Three-code verification tool for photovoltaic module
By designing the three-code verification tooling for photovoltaic modules, and automatically scanning the barcodes on the back, corners and frames of the photovoltaic modules, it solves the problem of time-consuming and labor-intensive scanning of manual codes, improves the scanning efficiency and reduces the labor intensity of workers.
Patent Information
- Application Number
- CN202421907881.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-08-08
AI Technical Summary
After the production of photovoltaic modules, it is necessary to verify the consistency of the three barcodes. Currently, it is time-consuming and labor-intensive to scan codes manually and is prone to missed scans.
A three-code verification tool for photovoltaic modules is designed, including a back code scanning mechanism and a combination code scanning mechanism. The barcode on the back, corners and frame of the photovoltaic modules are automatically scanned by using a code scanning instrument, and the code scanning results are integrated through the controller.
It realizes automatic scanning of codes, improves the efficiency of scanning codes, reduces the labor intensity of workers, and simplifies the operation process.
Smart Images

Figure CN223092426U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of photovoltaic modules, and more specifically to a three-code verification tooling for photovoltaic modules. Background Art
[0002] A solar cell module is composed of high-efficiency crystalline silicon solar cells, ultra-white embossed tempered glass, EVA, a transparent TPT backplane, and an aluminum alloy frame; it has the characteristics of a long service life and strong mechanical compressive external force.
[0003] Barcodes are pasted on the middle of the back, the corners of the front, and the side of the frame of the photovoltaic module. After the production of the photovoltaic module, it is necessary to verify the consistency of the barcodes at the three locations. Currently, most rely on workers to manually scan the barcodes one by one, which is time-consuming and laborious, and is prone to missed scanning and wrong scanning.
[0004] Therefore, there is an urgent need for a three-code verification tooling for photovoltaic modules. Summary of the Utility Model
[0005] The technical problem to be solved by the utility model is to provide a three-code verification tooling for photovoltaic modules to solve the problems in the background art.
[0006] To solve the above technical problems, the following technical solutions are adopted by the utility model.
[0007] A three-code verification tooling for photovoltaic modules is arranged on a machine tool for placing photovoltaic modules, and includes a back scanning mechanism for scanning the back of the photovoltaic module. The back scanning mechanism is connected to a controller arranged on the side of the machine tool; a slideway is arranged on the side wall of the machine tool, and a bent plate with a right-angle bend and bolt holes is slidably arranged on the slideway through bolts; the other side of the bent plate is connected with an overall adjustment track arranged horizontally and perpendicular to the side wall of the machine tool. A combined scanning mechanism is arranged on the overall adjustment track, and the combined scanning mechanism is connected to the controller.
[0008] Further optimizing the technical solution, the back scanning mechanism includes a crossbeam track horizontally arranged above the photovoltaic module. A rotary adjustment rod is hinged on the crossbeam track and can slide left and right along the crossbeam track through a connection block; a back scanner is arranged at the bottom end of the rotary adjustment rod, and the output end of the back scanner is connected to the controller arranged on the machine tool through a wire.
[0009] Further optimizing the technical solution, the combined scanning mechanism includes a left-right adjustment track movably arranged on the overall adjustment track through the bent plate. The left-right adjustment track is horizontally arranged and perpendicular to the overall adjustment track; a corner code is slidably arranged on the left-right adjustment track, and the other end face of the corner code is connected with a front-back adjustment track; a corner scanner and a frame scanner are respectively arranged on the front-back adjustment track, and the output ends of the corner scanner and the frame scanner are both connected to the controller.
[0010] Further optimize the technical solution. The corner code scanner is arranged on the front-back adjustment track through a bending plate and positioned by bolts.
[0011] Further optimize the technical solution. The frame code scanner is arranged on the front-back adjustment track through a bending plate and positioned by bolts.
[0012] Due to the adoption of the above technical solution, the technical progress achieved by the present utility model is as follows.
[0013] A three-code verification tooling for photovoltaic modules provided by the present utility model scans the barcodes on the back of the photovoltaic module through a back code scanning mechanism, and scans the barcodes on the corners and frames of the photovoltaic module through a combined code scanning mechanism. The present utility model has the advantages of simple structure, convenient use, improved code scanning efficiency, and reduced labor intensity of workers. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a schematic structural diagram of the combined code scanning mechanism in the present utility model;
[0015] Figure 2 It is a schematic structural diagram of the back code scanning mechanism in the present utility model;
[0016] Wherein: 1. Corner code scanner, 2. Frame code scanner, 3. Front-back adjustment track, 4. Left-right adjustment track, 5. Overall adjustment track, 6. Cross beam track, 7. Rotating adjustment rod, 8. Back code scanner, 9. Photovoltaic module, 10. Bending plate, 11. Corner code, 12. Machine tool, 13. Slideway. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0017] The present utility model will be further described in detail below with reference to the drawings and specific embodiments.
[0018] A three-code verification tooling for photovoltaic modules is arranged on a machine tool 12 for placing a photovoltaic module 9, and in combination with Figures 1 to 2 as shown, it includes a back code scanning mechanism and a combined code scanning mechanism. The back code scanning mechanism includes a cross beam track 6, a rotating adjustment rod 7, and a back code scanner 8; the combined code scanning mechanism includes a left-right adjustment track 4, a front-back adjustment track 3, an overall adjustment track 5, a corner code scanner 1, a frame code scanner 2, and a corner code 11.
