Auxiliary glue overflowing tool for corners of photovoltaic module
By designing a photovoltaic module corner auxiliary rubber overflow tooling, the coordinated function of the mounting base and the support table driven by the execution component and the downstand are solved, and the problem of insufficient silicone filling at the corners of the photovoltaic module is achieved, achieving better packaging effect and production efficiency.
Patent Information
- Application Number
- CN202421802777.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-26
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2034-07-26
AI Technical Summary
Inadequate silicone filling at the corners of photovoltaic modules leads to poor packaging.
A photovoltaic module corner auxiliary rubber overflow tooling is designed, including a mounting base, a first actuator, a support table, a second actuator and a downpressure table. Through the synergistic action of these components, the compressed rubber overflow at the corner of the photovoltaic module is realized.
Effectively assist in the fully overflowing of glue at the corner frame of the photovoltaic module, improve the packaging effect of the photovoltaic module, and improve the efficiency of compressing the corner frame of the photovoltaic module.
Smart Images

Figure CN222897487U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of component packaging, in particular to an auxiliary glue overflow tooling for corners of photovoltaic components. Background Art
[0002] At present, most photovoltaic modules are encapsulated with silicone in aluminum frames. In the production process, the glue is usually applied in the overflow glue groove of the frame, and the silicone in the overflow glue groove is automatically encapsulated when the aluminum frame is assembled. However, due to factors such as the glue application position, glue application weight, and frame assembly speed, it is easy to cause insufficient silicone filling at the corners of the photovoltaic module, especially the corners on the back of the photovoltaic module are not filled with enough silicone, which does not meet the standard of visible silicone, resulting in poor encapsulation of the module.
[0003] Therefore, how to provide a device for effectively filling the corners of photovoltaic modules with silica gel in the overflow groove of the auxiliary frame is a technical problem that people in this field need to solve urgently. Utility Model Content
[0004] In view of this, the purpose of the utility model is to provide a photovoltaic module corner auxiliary glue overflow tooling to solve the problem of insufficient silicone filling at the photovoltaic module corners in the prior art.
[0005] In order to solve the above technical problems, the utility model provides a photovoltaic module corner auxiliary glue overflow tooling, comprising:
[0006] An installation base, a first execution component, a support platform, a second execution component and a pressing platform; the first execution component and the second execution component are components that convert other forms of energy into mechanical energy;
[0007] The first execution component and the second execution component are both connected to the mounting base, and the first execution component is connected to the support platform, and the second execution component is connected to the pressing platform;
[0008] The support platform and the pressing platform are arranged correspondingly to form a photovoltaic component accommodating area between the support platform and the pressing platform;
[0009] The first execution component drives the support platform to move away from or close to the photovoltaic component accommodating area, and the second execution component drives the press platform to move away from or close to the photovoltaic component accommodating area, so that when the photovoltaic component is placed in the photovoltaic component accommodating area, the support platform and / or the press platform moves to one side surface of the photovoltaic component, and the support platform and the press platform are close to each other to press the corner frame of the photovoltaic component.
[0010] Optionally, the support platform and the pressing platform are independently arranged on corresponding right-angled sides of the photovoltaic component accommodating area.
[0011] Optionally, the support platform is a shockproof buffer pad, or the shockproof buffer pad is arranged on the surface of the support platform.
[0012] Optionally, the pressing platform is a shockproof buffer pad, or the surface of the pressing platform is provided with the shockproof buffer pad.
[0013] Optionally, the second actuator is a rotary pressure cylinder.
[0014] Optionally, the first actuator is a single-axis lifting cylinder.
[0015] Optionally, the first execution component and the second execution component are connected to the same mounting base.
[0016] Optionally, at least one set of guide rails is provided in the mounting base;
[0017] The second execution component is connected to the guide rail so that when the photovoltaic component is placed in the photovoltaic component accommodating area, the second execution component moves through the guide rail to the multiple corner frames corresponding to the photovoltaic component for pressing.
