Lead flattening device for photovoltaic module
By designing a wire flattening device for photovoltaic modules, the automatic flattening of wire lifting is achieved using matrix fiber sensors and flattening members, the problem of wire lifting cannot be automatically flattened in the prior art, saving manpower and improving production efficiency.
Patent Information
- Application Number
- CN202421770756.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-25
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-07-25
AI Technical Summary
In the prior art In the manufacturing process of solar panel components, the wire lifting part cannot be automatically flattened, resulting in a large amount of manpower required to manually flatten, and there is a risk of component explosion.
A wire flattening device for photovoltaic modules is designed, including a frame, a stop mechanism, a rear reversing mechanism, a side reversing mechanism and a wire flattening mechanism. The wire flattening mechanism adopts a matrix fiber sensor and a flattening member. The wire lift is monitored by a matrix fiber sensor, and it is automatically flattened by a flattening member.
The automatic flattening of the raised part of the wire is realized, saving manpower, reducing the risk of component explosions, and improving production efficiency and automation.
Smart Images

Figure CN222970845U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of manufacturing solar cell modules, and particularly to a wire flattening device for photovoltaic modules. Background Art
[0002] Solar panels usually have a junction box on their back side, which connects the leads of the solar panel to external leads. The junction box generally includes a box connector and wires. Currently, there are roughly two common ways to use automatic tooling in the industry.
[0003] The first is to install the tooling on the same side of the machine. However, due to the large number of wire specifications, each position is different and it is impossible to ensure complete consistency. Therefore, when cutting the wires, it is necessary to frequently change the tooling, switch the program and replace the mechanism, which is time-consuming and laborious, and extremely inconvenient for personnel operation, with many problems.
[0004] The second is to install the tooling on the opposite side of the machine (considering the factor that the soft wire ends are often not fixed in position and inconvenient to clamp). Currently, this is the commonly used method in the industry. The current process of using a robot to place the tooling and plug and unplug the wires on-site requires pulling the wire ends from the right side of the junction box to the left side for installation. Because the wires are relatively hard, when passing through 10 workstations from placing the tooling to removing the tooling, the wire ends may warp, and there are many wires that cannot be returned to their positions, remaining upright or folding to the opposite side all the time. When the module flows to the subsequent grading, there is a risk of the wire pressing against the frame and causing the module to explode. It is necessary for people to manually flatten the wires and push them inside the frame, which requires a lot of manpower and cannot achieve automation. Summary of the Utility Model
[0005] To automatically flatten the warped part of the wire, the utility model provides a wire flattening device for photovoltaic modules, which includes a frame, and a stop mechanism, a rear alignment mechanism, a side alignment mechanism and a wire flattening mechanism installed on the frame. The stop mechanism, the rear alignment mechanism and the side alignment mechanism each include an adjustment member and a blocking member. The adjustment member is configured to adjust the position of the blocking member in the horizontal and / or vertical directions to adapt to photovoltaic modules of different sizes. The blocking member is used to abut against and / or the photovoltaic module to brake or adjust the position, orientation, etc. of the photovoltaic module.
[0006] The stop mechanism is configured to stop the photovoltaic module at a position on the production line via the blocking member of the stop mechanism. The rear alignment mechanism and the side alignment mechanism are configured to align the stopped photovoltaic module to a predetermined position via the blocking members of the rear alignment mechanism and the side alignment mechanism, so that the wire flattening mechanism is aligned with the wires on the photovoltaic module. The wire flattening mechanism includes a matrix fiber optic sensor and a flattening member, wherein the flattening member is configured to flatten the wire in response to the matrix fiber optic sensor detecting the warping of the wire.
[0007] Alternatively, in some embodiments, the flattening member is implemented in a generally prism shape, which is provided with an inclined surface facing and for engaging the tilted portion of the wire.
[0008] Alternatively, in some embodiments, the wire flattening mechanism further comprises a wire flattening mechanism horizontal actuator, and the wire flattening mechanism horizontal actuator can drive the flattening member to move in a horizontal direction toward the raised portion of the wire to flatten the wire.
[0009] Alternatively, in some embodiments, the wire flattening mechanism further comprises a wire flattening mechanism vertical actuator, and the wire flattening mechanism vertical actuator can drive the wire flattening mechanism horizontal actuator and the flattening member to move in the vertical direction.
