Position calibration assembly of photovoltaic frame
By using a photovoltaic frame position calibration component, the workpiece is centered and calibrated by synchronous extrusion of a pusher and a cylinder. This solves the accuracy problem caused by workpiece position offset and improves the processing accuracy and quality of photovoltaic modules.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUZHOU ZHUOXU NEW ENERGY TECHNOLOGY CO LTD
- Filing Date
- 2025-06-12
- Publication Date
- 2026-05-12
AI Technical Summary
During the production of photovoltaic modules, workpiece positional deviation leads to decreased positional accuracy, affecting the accuracy and quality of subsequent processing.
The photovoltaic frame position calibration component is used. It is connected to the cylinder through the left and right push plates. The push block synchronously squeezes the end face of the strip workpiece to achieve centering calibration and improve the position accuracy of the workpiece.
To achieve precise alignment of the workpiece position, thereby improving the accuracy and quality of subsequent processing.
Smart Images

Figure CN224226057U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic technology, and in particular to a position calibration component for photovoltaic frames used for applying adhesive in photovoltaic processing production lines. Background Technology
[0002] Photovoltaic modules require multiple processing steps to become finished products, necessitating continuous workpiece handling between these steps. Current technology often results in workpiece position shifts during handling, leading to decreased positional accuracy. Failure to calibrate the workpieces upon arrival at the workstation will negatively impact the precision and quality of subsequent processing. Utility Model Content
[0003] The technical problem to be solved by this utility model is to provide a position calibration component for a photovoltaic frame, which can calibrate the position accuracy of the workpiece, thereby improving the accuracy and quality of subsequent processing of the workpiece.
[0004] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is: a photovoltaic frame position calibration component, including: a left base and a right base arranged at intervals, a left push plate and a right push plate movably mounted on the upper surface of the left base and the right base, the left push plate which can move left and right is connected to the piston rod of a left cylinder mounted on the left base, the right base which moves in the opposite direction to the left push plate is connected to the piston rod of a right cylinder mounted on the right push plate, and the left cylinder and the right cylinder extend and retract synchronously;
[0005] The right end face of the left push plate extends to the outside of the left base and is equipped with at least one left push block. The left end face of the right push plate extends to the outside of the right base and is equipped with at least one right push block corresponding to the left push block. When the left cylinder and the right cylinder switch from the first state to the second state, the left push plate and the right push plate approach each other until the corresponding left push block and the right push block each make contact with the end face of the strip workpiece located between them.
[0006] The following are further improvements to the above technical solution:
[0007] 1. In the above scheme, the left push plate and the right push plate are each mounted on the left base and the right base by at least one set of slide rails and sliders.
[0008] 2. In the above scheme, both the left push block and the right push block are flexible push blocks.
[0009] 3. In the above scheme, both the left push block and the right push block are silicone blocks or rubber blocks.
[0010] 4. In the above scheme, there are two left push blocks and two right push blocks.
[0011] 5. In the above scheme, the left cylinder and the right cylinder are each mounted on the left side of the left push plate and the right side of the right push plate via a support base.
[0012] 6. In the above scheme, the first state of the left cylinder and the right cylinder is the piston rod retracted state, and the second state of the left cylinder and the right cylinder is the piston rod extended state.
[0013] Due to the application of the above technical solution, this utility model has the following advantages compared with the prior art:
[0014] This utility model relates to a photovoltaic frame position calibration component. A left push plate, movable left and right, is connected to the piston rod of a left cylinder mounted on a left base. A right base, moving in the opposite direction to the left push plate, is connected to the piston rod of a right cylinder mounted on a right push plate. The left and right cylinders extend and retract synchronously. The right end face of the left push plate extends to the outside of the left base and is equipped with at least one left push block. The left end face of the right base extends to the outside of the right base and is equipped with at least one right push block corresponding to the left push block. When the left and right cylinders switch from a first state to a second state, the left and right push plates approach each other until the corresponding left and right push blocks each press against the end face of the strip-shaped workpiece located between them. The synchronous and approaching left and right push blocks achieve centering of the strip-shaped workpiece in its width direction, thereby calibrating the workpiece's positional accuracy and improving the accuracy and quality of subsequent workpiece processing. Attached Figure Description
[0015] Appendix Figure 1 This is a schematic diagram of the overall structure of the photovoltaic frame position calibration component of this utility model;
[0016] Appendix Figure 2 Appendix to this utility model Figure 1 Enlarged view of point A in the middle;
[0017] Appendix Figure 3 This is a schematic diagram of the photovoltaic frame position calibration component of this utility model in its working state.