[0018] Optionally, the support platform is arranged at the lower side of the photovoltaic assembly accommodating area, and the first execution component drives the support platform to move in the vertical direction to support the bottom surface of the photovoltaic assembly;
[0019] Correspondingly, the second execution component drives the pressing platform to press the top corner frame of the photovoltaic module.
[0020] Optionally, the first execution component and the second execution component are arranged on two sides of the photovoltaic component accommodating area.
[0021] It can be seen that the photovoltaic module corner auxiliary glue overflow tooling provided by the utility model includes an installation base, a first execution component, a support platform, a second execution component and a press down platform. The first execution component and the second execution component are components that convert other forms of energy into mechanical energy. The first execution component and the second execution component are both connected to the installation base, and the first execution component is connected to the support platform, and the second execution component is connected to the press down platform. The support platform and the press down platform are correspondingly arranged to form a photovoltaic module accommodating area between the support platform and the press down platform. The first execution component drives the support platform to move away from or close to the photovoltaic module accommodating area, and the second execution component drives the press down platform to move away from or close to the photovoltaic module accommodating area. When the photovoltaic module is placed in the photovoltaic module accommodating area, the support platform and / or the press down platform move to one side surface of the photovoltaic module, and the support platform and the press down platform are close to each other to press the corner frame of the photovoltaic module. The embodiment of the utility model presses the corners of the photovoltaic module to eliminate glue overflow through the synergistic effect of the support platform and the lower pressure platform, which can assist in fully eliminating glue overflow at the corner frames of the photovoltaic module and improve the packaging effect of the photovoltaic module. In addition, the support platform and the lower pressure platform are both driven to move by the execution component, which can improve the efficiency of pressing the corner frames of the photovoltaic module. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings in the following description are only embodiments of the utility model. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without paying creative work.
[0023] Figure 1 A schematic diagram of the structure of a photovoltaic module corner auxiliary glue overflow tooling provided by an embodiment of the utility model;
[0024] Figure 2 A schematic diagram of the structure of a photovoltaic module corner auxiliary glue overflow tooling provided by an embodiment of the utility model acting on a photovoltaic module;
[0025] Figure 3 A schematic diagram of the structure of another photovoltaic module corner auxiliary glue overflow tooling provided by an embodiment of the utility model;
[0026] Figure 4 A schematic diagram of the structure of another photovoltaic module corner auxiliary glue overflow tooling provided by an embodiment of the utility model;
[0027] Figures 1 to 4 In the figure, the reference numerals are described as follows:
[0028] 1-photovoltaic module, 10-installation base, 20-first execution component, 30-support platform, 40-second execution component, 50-pressing platform, 60-photovoltaic module accommodating area. DETAILED DESCRIPTION
[0029] In order to make the purpose, technical solution and advantages of the embodiment of the utility model clearer, the technical solution in the embodiment of the utility model will be clearly and completely described below in conjunction with the drawings in the embodiment of the utility model. Obviously, the described embodiment is only a part of the embodiment of the utility model, not all of the embodiments. Based on the embodiment of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0030] At present, photovoltaic modules are mostly encapsulated by aluminum frames combined with silicone. In the production process, glue is often applied in the overflow glue groove of the frame, and the silicone in the overflow glue groove is automatically encapsulated while the aluminum frame is assembled. However, due to factors such as the glue coating position, glue coating weight, and frame assembly speed, it is easy to cause insufficient silicone filling at the corners of the photovoltaic module, especially the corners on the back of the photovoltaic module are not filled with enough silicone, which does not meet the standard of visible silicone, resulting in poor encapsulation of the module. Therefore, how to provide a device that can effectively fill the corners of the photovoltaic module with silicone in the overflow glue groove in the auxiliary frame is a technical problem that people in this field urgently need to solve.
