sponge material.

[0007] Preferably, the first stop block, the first connecting block, the second stop block, and the second connecting block are provided with slots on their inner walls, and the first stop block, the first connecting block, the second stop block, and the second connecting block are provided with limiting grooves inside the slots and outside the slots.

[0008] Preferably, a card block is connected to the inner side of the card slot and located on the outer wall of the mounting block, and the card block and the card slot are connected by a snap-fit ​​method.

[0009] Preferably, a limiting block is connected to the inner side of the limiting groove and at the position on the outer wall of the card block, and the limiting block and the limiting groove are connected by a plug-in connection.

[0010] Preferably, the locking block, limiting block, and mounting block are an integrated structure, and all three are made of rubber material. The combined use of the mounting block, spring, and sponge pad enhances the protection of the four corners of the photovoltaic double-glass module lamination fixture. The combined use of the locking block, locking groove, limiting block, limiting groove, locking and plugging enhances the convenience of installing and disassembling the mounting block.

[0011] Compared with the prior art, this utility model provides a photovoltaic double-glass module lamination tooling, which has the following beneficial effects: 1. In this photovoltaic double-glass module lamination fixture, when using the photovoltaic double-glass module lamination fixture, the high-temperature cloth body is first laid flat on the upper end of the processing table. Then, the first stop block and the second connecting block are installed on the upper left and right sides of the high-temperature cloth body. Next, multiple second stop blocks and second connecting blocks are installed on the upper end of the high-temperature cloth body and located inside the first stop block. This forms a restrictive frame between the first stop block, the first connecting block, the second stop block and the second connecting block, as well as between two adjacent first stop blocks and first connecting blocks. Then, the photovoltaic double-glass module is placed in the frame for lamination assembly. Through the coordinated use of the high-temperature cloth body, the first stop block, the second stop block, the first connecting block and the second connecting block, not only is the ease of picking up and placing the photovoltaic double-glass module lamination fixture enhanced, but the production cost is also reduced.

[0012] 2. In this photovoltaic double-glass module lamination fixture, when using the fixture, the spring is first installed inside the placement groove, and then the sponge pad is glued to the inside of the spring, so that the sponge pad is installed on the inner wall of the mounting block. Next, the mounting block is inserted into the slot by the locking block, and the limiting block is inserted into the limiting slot, so that the mounting block is installed at the connection between the first stop block and the first connecting block, and the second stop block and the second connecting block. Then, the photovoltaic double-glass module is placed in the frame for lamination assembly. When the photovoltaic double-glass module enters the inner side of the frame, the sponge pad is squeezed by the elastic force of the spring, which protects the four corners of the photovoltaic double-glass module. Since the sponge pad is made of rubber material, it protects the four corners of the photovoltaic double-glass module. Through the combined use of the mounting block, spring and sponge pad, the protection of the four corners of the photovoltaic double-glass module by the photovoltaic double-glass module lamination fixture is strengthened. The combined use of the locking block, slot, limiting block, limiting slot, locking and plugging enhances the convenience of mounting block installation and disassembly. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the overall structure of the photovoltaic double-glass module lamination fixture of this utility model.

[0014] Figure 2 This is an enlarged structural schematic diagram of the mounting block for the photovoltaic double-glass module lamination tooling of this utility model.

[0015] Figure 3 This is an enlarged structural diagram of the slot and limiting slot of the photovoltaic double-glass module lamination fixture of this utility model.

[0016] Figure 4 This is an enlarged cross-sectional schematic diagram of the placement groove for the photovoltaic double-glass module lamination fixture of this utility model.

[0017] In the diagram: 1. First stop block; 2. First connecting block; 3. Second stop block; 4. High-temperature cloth body; 5. Second connecting block; 6. Mounting block; 7. Locking block; 8. Sponge pad; 9. Restricting block; 10. Locking groove; 11. Restricting groove; 12. Placement groove; 13. Spring. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0019] This utility model provides, for example Figure 1-4The photovoltaic double-glass module lamination fixture shown includes a high-temperature cloth body 4 and first blocks 1 disposed on the left and right sides of the upper end of the high-temperature cloth body 4; a first connecting block 2 is connected to the upper end of the high-temperature cloth body 4 and located on the front and rear sides of the first blocks 1; a plurality of second blocks 3 are disposed on the upper end of the high-temperature cloth body 4 and located on the inner side of the first blocks 1; a second connecting block 5 is connected to the upper end of the high-temperature cloth body 4 and located on the front and rear sides of the plurality of second blocks 3; through the cooperative use of the high-temperature cloth body 4, the first blocks 1, the second blocks 3, the first connecting blocks 2 and the second connecting blocks 5, not only is the ease of picking up and placing the photovoltaic double-glass module lamination fixture enhanced, but the production cost is also reduced.

[0020] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, in order to enhance the ease of handling and placement of the photovoltaic double-glass module lamination fixture and reduce production costs, when using the photovoltaic double-glass module lamination fixture, the high-temperature cloth body 4 is first laid flat on the upper end of the processing table. Then, the first stop block 1 and the second connecting block are installed on the upper left and right sides of the high-temperature cloth body 4. Next, multiple second stop blocks 3 and second connecting blocks 5 are installed on the upper end of the high-temperature cloth body 4 and located inside the first stop block 1. This forms a restrictive frame between the first stop block 1, the first connecting block 2, the second stop block 3 and the second connecting block 5, as well as between two adjacent first stop blocks 1 and first connecting blocks 2. Then, the photovoltaic double-glass module is placed in the frame for lamination assembly. Through the coordinated use of the high-temperature cloth body 4, the first stop block 1, the second stop block 3, the first connecting block 2 and the second connecting block 5, not only is the ease of handling and placement of the photovoltaic double-glass module lamination fixture enhanced, but production costs are also reduced.

