Warp carding device for photovoltaic silk screen knitting machine
By designing a warp combing device for photovoltaic wire mesh weaving machines, the independent separation and accurate grouping of warp threads were achieved, solving the problem of warp threads being misaligned in the heddle frames and improving weaving quality and efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-02
- Publication Date
- 2026-03-24
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing warp combing device cannot effectively group the warp threads, which makes it easy for the warp threads to pass through the wrong heald frame when passing through the heald frame, thus affecting the quality of photovoltaic wire mesh weaving.
A warp combing device for a photovoltaic wire mesh weaving machine is designed, including a combing module, a first grouping component, and a second grouping component. The device independently separates individual warp threads through a combing channel and clamps the warp threads using a clamping mechanism to ensure that the warp threads can be accurately grouped after combing and directly pass through the corresponding heald frame.
It effectively reduces warp yarn tangling and stacking, ensures accurate grouping of warp yarns and their passage through the heald frame, improves weaving quality and efficiency, and avoids the problem of warp yarns passing through the wrong heald frame.
Smart Images

Figure CN121719002A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of wire mesh weaving, and particularly relates to a warp thread carding device for a photovoltaic wire mesh weaving machine. BACKGROUND
[0002] In the process of photovoltaic wire mesh weaving, the warp thread, as the longitudinal force skeleton of the wire mesh, directly determines the weaving quality of the photovoltaic wire mesh in terms of uniformity and flatness of arrangement. The warp thread used in photovoltaic wire mesh weaving is a plurality of parallelly arranged fine metal wires. Before weaving, the plurality of warp threads are prone to winding and stacking, and therefore, the warp threads need to be carded before weaving to keep each warp thread independent and uniformly spaced, thereby providing a basis guarantee for subsequent wire mesh weaving.
[0003] In the weaving process, the heald frame of the photovoltaic wire mesh weaving machine is used to control the up-and-down movement of the warp thread to realize interweaving with the weft thread. Specifically, the heald frame is divided into two groups, and the two groups of heald frames divide the warp thread into two groups. Each warp thread of one group of warp threads belongs to the other group of warp threads, and therefore, when the two groups of warp threads slide in opposite directions in the height direction, the two groups of warp threads can be separated to facilitate the weft thread to pass through the two groups of warp threads. Then, the positions of the two groups of warp threads are exchanged, and the weft thread continues to pass through the two groups of warp threads, so that the threading order of adjacent weft threads is different, thereby facilitating the formation of a mesh structure. The above process is repeated to complete the wire mesh weaving process.
[0004] The existing warp thread carding can only realize the separation and carding of the warp thread, and cannot group the carded warp thread. When the warp thread subsequently passes through the heald frame, the operator needs to confirm the corresponding relationship between the warp thread and the heald frame to make the adjacent warp threads pass through different heald frames. However, due to the large number of warp threads, the risk of warp thread mis-threading the heald frame is prone to occur during the distinguishing process. SUMMARY
[0005] The embodiment of the application provides a warp thread carding device for a photovoltaic wire mesh weaving machine, which aims to solve the problem that the operator needs to distinguish the corresponding relationship between the warp thread and the heald frame after carding, and the warp thread is prone to mis-threading the heald frame.
[0006] To achieve the above-mentioned purpose, the technical scheme adopted by the application is as follows: A warp thread carding device for a photovoltaic wire mesh weaving machine is provided, which comprises: A carding module has a plurality of carding channels on the top, and each carding channel is used for one warp thread to pass through; A first grouping component is inserted into the warp thread exit side of the carding module in a plug-in manner. The first grouping component has a first thread passing groove aligned with the carding channel, and the adjacent first thread passing grooves are spaced apart by one carding channel. A second grouping component is inserted into the warp thread exit side of the carding module; the second grouping component has a second thread passing groove corresponding to each carding channel between adjacent first thread passing grooves; The first grouping component and the second grouping component are each provided with a clamping mechanism for clamping the warp thread.
[0007] In a possible implementation, the warp thread exit side of the carding module has a protruding component at the position of the first grouping component, and the protruding component is inserted into the first grouping component; The protruding component has an avoiding groove for avoiding the carding channel, and the first grouping component and the carding module have a space for placing the second grouping component.