[0031] The embodiment of the utility model presses the corners of the photovoltaic module with overflow glue through the synergistic effect of the support platform and the lower pressure platform, which can assist the corner frame of the photovoltaic module to fully overflow glue and improve the packaging effect of the photovoltaic module. The support platform and the lower pressure platform are both driven to move by the execution component. When the photovoltaic module is placed in the photovoltaic module accommodating area, the support platform moves through the first execution component without blocking or scratching the frame of the photovoltaic module that is higher than the back plate, and the support platform is automatically driven by the first execution component, which improves the work efficiency of pressing the corner frame of the photovoltaic module. For details, please refer to the following embodiments:
[0032] Embodiment 1:
[0033] Please refer to Figure 1 , Figure 1 A schematic diagram of the structure of a photovoltaic module corner auxiliary glue overflow tooling provided by an embodiment of the utility model. The photovoltaic module corner auxiliary glue overflow tooling may include:
[0034] The installation base 10, the first execution component 20, the support platform 30, the second execution component 40 and the pressing platform 50; the first execution component 20 and the second execution component 40 are components that convert other forms of energy into mechanical energy;
[0035] The first execution component 20 and the second execution component 40 are both connected to the mounting base 10, and the first execution component 20 is connected to the support platform 30, and the second execution component 40 is connected to the pressing platform 50;
[0036] The support platform 30 and the pressing platform 50 are correspondingly arranged to form a photovoltaic module accommodating area 60 between the support platform 30 and the pressing platform 50;
[0037] The first actuator 20 drives the support platform 30 to move away from or close to the photovoltaic component accommodating area 60, and the second actuator 40 drives the pressing platform 50 to move away from or close to the photovoltaic component accommodating area 60, so that when the photovoltaic component 1 is placed in the photovoltaic component accommodating area 60, the support platform 30 and / or the pressing platform 50 move to one side surface of the photovoltaic component 1, and the support platform 30 and the pressing platform 50 are close to each other to press the corner frame of the photovoltaic component 1.
[0038] It should be noted that in this embodiment, when entering the photovoltaic module 1 in the photovoltaic module accommodation area 60, the above-mentioned tooling can refer to Figure 2 , Figure 2 A schematic diagram of the structure of a photovoltaic module corner auxiliary glue overflow tooling provided in an embodiment of the utility model acting on a photovoltaic module. In the existing preparation of photovoltaic modules 1, due to factors such as the glue coating position, glue coating weight, and frame assembly speed, it is easy to cause insufficient silicone filling at the corners of the photovoltaic module 1, especially the corners of the back of the photovoltaic module 1 are not filled with enough silicone, which does not meet the standard of visible silicone, resulting in poor packaging of the module. Therefore, the embodiment of the utility model sets the above-mentioned photovoltaic module corner auxiliary glue overflow tooling to press the corner frame of the photovoltaic module 1, so that the silicone overflows again to fill the corner of the photovoltaic module 1, ensuring that the glue overflow at the corner of the photovoltaic module 1 meets the standard of visible silicone, thereby improving the module packaging effect. In this embodiment, the support platform 30 can be used to support the laminate of the photovoltaic module 1, that is, the laminate formed by at least a battery layer, a film layer, a cover plate and a back plate. Since the frame of the photovoltaic module 1 is encapsulated beyond the surface of the laminate, when the photovoltaic module 1 is translated to the photovoltaic module storage area 60 by a conveyor belt or the like, if the support platform 30 is fixed, it will form a block to the frame, scratch or damage the photovoltaic module 1. In this application, the support platform 30 is connected to the first execution component 20, so that the first execution component 20 can be used to drive the support platform 30 to move. The specific movement method can be matched according to the actual production process to realize the automatic movement of the support platform 30 corresponding to the position of the photovoltaic module 1, avoiding blocking and damage to the frame of the photovoltaic module 1, and the automatic movement improves the production efficiency of the module. In this embodiment, when the photovoltaic module 1 is placed in the photovoltaic module storage area 60, the support platform 30 and the lower pressing platform 50 can choose one to move to press the corner frame of the photovoltaic module 1, or the two can move relative to each other, and both act on the corner frame of the photovoltaic module 1 for pressing.