[0018] In the attached diagrams: 100, strip-shaped workpiece; 1, left base; 2, right base; 31, left push plate; 32, right push plate; 41, left push block; 42, right push block; 51, left cylinder; 52, right cylinder; 61, slide rail; 62, slider; 7, support base. Detailed Implementation
[0019] The present patent can be further understood through the specific embodiments given below, but they are not intended to limit the present patent.
[0020] Example 1: A photovoltaic frame position calibration component includes: a left base 1 and a right base 2 spaced apart. A left push plate 31 and a right push plate 32 are movably mounted on the upper surfaces of the left base 1 and the right base 2. The left push plate 31, which can move left and right, is connected to the piston rod of a left cylinder 51 mounted on the left base 1. The right base 2, which moves in the opposite direction to the left push plate 31, is connected to the piston rod of a right cylinder 52 mounted on the right push plate 32. The left cylinder 51 and the right cylinder 52 extend and retract synchronously.
[0021] The right end face of the left push plate 31 extends to the outside of the left base 1 and is equipped with at least one left push block 41. The left end face of the right push plate 32 extends to the outside of the right base 2 and is equipped with at least one right push block 42 corresponding to the left push block 41. When the left cylinder 51 and the right cylinder 52 switch from the first state to the second state, the left push plate 31 and the right push plate 32 approach each other until the corresponding left push block 41 and right push block 42 are pressed into contact with the end face of the strip workpiece 100 located between them.
[0022] In normal conditions, the left and right cylinders are in the first state, at which point the distance between the symmetrically arranged left and right push blocks is at its maximum.
[0023] The aforementioned left push plate 31 and right push plate 32 are each mounted on the left base 1 and right base 2 via at least one set of slide rails 61 and sliders 62.
[0024] Both the left push block 41 and the right push block 42 mentioned above are flexible push blocks; both the left push block 41 and the right push block 42 mentioned above are silicone blocks.
[0025] There are two of each of the aforementioned left push block 41 and right push block 42.
[0026] Example 2: A photovoltaic frame position calibration component, comprising: a left base 1 and a right base 2 spaced apart, wherein a left push plate 31 and a right push plate 32 are movably mounted on the upper surfaces of the left base 1 and the right base 2, the left push plate 31, which can move left and right, is connected to the piston rod of a left cylinder 51 mounted on the left base 1, and the right base 2, which moves in the opposite direction to the left push plate 31, is connected to the piston rod of a right cylinder 52 mounted on the right push plate 32, wherein the left cylinder 51 and the right cylinder 52 extend and retract synchronously;
[0027] The right end face of the left push plate 31 extends to the outside of the left base 1 and is equipped with at least one left push block 41. The left end face of the right push plate 32 extends to the outside of the right base 2 and is equipped with at least one right push block 42 corresponding to the left push block 41. When the left cylinder 51 and the right cylinder 52 switch from the first state to the second state, the left push plate 31 and the right push plate 32 approach each other until the corresponding left push block 41 and right push block 42 are pressed into contact with the end face of the strip workpiece 100 located between them.
[0028] The strip-shaped workpiece is transported between the left and right push blocks by an external transport platform. At this time, the left and right cylinders are synchronously driven to switch from the first state to the second state. The left and right push blocks move closer to each other until they are in contact with the end face of one end of the strip-shaped workpiece, thereby achieving the centering and calibration of the workpiece.