[0008] In a possible implementation, the first grouping component includes: A hand-held portion is connected with a plurality of connecting columns at the top; the end surface of the connecting column faces the carding module, the first thread passing groove is arranged at the top of the connecting column, and the first thread passing groove extends to the position of the axis of the connecting column; The clamping mechanism includes an arc-shaped clamping block rotatably arranged in the rotating groove; the arc-shaped clamping block has a groove aligned with the first thread passing groove, and when the groove and the first thread passing groove are arranged in a misaligned manner, the arc-shaped clamping block limits the warp thread of the first thread passing groove in the radial direction.
[0009] In a possible implementation, the hand-held portion has a sliding groove, and the rotating groove has an opening in communication with the sliding groove; the clamping mechanism further includes: A rack is slidingly arranged in the sliding groove of the hand-held portion; the arc surface of the arc-shaped clamping block has a tooth engaged with the rack; one end of the rack extends out of the hand-held portion; A limiting structure is arranged between the hand-held portion and the extended end of the rack; the limiting structure can limit two sliding positions of the rack, so that the groove of the arc-shaped clamping block is aligned with or misaligned with the first thread passing groove.
[0010] In a possible implementation, the limiting structure includes: A baffle is connected at one end to the end of the hand-held portion and extends outward at the other end; the bottom of the extended end of the baffle is arranged in a bent manner downward; A sliding block is connected to the side wall of the extended end of the rack; the top of the sliding block is in contact with the bottom of the baffle, and the side wall of the sliding block can be in contact with the bent end of the baffle; The limiting hole is arranged on the slider in the height direction, limiting bolts are arranged at positions close to the two ends of the baffle respectively, the limiting bolts are in threaded cooperation with the baffle, and the threaded end of the limiting bolt can be inserted into the limiting hole of the slider.
[0011] In a possible implementation, the chute is in communication with the bottom of the handheld part, the bottom of the handheld part is detachably provided with a cover plate, the cover plate is in contact with the bottom of the rack to limit the rack in the height direction.
[0012] In a possible implementation, the outer side end of the connecting column has a connecting groove in communication with the rotating groove; the arc-shaped clamping block is provided with a threaded hole, the arc-shaped clamping block is provided with a positioning screw rod at the position of the threaded hole, the other end of the positioning screw rod is located in the connecting groove, and the outer peripheral wall of the positioning screw rod is in contact with the two sides of the connecting groove.
[0013] In a possible implementation, the threaded hole on the arc-shaped clamping block is a through hole, the side wall opposite to the positioning screw rod of the rotating groove has a insertion hole; when the groove of the arc-shaped clamping block is aligned with the first wire passing groove, the positioning screw rod is aligned with the insertion hole, and the positioning screw rod can be inserted into the insertion hole.
[0014] In a possible implementation, the side wall of the groove is connected with an elastic pad, and the elastic pad can be in abutting cooperation with the warp to fix the warp.
[0015] In a possible implementation, the warp passing side of the separating module is provided with a insertion slot, and the end of the connecting column has an insertion block in insertion cooperation with the insertion slot.
[0016] The warp separating device for the photovoltaic wire net weaving machine provided in the application can independently separate single warp through the separating channel of the separating module, so that the warp winding and stacking are reduced; in the process of separating the warp, the adjacent warps can pass through the first wire passing groove and the second wire passing groove respectively, so that the adjacent warps are divided into two groups. After the warp is separated, the clamping mechanism can clamp the warp, so that the first grouping component and the second grouping component can pull the corresponding warp, so that the warp does not need to be grouped again in the subsequent process of passing through the heald frame, and the warp on the grouping component can directly pass through the corresponding heald frame. The first grouping component and the second grouping component are in insertion cooperation with the separating module, so that the first grouping component and the second grouping component are convenient to disassemble and assemble, and the grouped warp can be pulled to the corresponding heald frame for the threading operation. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 FIG. 1 is a schematic diagram of a warp separating device for a photovoltaic wire net weaving machine provided in an embodiment of the application; Figure 2 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 1 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 3 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 4 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 5 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 4 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 6 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 7 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 8 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 7 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 9 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; Figure 10 Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application;
[0018] Fig. 2 is a schematic view of the warp yarn passing through a warp yarn combing device for a photovoltaic wire screen weaving machine provided by an embodiment of the present application; DETAILED DESCRIPTION
[0019] In order to make the technical problems, technical solutions and beneficial effects of the present application clearer, the present application will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and not to limit the present application.