[0010] Alternatively, in some embodiments, the matrix fiber optic sensor is configured to be raised in the vertical direction to a height of 3-6 mm above the frame of the photovoltaic component, and the matrix fiber optic sensor is implemented as a reflective matrix fiber optic sensor, and the wire flattening mechanism is configured to flatten the wire when the wire enters the sensing area of the matrix fiber optic sensor.
[0011] Alternatively, in some embodiments, the adjusting member includes a slide rail mounted on the frame and a slider slidable on the slide rail, and the blocking member includes a roller mechanism and a roller actuator mounted on the slider, and the roller actuator can drive the roller mechanism to move in the horizontal and / or vertical direction.
[0012] Alternatively, in some embodiments, the side righting mechanism includes a pair of side righting mechanisms oppositely disposed on opposite sides of the frame.
[0013] Alternatively, in some embodiments, the pair of side righting mechanisms each have two roller mechanisms spaced apart from each other.
[0014] Alternatively, in some embodiments, the adjusting member further includes a locking mechanism, which locks the position of the slider on the slide rail.
[0015] Alternatively, in some embodiments, the roller actuator of the stop mechanism includes a stop mechanism vertical actuator, and the stop mechanism vertical actuator can drive the roller mechanism of the stop mechanism to move in the vertical direction. The roller actuator of the rear-correction mechanism includes a rear-correction mechanism horizontal actuator and a rear-correction mechanism vertical actuator, and the rear-correction mechanism horizontal actuator can drive the roller mechanism of the rear-correction mechanism to move in the horizontal direction, and the rear-correction mechanism vertical actuator can drive the roller mechanism of the rear-correction mechanism to move in the vertical direction. The roller actuator of the side-correction mechanism includes a side-correction mechanism horizontal actuator, and the side-correction mechanism horizontal actuator can drive the roller mechanism of the side-correction mechanism to move in the horizontal direction.
[0016] The wire flattening device for photovoltaic modules provided by the utility model can automatically flatten the raised part of the wire, thus saving manpower. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a stereoscopic diagram of a conductor flattening device for a photovoltaic module according to the utility model;
[0018] Figure 2 It is a three-dimensional diagram of the stop mechanism of the wire flattening device for photovoltaic modules according to the utility model;
[0019] Figure 3 It is a stereoscopic diagram of the rear correction mechanism of the conductor flattening device for photovoltaic modules according to the utility model;
[0020] Figure 4 It is a stereoscopic diagram of the side correction mechanism of the conductor flattening device for photovoltaic modules according to the utility model;
[0021] Figure 5 It is a stereoscopic diagram of a wire flattening mechanism of a wire flattening device for a photovoltaic module according to the utility model;
[0022] Figure 6 It is a schematic diagram of a flattening action performed by a flattening component of a wire flattening mechanism of a wire flattening device for a photovoltaic module according to the utility model. DETAILED DESCRIPTION
[0023] The following is a further detailed description of the conductor flattening device for photovoltaic modules disclosed in the utility model in combination with the accompanying drawings and specific embodiments. The advantages and features of the utility model will become clearer according to the following detailed description and claims. It should be noted that the drawings are all in a very simplified form and use non-precise ratios, which are only used for the purpose of conveniently and clearly assisting in explaining the embodiments of the utility model.
[0024] Reference Figure 1 The wire flattening device for photovoltaic modules according to the present invention comprises a frame 100, and a stop mechanism 110, a rear correction mechanism 120, a side correction mechanism 130 and a wire flattening mechanism 140 installed on the frame 100. Figure 1 As shown, the stop mechanism 110 and the rear return mechanism 120 are preferably arranged on opposite sides of the frame 100; the side return mechanism 130 preferably includes a pair of side return mechanisms 130 relatively arranged on opposite sides of the frame 100; the wire flattening mechanism 140 also preferably includes a pair of wire flattening mechanisms 140 relatively arranged on opposite sides of the frame 100.
[0025] The frame 100 can be arranged on a certain conveyor belt line of the photovoltaic module production line or be a part of the conveyor belt line. The frame 100 can be a truss structure composed of interconnected beams or rods and have a generally rectangular vertical projection. The stop mechanism 110, the rear alignment mechanism 120, the side alignment mechanism 130, and the wire flattening mechanism 140 can be installed and fixed to the frame 100 via bolts, welding, form-fitting connections, etc. (preferably detachably).
[0026] The stop mechanism 110, the rear alignment mechanism 120, and the side alignment mechanism 130 each include an adjustment member and a blocking member. The adjustment members and blocking members of the stop mechanism 110, the rear alignment mechanism 120, and the side alignment mechanism 130 can be implemented as being substantially similar or the same, or implemented as being different from each other.