[0039] In this embodiment, the pressing platform 50 is used as the corner frame that directly contacts the photovoltaic component 1, and the corner frame of the photovoltaic component 1 is pressed by moving the pressing platform 50. The pressing amplitude of the pressing platform 50 can be set to 0.5 mm, so that the corner frame is reset after the secondary glue overflow, and a single action is completed. The support platform 30 supports the side of the photovoltaic component 1 facing away from the pressing platform 50. In this embodiment, the pressing platform 50 can be set on the upper side of the photovoltaic component accommodating area 60, or it can be set on the lower side of the photovoltaic component accommodating area 60. Correspondingly, the support platform 30 can be set on the lower side of the photovoltaic component accommodating area 60, or it can be set on the upper side of the photovoltaic component accommodating area 60, as long as the pressing platform 50 and the support platform 30 are aligned and arranged on both sides of the photovoltaic component accommodating area 60. In addition, this embodiment does not limit the specific frame area covered by the corner frame of the photovoltaic component 1, and can be set according to the operator's custom settings. In a possible embodiment, the photovoltaic component 1 can be set with its front side facing up in the photovoltaic component accommodating area 60, the pressing platform 50 can be set on the upper side of the photovoltaic component 1, the supporting platform 30 can be set on the lower side of the photovoltaic component 1, and the moving timing of the first execution component 20 and the second execution component 40 can be set accordingly according to the timing when the photovoltaic component 1 moves to the photovoltaic component accommodating area 60.
[0040] The specific structure of the support platform 30 and the pressing platform 50 is not limited in this embodiment, as long as they form a surface that can act on the photovoltaic module 1. For example, the support platform 30 can be a structure that is integrally arranged with the first actuator 20, and the pressing platform 50 can be a structure that is integrally arranged with the second actuator 40, or the support platform 30 can also be a structure that is additionally arranged independently of the first actuator 20, and correspondingly, the pressing platform 50 can also be a structure that is additionally arranged independently of the second actuator 40. The specific structure of the first actuator 20 and the second actuator 40 is also not limited in this embodiment, as long as it can convert other forms of energy into mechanical energy to automatically drive the support platform 30 and the pressing platform 50 to move along a specified path. For example, the first actuator 20 and the second actuator 40 can be set as a pneumatic structure, for example, the first actuator 20 and the second actuator 40 can be set as a cylinder, or the first actuator 20 and the second actuator 40 can also be set as an electric structure, or the first actuator 20 and the second actuator 40 can also be set as other structures that can drive the support platform 30 and the pressing platform 50 to move along a specified path. This embodiment does not limit the specific positional relationship between the first execution component 20 and the second execution component 40, as long as the support platform 30 and the pressing platform 50 are correspondingly arranged on the front and back sides of the photovoltaic component storage area 60, and the front and back sides of the photovoltaic component storage area 60 correspond to the front and back sides of the photovoltaic component 1 to be stored. In this embodiment, the specific structure of the mounting base 10 is also not limited, as long as it can be connected with the first execution component 20 and the second execution component 40 to achieve the above-mentioned pressing of the corner frame of the photovoltaic component 1. It should be further explained that in this embodiment, the support platform 30 and the pressing platform 50 are driven by the first execution component 20 and the second execution component 40 when the photovoltaic component 1 enters the photovoltaic component storage area 60 and leaves the photovoltaic component storage area 60. The specific moving path can be set according to the actual working conditions, as long as the pressing platform 50 and the support platform 30 can move to the corresponding position on the surface of the photovoltaic component 1 when the photovoltaic component 1 enters the photovoltaic component storage area 60, and when the photovoltaic component 1 leaves the photovoltaic component storage area 60, the pressing platform 50 and the support platform 30 are away from the photovoltaic component storage area 60.