[0019] The back scanning mechanism is used to scan the back of the photovoltaic module 9, and the back scanning mechanism is connected to a controller arranged on the side of the machine tool 12. The back scanning mechanism includes a crossbeam track 6 horizontally arranged above the photovoltaic module 9, and the crossbeam track 6 can be kept stable by connecting with a bracket. A rotary adjusting rod 7 that can slide left and right along the crossbeam track 6 is hinged on the crossbeam track 6. The crossbeam track 6 and the rotary adjusting rod 7 are connected by a connecting block, and the rotary adjusting rod 7 can rotate relative to the connecting block and the crossbeam track 6. A back scanner 8 is arranged at the bottom end of the rotary adjusting rod 7, and the output end of the back scanner 8 is connected to the controller arranged on the machine tool 12 through a wire to send the scanning result to the controller.
[0020] A slideway 13 is arranged on the side wall of the machine tool 12, and a bent plate 10 that is bent at a right angle and has bolt holes is slidably arranged on the slideway 13 through bolts. The other side of the bent plate 10 is connected with a horizontally arranged overall adjusting track 5, and the overall adjusting track 5 is perpendicular to the side wall of the machine tool 12; a combined scanning mechanism is arranged on the overall adjusting track 5, and the combined scanning mechanism is connected to the controller.
[0021] The combined scanning mechanism includes a left - right adjusting track 4 movably arranged on the overall adjusting track 5 through the bent plate 10. The left - right adjusting track 4 is horizontally arranged and perpendicular to the overall adjusting track 5. A corner code 11 is slidably arranged on the left - right adjusting track 4, and the corner code 11 can be fixed on the left - right adjusting track 4 through bolts. The other end face of the corner code 11 is connected with a front - rear adjusting track 3. A corner scanner 1 and a frame scanner 2 are respectively arranged on the front - rear adjusting track 3. The output ends of the corner scanner 1 and the frame scanner 2 are both connected to the controller. The corner scanner 1 is arranged on the front - rear adjusting track 3 through the bent plate 10 and positioned by bolts. The frame scanner 2 is arranged on the front - rear adjusting track 3 through the bent plate 10 and positioned by bolts.
[0022] When the utility model is actually used, the approximate position is determined by moving the position of the rotary adjusting rod 7 on the crossbeam track 6, and then the angle of the rotary adjusting rod 7 is adjusted to align the back scanner 8 with the bar code on the back of the photovoltaic module. The back scanner 8 sends the scanning result to the controller. The position of the left - right adjusting track 4 on the overall adjusting track 5 is adjusted according to the positions of the corner bar code and the bar code at the frame, and then the position is fixed by tightening the bolts between the two. Then the position of the front - rear adjusting track 3 on the left - right adjusting track 4 is adjusted. After the position is determined, the position is fixed by fixing the corner code 11. Then the frame scanner 2 and the corner scanner 1 scan the bar code and send the scanning results to the controller for comparison and analysis.
Claims
1. A three-code verification tooling for photovoltaic modules, which is arranged on a machine tool (12) for placing photovoltaic modules (9), and is characterized in that: It includes a back scanning mechanism for scanning the back of a photovoltaic module (9), and the back scanning mechanism is connected to a controller arranged on the side of a machine tool (12); a slideway (13) is arranged on the side wall of the machine tool (12), and a bent plate (10) which is bent at a right angle and has bolt holes is slidably arranged on the slideway (13) through bolts; the other side of the bent plate (10) is connected with an overall adjustment track (5) which is horizontally arranged and perpendicular to the side wall of the machine tool (12), a combined scanning mechanism is arranged on the overall adjustment track (5), and the combined scanning mechanism is connected to the controller.
2. The three-code verification tooling for a photovoltaic module according to claim 1, wherein: The back scanning mechanism includes a crossbeam track (6) horizontally arranged above the photovoltaic module, and a rotary adjustment rod (7) which is hinged on the crossbeam track (6) and connected through a connecting block and can slide left and right along the crossbeam track (6) is arranged on the crossbeam track (6); a back scanner (8) is arranged at the bottom end of the rotary adjustment rod (7), and the output end of the back scanner (8) is connected to the controller arranged on the machine tool (12) through a wire.
3. The three-code verification tooling for a photovoltaic module according to claim 1, characterized in that: The combined scanning mechanism includes a left - right adjustment track (4) movably arranged on the overall adjustment track (5) through a bent plate (10), the left - right adjustment track (4) is horizontally arranged and perpendicular to the overall adjustment track (5); a corner code (11) is slidably arranged on the left - right adjustment track (4), and the other end face of the corner code (11) is connected with a front - back adjustment track (3); a corner scanner (1) and a frame scanner (2) are respectively arranged on the front - back adjustment track (3), and the output ends of the corner scanner (1) and the frame scanner (2) are both connected to the controller.
4. A three-code verification tooling for a photovoltaic module according to claim 3, characterized in that: The corner scanner (1) is arranged on the front - back adjustment track (3) through a bent plate (10) and is positioned by bolts.
5. A three-code verification tooling for a photovoltaic module according to claim 3, characterized in that: The frame scanner (2) is arranged on the front - back adjustment track (3) through a bent plate (10) and is positioned by bolts.