[0027] Generally, the adjustment member is configured to adjust the position of the blocking member in the horizontal and / or vertical directions to accommodate photovoltaic modules of different sizes. For example, Figure 1 two photovoltaic modules 201 and 202 with different sizes are schematically shown. As an example, a junction box 203 is provided on the backplane of the photovoltaic module 201. The junction box 203 has a connector 2031 and a wire 2032, as Figure 6 shown. The photovoltaic modules 201 and 202 flow into the wire flattening device from the direction indicated by the arrow in Figure 1 (i.e., along the direction from the rear alignment mechanism 120 to the stop mechanism 110). By adjusting the positions of the stop mechanism 110, the rear alignment mechanism 120, and the side alignment mechanism 130 in the horizontal direction, the wire flattening device can accommodate photovoltaic modules of different lengths / widths. In particular, the stop mechanism 110 and the rear alignment mechanism 120 can adjust their positions in the longitudinal direction (i.e., the direction indicated by the arrow) via the adjustment member to accommodate photovoltaic modules of different widths, and the side alignment mechanism 130 can adjust its position in the lateral direction (i.e., another horizontal direction perpendicular to the longitudinal direction) via the adjustment member.
[0028] The adjustment member generally includes a slide rail installed on the frame 100 and a slider slidable on the slide rail. The orientation of the slide rail depends on the adjustment direction required by the stop mechanism 110, the rear alignment mechanism 120, and the side alignment mechanism 130. Specifically, the slide rails of the adjustment members of the stop mechanism 110 and the rear alignment mechanism 120 extend along the longitudinal direction, and the slide rail of the adjustment member of the side alignment mechanism 130 extends along the lateral direction. It can be understood that the extension direction of the slide rail defines the moving direction of the slider.
[0029] The slide rail can be implemented as a single slide rail or multiple parallelly arranged slide rails. The slider can be constructed as a platform, on which a plurality of interfaces or mounting holes are provided to mount different blocking members or other additional members.
[0030] The adjusting member may further include a locking mechanism that locks the position of the slider on the slide rail. The locking mechanism can, for example, clamp the slider on the slide rail.
[0031] The adjusting member may be configured to adjust the position of the slider on the slide rail manually or electrically.
[0032] The blocking member is configured to abut against and / or move the photovoltaic module to brake or adjust the position, orientation, etc. of the photovoltaic module.
[0033] The blocking member may include a roller mechanism and a roller actuator mounted on the slider. The roller actuator is capable of driving the roller mechanism to move in the horizontal and / or vertical directions. The roller mechanism is used to contact the photovoltaic module, particularly the frame of the photovoltaic module.
[0034] The roller mechanism may include a roller that can rotate about its axis of rotation. The roller body may be made of a flexible material such as plastic, silicone, rubber, etc. to avoid damaging the photovoltaic module.
[0035] The adjusting members and the blocking members of the stop mechanism 110, the rear alignment mechanism 120, and the side alignment mechanism 130 may be implemented differently from, the same as, or partially the same as each other.
[0036] The stop mechanism 110 is configured to stop the photovoltaic modules 201, 202 at a position on the production line, such as a substantially predetermined position, via the blocking member of the stop mechanism 110, as described below. In particular, the roller mechanism of the stop mechanism 110 moves up and down in the vertical direction under the actuation of its roller actuator. When the roller mechanism rises, it stops the photovoltaic modules 201, 202 on the production line. When the roller mechanism descends, it does not impede the passage of the photovoltaic modules 201, 202 on the production line.
[0037] The rear alignment mechanism 120 and the side alignment mechanism 130 are configured to align the stopped photovoltaic modules 201, 202 to a predetermined position via the blocking members of the rear alignment mechanism 120 and the side alignment mechanism 130, so that the wire flattening mechanism 140 is aligned with the wires on the photovoltaic modules 201, 202. At the predetermined position, the photovoltaic modules 201, 202 may have a predetermined geometric center positioning and orientation. The alignment of the wire flattening mechanism 140 with the wires on the photovoltaic modules 201, 202 guides the wire flattening mechanism 140, particularly the flattening member 1404, to be aligned with the wire 2032 of the junction box 203 in the longitudinal direction, so that the flattening member 1404 can move above the wire in the longitudinal direction.