[0041] Furthermore, in order to ensure the efficiency of preventing glue overflow from the corners of the auxiliary photovoltaic module, the support platform 30 and the pressing platform 50 can be independently arranged at the corresponding right-angled sides of the photovoltaic module accommodating area 60 .
[0042] It should be noted that in this embodiment, the support platform 30 and the lower pressing platform 50 are both arranged corresponding to the right angle side of the photovoltaic module accommodating area 60, so as to simultaneously press the frame on both sides of the corner of the photovoltaic module 1, ensure the efficiency of the corner glue overflow, and avoid the photovoltaic module 1 from bending and being damaged due to the different working positions of the support platform 30 and the lower pressing platform 50. Further, in order to improve the ease of installation of the first execution component 20 and the second execution component 40, reference can be made to Figure 3 , Figure 3 The first execution component 20 and the second execution component 40 can be connected to the same installation base 10.
[0043] It should be noted that, in the present embodiment, there is a corresponding positional relationship between the support platform 30 connected to the first execution component 20 and the pressing platform 50 connected to the second execution component 40. Therefore, while ensuring the structural simplicity of the support platform 30 and the pressing platform 50, it is necessary to set the positional relationship between the first execution component 20 and the second execution component 40 accordingly. In the present application, the first execution component 20 and the second execution component 40 are correspondingly connected to the same mounting base 10, and the first execution component 20 and the second execution component 40 are installed at designated positions on the same mounting base 10. There is no need to adjust the position of the first execution component 20 and the second execution component each time the installation is performed, while ensuring the simplicity of the preparation of the mounting base 10.
[0044] Furthermore, in order to reduce the cost of preparing auxiliary glue overflow tooling for the corners of photovoltaic modules, at least one set of guide rails may be provided in the above-mentioned mounting base 10;
[0045] The second execution component 40 is connected to the guide rail, so that when the photovoltaic component 1 is placed in the photovoltaic component accommodating area 60, the second execution component 40 moves to the corresponding corner frames of the photovoltaic component 1 through the guide rail for pressing.
[0046] It should be noted that in the present embodiment, by providing at least one set of guide rails in the mounting base 10, it is not necessary to provide a pressing platform 50 corresponding to each corner frame of the photovoltaic module 1. Only one pressing platform 50 can be provided corresponding to the second execution component 40, thereby reducing the complexity of the structure of the pressing platform 50. While ensuring the stability of the structure, it also reduces the preparation cost of auxiliary glue overflow tooling at the corners of the photovoltaic module.
[0047] Further, in order to ensure the convenience of pressing the corner frame of the photovoltaic module 1, the support platform 30 can be arranged at the lower side of the photovoltaic module accommodating area 60, and the first execution component 20 drives the support platform 30 to move in the vertical direction to support the bottom surface of the photovoltaic module 1;
[0048] Correspondingly, the second execution component 40 drives the pressing platform 50 to press the top corner frame of the photovoltaic module 1 .
[0049] In this embodiment, the support platform 30 is arranged on the lower side of the photovoltaic component accommodating area 60, and the support platform 30 can be used alone to support the photovoltaic component 1, which is compatible with the transportation method of non-grabbing and fixing the photovoltaic component 1 using a conveyor belt, etc., and there is no need to set up additional components to fix the photovoltaic component 1. The lower pressing platform 50 is set to be pressed at the top corner frame of the photovoltaic component 1, which is compatible with the support platform 30, thereby ensuring the structural simplicity of the auxiliary glue overflow tooling at the corner of the photovoltaic component.
[0050] Further, in order to reduce the structural stability of the support platform 30 and the lower pressing platform 50, reference may be made to Figure 4 , Figure 4 The first execution component 20 and the second execution component 40 can be arranged on both sides of the photovoltaic module receiving area 60.