[0021] A mounting block 6 is provided at the connection between the first stop block 1 and the first connecting block 2, and between the second stop block 3 and the second connecting block 5. A placement groove 12 is provided inside the mounting block 6, and a spring 13 is installed inside the placement groove 12. A sponge pad 8, made of sponge material, is connected to the inner side of the placement groove 12 and outside the spring 13. A retaining groove 11 is provided on the inner wall of the first stop block 1, the first connecting block 2, the second stop block 3, and the second connecting block 5, and outside the retaining groove 10. A limiting groove 11 is provided inside the first stop block 1, the first connecting block 2, the second stop block 3, and the second connecting block 5, and outside the retaining groove 10. A locking block 7 is connected to the locking slot 10 via a snap-fit ​​connection. A limiting block 9 is connected to the inner side of the limiting slot 11 and located on the outer wall of the locking block 7 via a plug-in connection. The locking block 7, limiting block 9, and mounting block 6 are an integral structure. The locking block 7, limiting block 9, and mounting block 6 are all made of rubber material. Through the combined use of mounting block 6, spring 13, and sponge pad 8, the protection of the four corners of the photovoltaic double-glass module lamination fixture is enhanced. The combined use of locking block 7, locking slot 10, limiting block 9, limiting slot 11, snap-fit ​​connection, and plug-in connection enhances the ease of installation and disassembly of mounting block 6.

[0022] like Figure 2 , Figure 3 and Figure 4 As shown, to enhance the protection of the four corners of the photovoltaic double-glass module laminating fixture, when using the photovoltaic double-glass module laminating fixture, firstly, the spring 13 is installed inside the placement groove 12, and then the sponge pad 8 is glued to the inside of the spring 13, so that the sponge pad 8 is installed on the inner wall of the mounting block 6. Next, the mounting block 6 is inserted into the groove 10 by the locking block 7, and the limiting block 9 is inserted into the limiting groove 11, so that the mounting block 6 is installed at the connection between the first stop block 1 and the first connecting block 2, and the second stop block 3 and the second connecting block 5. Then, the photovoltaic double-glass module is placed... During the lamination assembly within the frame, when the photovoltaic double-glass module enters the inner side of the frame, the sponge pad 8, under the elastic force of the spring 13, will squeeze the four corners of the photovoltaic double-glass module. Since the sponge pad 8 is made of rubber material, it protects the four corners of the photovoltaic double-glass module. Through the combined use of the mounting block 6, the spring 13, and the sponge pad 8, the protective effect of the photovoltaic double-glass module lamination fixture on the four corners of the photovoltaic double-glass module is strengthened. The combined use of the locking block 7, the locking groove 10, the limiting block 9, the limiting groove 11, the locking and plugging enhances the convenience of installing and disassembling the mounting block 6.

[0023] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A photovoltaic double-glass module lamination fixture, characterized in that: include High-temperature cloth body (4) and first blocks (1) located on the left and right sides of the upper end of the high-temperature cloth body (4); The high-temperature cloth body (4) is connected to a first connecting block (2) at the upper end and at the front and rear sides of the first block (1). Multiple second blocks (3) are provided at the upper end of the high-temperature cloth body (4) and at the inner side of the first block (1). A second connecting block (5) is connected to the upper end of the high-temperature cloth body (4) and at the front and rear sides of the multiple second blocks (3). By using the high-temperature cloth body (4), the first block (1), the second block (3), the first connecting block (2), and the second connecting block (5) together, not only is the ease of picking up and placing the photovoltaic double-glass module lamination tooling enhanced, but the production cost is also reduced.

2. The photovoltaic double-glass module lamination fixture according to claim 1, characterized in that: An installation block (6) is provided at the connection between the first stop block (1) and the first connecting block (2), and between the second stop block (3) and the second connecting block (5). A placement groove (12) is provided inside the installation block (6).

3. The photovoltaic double-glass module lamination fixture according to claim 2, characterized in that: A spring (13) is installed inside the placement groove (12), and a sponge pad (8) is connected to the inside of the placement groove (12) and outside the spring (13). The sponge pad (8) is made of sponge material.

4. The photovoltaic double-glass module lamination fixture according to claim 2, characterized in that: A slot (10) is provided on the inner wall of the first stop block (1), the first connecting block (2), the second stop block (3) and the second connecting block (5), and a limiting groove (11) is provided inside the first stop block (1), the first connecting block (2), the second stop block (3) and the second connecting block (5) and located outside the slot (10).

5. The photovoltaic double-glass module lamination fixture according to claim 4, characterized in that: A card block (7) is connected to the inner side of the card slot (10) and at the position on the outer wall of the mounting block (6). The card block (7) and the card slot (10) are connected by a snap-fit ​​method.

6. The photovoltaic double-glass module lamination fixture according to claim 4, characterized in that: A limiting block (9) is connected to the inner side of the limiting groove (11) and at the position on the outer wall of the card block (7). The limiting block (9) and the limiting groove (11) are connected by plugging.

7. The photovoltaic double-glass module lamination fixture according to claim 6, characterized in that: The locking block (7), limiting block (9) and mounting block (6) are an integral structure. The locking block (7), limiting block (9) and mounting block (6) are all made of rubber material. Through the combined use of the mounting block (6), spring (13) and sponge pad (8), the protection of the four corners of the photovoltaic double glass module lamination tooling is strengthened. The combined use of the locking block (7), locking groove (10), limiting block (9), limiting groove (11), locking and plugging enhances the convenience of installing and disassembling the mounting block (6).