[0038] Specifically, as Figure 2As shown, the adjusting member of the stopping mechanism 110 may include a stopping mechanism slide rail 1101 and a stopping mechanism slider 1102. The stopping mechanism slider 1102 may be clamped on the stopping mechanism slide rail 1101 via a pair of fastening handles 1105. The blocking member of the stopping mechanism 110 may include a stopping mechanism roller 1103 and a stopping mechanism vertical actuator 1104. The stopping mechanism vertical actuator 1104 is capable of driving the stopping mechanism roller 1103 to move in the vertical direction, for example, rising to block the photovoltaic modules 201, 202 or descending to allow the photovoltaic modules 201, 202 to pass through.
[0039] The stopping mechanism vertical actuator 1104 may be selected from any one of a hydraulic actuator, a pneumatic actuator, and an electric actuator. In particular, the stopping mechanism vertical actuator 1104 may be implemented as a pneumatic actuator, such as a lifting cylinder, which is controlled by a solenoid valve.
[0040] Specifically, as Figure 3 shown, the adjusting member of the post-correction mechanism 120 may be constructed in the same or similar manner as the adjusting member of the stopping mechanism 110. It may include a post-correction mechanism slide rail 1201 and a post-correction mechanism slider 1202. The post-correction mechanism slider 1202 may be clamped on the post-correction mechanism slide rail 1201 via a fastening handle 1206. The blocking member of the post-correction mechanism 120 may include a post-correction mechanism roller 1203, a post-correction mechanism vertical actuator 1204, and a post-correction mechanism horizontal actuator 1205. The post-correction mechanism horizontal actuator 1205 is capable of driving the post-correction mechanism roller 1203 to move in the horizontal direction, and the post-correction mechanism vertical actuator 1204 is capable of driving the post-correction mechanism roller 1203 to move in the vertical direction, for example, rising or descending.
[0041] The post-correction mechanism horizontal actuator 1205 and the post-correction mechanism vertical actuator 1204 may be selected from any one of a hydraulic actuator, a pneumatic actuator, and an electric actuator. In particular, the post-correction mechanism horizontal actuator 1205 may be implemented as a pneumatic actuator, such as a three-axis cylinder, which is controlled by a solenoid valve; the post-correction mechanism vertical actuator 1204 may also be implemented as a pneumatic actuator, such as a lifting cylinder, which is controlled by a solenoid valve.
[0042] Specifically, as Figure 4As shown, the adjustment member of the side correction mechanism 130 can be constructed the same or similarly to the adjustment member of the stop mechanism 110 and the rear correction mechanism 120, and can include a side correction mechanism slide rail 1301 and a side correction mechanism slider 1302. The side correction mechanism slider 1302 can be clamped on the side correction mechanism slide rail 1301 via a fastening handle 1305. The blocking member of the side correction mechanism 130 can include a pair of side correction mechanism rollers 1303 and a side correction mechanism horizontal actuator 1304. The pair of side correction mechanism rollers 1303 are respectively arranged at both ends of a connecting rod 1306. The connecting rod 1306 is installed on the side correction mechanism horizontal actuator 1304, so that the side correction mechanism horizontal actuator 1304 can drive the pair of side correction mechanism rollers 1303 to move in the horizontal direction.
[0043] The side alignment mechanism horizontal actuator 1304 can be selected from any one of a hydraulic actuator, a pneumatic actuator, and an electric actuator. In particular, the side alignment mechanism horizontal actuator 1304 can be implemented as a pneumatic actuator, such as a three-axis cylinder, which is controlled by a solenoid valve.
[0044] like Figure 5 As shown, the wire flattening mechanism 140 may include an adjustment mechanism, which may be constructed the same or similarly to the adjustment members of the stop mechanism 110, the rear correction mechanism 120, and the side correction mechanism 130, including a wire flattening mechanism slide rail 1401 and a wire flattening mechanism slider 1402. The wire flattening mechanism slider 1402 may be clamped on the wire flattening mechanism slide rail 1401 via a fastening device (not shown).
[0045] The wire flattening mechanism 140 may include a matrix optical fiber sensor 1403 and a flattening member 1404, wherein the flattening member 1404 is configured to flatten the wire 2032 in response to the matrix optical fiber sensor 1403 monitoring the warping of the wire 2032. The matrix optical fiber sensor 1403 is arranged at the lower surface of the flattening member 1404, and in particular is fixed to the lower surface of the flattening member 1404.