[0051] It should be noted that in the present embodiment, the first execution component 20 and the second execution component 40 are arranged on both sides of the photovoltaic module accommodating area 60, so the shapes of the support platform 30 and the pressing platform 50 can be simplified, and there is no need to set the support platform 30 or the pressing platform 50 structure to the shape of a hook pressure block, that is, one end of the hook pressure block is connected to the execution component located on one side of the photovoltaic module 1, and the other end is in contact with the side of the photovoltaic module 1 facing away from the execution component. The arrangement of the execution components in the present embodiment ensures the stability and simplicity of the support platform 30 and the pressing platform 50.
[0052] The photovoltaic module corner auxiliary glue overflow tooling provided by the embodiment of the utility model includes an installation base 10, a first execution component 20, a support platform 30, a second execution component 40 and a pressing platform 50. The first execution component 20 and the second execution component 40 are components that convert other forms of energy into mechanical energy. The first execution component 20 and the second execution component 40 are both connected to the installation base 10, and the first execution component 20 is connected to the support platform 30, and the second execution component 40 is connected to the pressing platform 50. The support platform 30 and the pressing platform 50 are correspondingly arranged to form a photovoltaic module accommodating area 60 between the support platform 30 and the pressing platform 50. The first execution component 20 drives the support platform 30 to move away from or close to the photovoltaic module accommodating area 60, and the second execution component 40 drives the pressing platform 50 to move away from or close to the photovoltaic module accommodating area 60, so that when the photovoltaic module 1 is placed in the photovoltaic module accommodating area 60, the support platform 30 moves to a side surface supporting the photovoltaic module 1, and the pressing platform 50 moves to press the corner frame of the photovoltaic module 1. The embodiment of the utility model presses the corners of the photovoltaic module 1 to eliminate glue overflow through the coordinated action of the support platform 30 and the lower pressing platform 50, which can assist in fully eliminating glue overflow at the corner frames of the photovoltaic module 1 and improve the packaging effect of the photovoltaic module 1. In addition, the support platform 30 and the lower pressing platform 50 are both driven to move by the execution component, which can improve the efficiency of pressing the corner frames of the photovoltaic module 1.
[0053] In addition, in the embodiment of the utility model, the support platform 30 and the lower pressing platform 50 are both arranged corresponding to the right-angled sides of the photovoltaic module accommodating area 60, so as to press the frame on both sides of the corner of the photovoltaic module 1 at the same time, thereby improving the efficiency of promoting the overflow of glue at the corner; by installing the first execution component 20 and the second execution component 40 at the specified position of the same installation base 10, there is no need to adjust the position of the first execution component 20 and the second or execution component each time the installation is performed, while ensuring the simplicity of the preparation of the installation base 10; by setting to One less set of guide rails reduces the cost of preparing auxiliary glue overflow tooling for corners of photovoltaic modules while ensuring the stability of the structure; the support platform 30 is arranged on the lower side of the photovoltaic module accommodating area 60, and the lower pressing platform 50 is arranged to be pressed at the top corner frame of the photovoltaic module 1 to match the support platform 30, thereby ensuring the structural simplicity of the auxiliary glue overflow tooling for corners of photovoltaic modules; the first execution component 20 and the second execution component 40 are arranged on both sides of the photovoltaic module accommodating area 60, thereby ensuring the stability and simplicity of the support platform 30 and the lower pressing platform 50.
[0054] Embodiment 2:
[0055] The auxiliary glue overflow tooling for corners of photovoltaic modules provided in the embodiment of the utility model is different from that in embodiment 1 in that:
[0056] The support platform 30 is a shockproof buffer component, or a shockproof buffer component is arranged on the surface of the support platform 30 .
[0057] It should be noted that in this embodiment, the support platform 30 can be set as a shockproof buffer component, or a shockproof buffer component can be set on the surface of the support platform 30, which can ensure that the support platform 30 elastically supports the photovoltaic module 1 and avoids damage to the photovoltaic module 1, especially when the cover plate and back plate of the photovoltaic module 1 are glass plates. Correspondingly, in this embodiment, the above-mentioned lower pressing platform 50 can also be set as a shockproof buffer component, or a shockproof buffer component can be set on the surface of the lower pressing platform 50.