[0029] The aforementioned left push plate 31 and right push plate 32 are each mounted on the left base 1 and right base 2 via at least one set of slide rails 61 and sliders 62.
[0030] Both the left push block 41 and the right push block 42 mentioned above are flexible push blocks; both the left push block 41 and the right push block 42 mentioned above are rubber blocks.
[0031] The left cylinder 51 and the right cylinder 52 are each mounted on the left side of the left push plate 31 and the right side of the right push plate 32 via a support 7; the first state of the left cylinder 51 and the right cylinder 52 is the piston rod retracted state, and the second state of the left cylinder 51 and the right cylinder 52 is the piston rod extended state.
[0032] The working principle of this utility model is as follows:
[0033] In normal conditions, the left and right cylinders are in the first state, at which time the distance between the symmetrically arranged left and right push blocks is at its maximum.
[0034] The strip-shaped workpiece is transported between the left and right push blocks by an external transport platform. At this time, the left and right cylinders are synchronously driven to switch from the first state to the second state. The left and right push blocks move closer to each other until they are in contact with the end face of one end of the strip-shaped workpiece, thereby achieving the centering and calibration of the workpiece.
[0035] The aforementioned photovoltaic frame position calibration component uses synchronous and opposing left and right push blocks to center the strip-shaped workpiece in its width direction, thereby calibrating the workpiece's position accuracy and improving the accuracy and quality of subsequent workpiece processing.
[0036] The above embodiments are only for illustrating the technical concept and features of this utility model, and are intended to enable those skilled in the art to understand the content of this utility model and implement it accordingly. They should not be construed as limiting the scope of protection of this utility model. All equivalent changes or modifications made in accordance with the spirit and essence of this utility model should be included within the scope of protection of this utility model.
Claims
1. A photovoltaic frame position calibration component, comprising: The left base (1) and right base (2) are spaced apart, characterized in that: a left push plate (31) and a right push plate (32) are movably mounted on the upper surface of the left base (1) and right base (2), the left push plate (31) which can move left and right is connected to the piston rod of a left cylinder (51) mounted on the left base (1), and the right base (2) which moves in the opposite direction to the left push plate (31) is connected to the piston rod of a right cylinder (52) mounted on the right push plate (32), the left cylinder (51) and the right cylinder (52) extend and retract synchronously; The right end face of the left push plate (31) extends to the outside of the left base (1) and is equipped with at least one left push block (41). The left end face of the right push plate (32) extends to the outside of the right base (2) and is equipped with at least one right push block (42) corresponding to the left push block (41). When the left cylinder (51) and the right cylinder (52) switch from the first state to the second state, the left push plate (31) and the right push plate (32) move closer to each other until the corresponding left push block (41) and right push block (42) are pressed into contact with the end face of the strip workpiece (100) located between them.
2. The photovoltaic frame position calibration component according to claim 1, characterized in that: The left push plate (31) and the right push plate (32) are each mounted on the left base (1) and the right base (2) via at least one set of slide rails (61) and sliders (62).
3. The photovoltaic frame position calibration component according to claim 1, characterized in that: Both the left push block (41) and the right push block (42) are flexible push blocks.
4. The photovoltaic frame position calibration component according to claim 1, characterized in that: The left push block (41) and the right push block (42) are both silicone blocks or rubber blocks.
5. The photovoltaic frame position calibration component according to claim 1, characterized in that: Two left push blocks (41) and two right push blocks (42) are provided.
6. The photovoltaic frame position calibration component according to claim 1, characterized in that: The left cylinder (51) and the right cylinder (52) are each mounted on the left side of the left push plate (31) and the right side of the right push plate (32) via a support base (7).
7. The photovoltaic frame position calibration component according to claim 6, characterized in that: The first state of the left cylinder (51) and the right cylinder (52) is the piston rod retracted state, and the second state of the left cylinder (51) and the right cylinder (52) is the piston rod extended state.