[0046] The wire flattening mechanism 140 may further include a wire flattening mechanism vertical actuator 1406 and a wire flattening mechanism horizontal actuator 1407. The wire flattening mechanism vertical actuator 1406 can drive the wire flattening mechanism horizontal actuator 1407 and the flattening member 1404 to move in the vertical direction. The wire flattening mechanism horizontal actuator 1407 can drive the flattening member 1404 to move in the horizontal direction, particularly along the longitudinal direction, toward the tilted portion of the wire 2032 to flatten the wire 2032.
[0047] The wire flattening mechanism horizontal actuator 1406 and the wire flattening mechanism vertical actuator 1407 can be selected from any one of a hydraulic actuator, a pneumatic actuator, and an electric actuator. In particular, the wire flattening mechanism horizontal actuator 1406 and the wire flattening mechanism vertical actuator 1407 can be implemented as a pneumatic actuator, such as a three-axis cylinder, which is controlled by a solenoid valve.
[0048] Reference Figure 6 , the matrix fiber optic sensor 1403 and the entire wire flattening mechanism 140 are configured to be raised in the vertical direction to a height of 3-6 mm above the frame of the photovoltaic components 201 and 202 by the vertical actuator 1406 of the wire flattening mechanism after the photovoltaic components 201 and 202 are corrected. And the matrix fiber optic sensor 1403 can be implemented as a reflective matrix fiber optic sensor. The light emitted by the reflective matrix fiber optic sensor forms a light curtain or a sensing area 1405. The wire flattening mechanism 140 is configured so that when the raised portion of the wire 2032 enters the sensing area 1405, the flattening member 1404 flattens the raised portion of the wire 2032, such as Figure 6 shown.
[0049] The flattening member 1404 may be implemented in a substantially prism shape, and is provided with an inclined surface 14041 facing and used to engage the tilted portion of the wire 2032. As the flattening member 1404 moves toward the tilted portion of the wire 2032 along the longitudinal direction, the inclined surface 14041 moves to abut against the tilted portion of the wire 2032, and presses down and flattens the tilted portion of the wire 2032 via its tilted direction, thereby achieving automatic flattening of the tilted portion of the wire 2032.
[0050] Alternatively, the flattening member 1404 may be made of nylon so as not to damage the wire 2032 .
[0051] The operation of the wire flattening device for photovoltaic modules according to the present invention will be described below with reference to the accompanying drawings.
[0052] First, the horizontal positions of the stopping mechanism 110, the rear correcting mechanism 120, the side correcting mechanism 130 and the wire flattening mechanism 140 are adjusted according to the sizes of the photovoltaic components 201 and 202 on the assembly line, such as width, height, thickness, etc.; when the photovoltaic components 201 and 202 enter the position in the wire flattening device, the stopping mechanism vertical actuator 1104 of the stopping mechanism 110 drives the stopping mechanism roller 1103 to rise, braking the photovoltaic components 201 and 202; the rear correcting mechanism vertical actuator 1204 of the rear correcting mechanism 120 drives the rear correcting mechanism roller 1203 to rise, and the rear correcting mechanism horizontal actuator 1205 and the side correcting mechanism horizontal actuator 1304 of the side correcting mechanism 130 each drive the rear correcting mechanism roller 1103 to brake the photovoltaic components 201 and 202; 203, the roller 1303 of the side correction mechanism corrects the stopped photovoltaic components 201, 202 to the predetermined position; then, the vertical actuator 1406 of the wire flattening mechanism drives the matrix optical fiber sensor 1403 and the flattening member 1404 to rise vertically to a height of 3-6 mm above the frame of the photovoltaic components 201, 202, at which time the matrix optical fiber sensor 1403 monitors whether there is a wire entering the sensing area 1405 of the matrix optical fiber sensor; if so, the horizontal actuator 1407 of the wire flattening mechanism 140 drives the flattening member 1404 to move horizontally toward the wire 2032, so that the inclined surface 14041 contacts the wire 2032 and then presses down the wire 2302, thereby performing the flattening action. If not, it indicates that there is no raised part of the wire 2032, and the wire flattening device allows the photovoltaic component to pass. After the flattening action is completed, the wire flattening device allows the photovoltaic component to continue to pass.
[0053] In the description of the present invention, it should be noted that the terms "center", "up", "down", "left", "right", "vertical", "horizontal", etc. indicate directions or positional relationships based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they cannot be understood as limitations on the present invention.
[0054] In addition, the technical features involved in the different embodiments of the present invention described below can be combined with each other as long as they do not conflict with each other.