[0058] Furthermore, in order to ensure the convenience of preparing the shockproof buffer component, the shockproof buffer component can be configured as a shockproof buffer pad.
[0059] In the present embodiment, the shockproof buffer component is configured as a shockproof buffer pad, and the material of the shockproof buffer pad is a material that can undergo elastic deformation, so that when the shockproof buffer pad collides and contacts with the photovoltaic component 1, the shockproof buffer pad undergoes elastic deformation to alleviate the impact of the photovoltaic component 1 and avoid damage to the photovoltaic component 1 due to rigid collision with the photovoltaic component 1.
[0060] Furthermore, in order to prevent the photovoltaic assembly 1 from being damaged, the pressing platform 50 may be provided as a shockproof cushion, or a shockproof cushion may be provided on the surface of the pressing platform 50 .
[0061] It should be noted that in this embodiment, by setting the lower pressing platform 50 as a shock-proof buffer pad, or setting a shock-proof buffer pad on the surface of the lower pressing platform 50, it can avoid that the frame of the photovoltaic module 1 is damaged by rigid contact when the lower pressing platform 50 is pressed against the frame, thereby improving the module yield.
[0062] Furthermore, in order to ensure the execution efficiency of the second execution component 40, the second execution component 40 may be configured as a rotary pressure cylinder.
[0063] In this embodiment, the second actuator 40 is configured as a rotary pressure cylinder having a higher movement speed and a shorter travel time, so that the rotary pressure cylinder can complete more work cycles in a short time, thereby improving the overall production efficiency.
[0064] Furthermore, in order to ensure the simplicity of the auxiliary glue overflow tooling structure at the corners of photovoltaic modules, the first actuator 20 can be configured as a single-axis lifting cylinder.
[0065] In this embodiment, by setting the first actuator 20 as a single-axis lifting cylinder, the simplicity of the first actuator 20 can be ensured, and at the same time, it is compatible with the process of moving the support platform 30 in the vertical direction to support the photovoltaic module 1, thereby ensuring precise control of the process.
[0066] By using the auxiliary glue overflow tooling for the corners of photovoltaic modules provided by the embodiment of the utility model, by setting the support platform 30 as a shockproof buffer component, or setting a shockproof buffer component on the surface of the support platform 30, it is possible to ensure that the support platform 30 elastically supports the photovoltaic module 1 and avoid damage to the photovoltaic module 1. In addition, by setting the shockproof buffer component as a shockproof buffer pad, the embodiment of the utility model ensures the convenience of preparing the shockproof buffer component; by setting the lower pressing platform 50 as a shockproof buffer pad, or setting a shockproof buffer pad on the surface of the lower pressing platform 50, it is possible to avoid the lower pressing platform 50 from damaging the frame of the photovoltaic module 1 by rigid contact when pressing the frame, thereby improving the module yield; by setting the second execution component 40 as a rotary pressure cylinder, the production efficiency of the pressing process of the frame of the photovoltaic module 1 is improved; by setting the first execution component 20 as a single-axis lifting cylinder, the simplicity of the first execution component 20 can be ensured, while ensuring the precise control of the process.
[0067] In an embodiment of an application scenario, the photovoltaic module corner auxiliary glue overflow tooling may specifically include the following structure:
[0068] Install the base, single-axis lifting cylinder, support table, rotary pressure cylinder and lower pressure table;
[0069] The single-axis lifting cylinder and the rotary pressure cylinder are connected to the same mounting base, and the single-axis lifting cylinder is connected to the support platform, and the rotary pressure cylinder is connected to the lower pressure platform;
[0070] The support platform and the lower pressing platform are arranged correspondingly to form a photovoltaic module accommodating area between the support platform and the lower pressing platform;
[0071] The single-axis lifting cylinder drives the support platform to move away from or close to the photovoltaic module accommodation area, and the rotary pressure cylinder drives the lower pressing platform to move away from or close to the photovoltaic module accommodation area, so that when placing the photovoltaic module in the photovoltaic module accommodation area, the support platform moves to the side surface supporting the photovoltaic module, and the lower pressing platform moves to the corner frame of the photovoltaic module for pressing;
[0072] The support platform and the pressing platform are independently arranged on the corresponding right-angle sides of the photovoltaic module accommodation area;
[0073] Both the support platform and the lower pressure platform are shock-proof cushions;
[0074] At least one set of guide rails is provided in the mounting base, and the rotary pressure cylinder is connected to the guide rails, so that when a photovoltaic module is placed in the photovoltaic module accommodation area, the rotary pressure cylinder moves to the multiple corner frames of the corresponding photovoltaic module through the guide rails for pressing;
[0075] The support platform and the single-axis lifting cylinder are arranged on the lower side of the photovoltaic component accommodating area, and the lower pressing platform and the rotary pressure cylinder are arranged on the upper side of the photovoltaic component accommodating area.
[0076] The various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referenced to each other.
[0077] In addition, it should be noted that, in this article, relationships such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprises" or any other variants are intended to cover non-exclusive inclusions.
[0078] The above is a detailed introduction to the auxiliary glue overflow tooling for the corners of photovoltaic modules provided by the utility model. This article uses specific examples to illustrate the principles and implementation methods of the utility model. The description of the above embodiments is only used to help understand the structure of the utility model and its core idea; at the same time, for general technical personnel in this field, according to the idea of the utility model, there will be changes in the specific implementation method and application scope. In summary, the content of this specification should not be understood as a limitation on the utility model.
Claims
1. A photovoltaic module corner auxiliary glue overflow tooling, characterized in that: include: An installation base, a first execution component, a support platform, a second execution component and a pressing platform; the first execution component and the second execution component are components that convert other forms of energy into mechanical energy; The first execution component and the second execution component are both connected to the mounting base, and the first execution component is connected to the support platform, and the second execution component is connected to the pressing platform; The support platform and the pressing platform are arranged correspondingly to form a photovoltaic component accommodating area between the support platform and the pressing platform; The first execution component drives the support platform to move away from or close to the photovoltaic component accommodating area, and the second execution component drives the press platform to move away from or close to the photovoltaic component accommodating area, so that when the photovoltaic component is placed in the photovoltaic component accommodating area, the support platform and / or the press platform moves to one side surface of the photovoltaic component, and the support platform and the press platform are close to each other to press the corner frame of the photovoltaic component.
2. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: The support platform and the pressing platform are independently arranged on corresponding right-angled sides of the photovoltaic component accommodating area.
3. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: The support platform is a shockproof cushion, or the surface of the support platform is provided with the shockproof cushion.
4. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: The pressing platform is a shockproof cushion, or the surface of the pressing platform is provided with the shockproof cushion.
5. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: The second actuator is a rotary pressure cylinder.
6. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: The first actuator is a single-axis lifting cylinder.
7. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: The first execution component and the second execution component are connected to the same installation base.
8. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: At least one set of guide rails is provided in the mounting base; The second execution component is connected to the guide rail so that when the photovoltaic component is placed in the photovoltaic component accommodating area, the second execution component moves through the guide rail to the multiple corner frames corresponding to the photovoltaic component for pressing.
9. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: The support platform is arranged at the lower side of the photovoltaic assembly accommodating area, and the first execution component drives the support platform to move in the vertical direction to support the bottom surface of the photovoltaic assembly; Correspondingly, the second execution component drives the pressing platform to press the top corner frame of the photovoltaic module.
10. The photovoltaic module corner auxiliary glue overflow tooling according to claim 1, characterized in that: The first execution component and the second execution component are arranged on two sides of the photovoltaic component accommodating area.
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Glue removing device and glue removing equipment of photovoltaic module
CN120920419A