[0055] As used in the present invention and the appended claims, the singular forms "a", "said", and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. It should also be understood that the term "and / or" used herein refers to and includes any or all possible combinations of one or more of the associated listed items.
[0056] Obviously, those skilled in the art can make various modifications and variations to the wire flattening device for photovoltaic modules disclosed in the present utility model without departing from the spirit and scope of the present utility model. Thus, if these modifications and variations of the present utility model fall within the scope of the claims of the present utility model and their equivalent technologies, the present utility model also intends to include these modifications and variations therein.
Claims
1. A conductor flattening device for a photovoltaic module, characterized in that: It includes a frame, and a stop mechanism, a rear correction mechanism, a side correction mechanism and a wire flattening mechanism installed on the frame; Wherein, the stop mechanism, the rear return mechanism and the side return mechanism each include an adjustment member and a blocking member, the adjustment member is configured to adjust the position of the blocking member in the horizontal and / or vertical direction, and the blocking member is used to abut against and / or shift the photovoltaic assembly; The stopping mechanism is configured to stop the photovoltaic assembly at a position of the assembly line via a blocking member of the stopping mechanism, and the rear correction mechanism and the side correction mechanism are configured to correct the stopped photovoltaic assembly to a predetermined position via the blocking members of the rear correction mechanism and the side correction mechanism, so that the wire flattening mechanism is aligned with the wire on the photovoltaic assembly; The wire flattening mechanism includes a matrix fiber optic sensor and a flattening member, wherein the flattening member is configured to flatten the wire in response to the matrix fiber optic sensor detecting the warping of the wire.
2. The conductor flattening device for photovoltaic modules according to claim 1, characterized in that: The flattening member is implemented in a generally prism shape and is provided with an inclined surface facing and for engaging the raised portion of the wire.
3. The conductor flattening device for photovoltaic modules according to claim 1 or 2, characterized in that: The wire flattening mechanism further comprises a wire flattening mechanism horizontal actuator, and the wire flattening mechanism horizontal actuator can drive the flattening member to move toward the raised portion of the wire in a horizontal direction to flatten the wire.
4. The conductor flattening device for photovoltaic modules according to claim 3, characterized in that: The wire flattening mechanism further comprises a wire flattening mechanism vertical actuator, and the wire flattening mechanism vertical actuator can drive the wire flattening mechanism horizontal actuator and the flattening component to move in a vertical direction.
5. The conductor flattening device for photovoltaic modules according to claim 1, characterized in that: The matrix optical fiber sensor is configured to be raised in the vertical direction to a height of 3-6 mm above the frame of the photovoltaic component, and the matrix optical fiber sensor is a reflective matrix optical fiber sensor, and the wire flattening mechanism is configured to flatten the wire when the wire enters the sensing area of the matrix optical fiber sensor.
6. The conductor flattening device for photovoltaic modules according to claim 1, characterized in that: The adjusting member comprises a slide rail mounted on the frame and a slider slidable on the slide rail, and the blocking member comprises a roller mechanism and a roller actuator mounted on the slider, wherein the roller actuator can drive the roller mechanism to move in the horizontal and / or vertical direction.
7. The conductor flattening device for photovoltaic modules according to claim 6, characterized in that: The side righting mechanism includes a pair of side righting mechanisms oppositely arranged on opposite sides of the frame.
8. The conductor flattening device for photovoltaic modules according to claim 7, characterized in that: The pair of side correcting mechanisms each has two roller mechanisms spaced apart from each other.
9. The conductor flattening device for photovoltaic modules according to claim 6, characterized in that: The adjusting component further comprises a locking mechanism, which locks the position of the sliding block on the sliding rail.
10. The conductor flattening device for photovoltaic modules according to any one of claims 6 to 9, characterized in that: The roller actuator of the stopping mechanism includes a stopping mechanism vertical actuator, and the stopping mechanism vertical actuator can drive the roller mechanism of the stopping mechanism to move in the vertical direction; The roller actuator of the rear-correcting mechanism includes a rear-correcting mechanism horizontal actuator and a rear-correcting mechanism vertical actuator, wherein the rear-correcting mechanism horizontal actuator can drive the roller mechanism of the rear-correcting mechanism to move in the horizontal direction, and the rear-correcting mechanism vertical actuator can drive the roller mechanism of the rear-correcting mechanism to move in the vertical direction; The roller actuator of the side correcting mechanism comprises a side correcting mechanism horizontal actuator, and the side correcting mechanism horizontal actuator can drive the roller mechanism of the side correcting mechanism to move in the horizontal direction.