[0020] Please refer to Figures 1 to 10The application provides a warp combing device for a photovoltaic wire screen weaving machine, which comprises a combing module 1, a first grouping component 2 and a second grouping component 3. The top of the combing module 1 is provided with a plurality of combing channels 11, and each of the combing channels 11 is used for passing a warp. The first grouping component 2 is in plug-in cooperation with the warp passing side 12 of the combing module 1. The first grouping component 2 is provided with first wire passing grooves 21 which are aligned with the combing channels 11, and the adjacent first wire passing grooves 21 are spaced apart by one combing channel 11. The second grouping component 3 is in plug-in cooperation with the warp passing side 12 of the combing module 1. The second grouping component 3 is provided with second wire passing grooves 31 which correspond to the combing channels 11 between the adjacent first wire passing grooves 21. The first grouping component 2 and the second grouping component 3 are both provided with clamping mechanisms 4 for clamping the warp.
[0021] Compared with the prior art, the warp combing device for the photovoltaic wire screen weaving machine provided by the application can independently separate single warps through the combing channels 11 of the combing module 1, so that the warps are less likely to be wound or stacked. In the process of combing the warps, the adjacent warps can pass through the first wire passing grooves 21 and the second wire passing grooves 31 respectively, so that the adjacent warps are divided into two groups. After the warps are combed, the clamping mechanisms 4 can clamp the warps, so that the first grouping component 2 and the second grouping component 3 can pull the corresponding warps. Therefore, in the subsequent process of passing the warps through the heald frames, the warps do not need to be grouped again, and the warps on the grouping components can be directly passed through the corresponding heald frames. The plug-in cooperation between the first grouping component 2, the second grouping component 3 and the combing module 1 facilitates the disassembly and assembly of the first grouping component 2 and the second grouping component 3, so that the grouped warps can be pulled to the corresponding heald frames for threading operation.
[0022] It should be noted that, in the process of combing the warps, the adjacent warps pass through the first grouping component 2 and the second grouping component 3 respectively, so that the first grouping component 2 and the second grouping component 3 can divide the warps into two groups after the warping is finished. When the warps are passed through the heald frames, the first grouping component 2 can be pulled to pull one group of warps to one heald frame, and then the warps can be threaded.
[0023] After the threading of the heald frame is completed, the warps of the second grouping component 3 are pulled to the other heald frame, and the warps on the second grouping component 3 are passed through the other heald frame.
[0024] The width of the first wire passing groove 21 is the same as the width of the carding channel 11, and the width of the second wire passing groove 31 is also the same as the width of the carding channel 11; the first grouping component 2 and the second grouping component 3 are completely the same in structure, and the difference between the first grouping component 2 and the second grouping component 3 is that the installation positions are different, and the first grouping component 2 is taken as an example for description below.
[0025] Each second wire passing groove 31 of the second grouping component 3 is located between two first wire passing grooves 21 of the first grouping component 2, and through the above arrangement, adjacent warp threads can be divided into different groups. When the two heald frames move up and down alternately, adjacent warp threads can be driven to move up and down alternately, so that the threading order of adjacent weft threads is different, and finally a mesh structure is formed.
[0026] In some embodiments, as shown in Figures 1 to 10 The warp thread threading side 12 of the carding module 1 has a protruding component 13 at the position of the first grouping component 2, the protruding component 13 is fixed on the carding module 1, and the protruding component 13 is inserted and matched with the first grouping component 2; wherein the protruding component 13 has an avoiding groove 131 for avoiding the carding channel 11, and the first grouping component 2 and the carding module 1 have a space for placing the second grouping component 3.
[0027] By setting the avoiding groove 131 on the protruding component 13, the carding channel 11 can be effectively avoided, and the protruding component 13 can be prevented from blocking the warp thread threading path. The space reserved between the first grouping component 2 and the carding module 1 can insert the second grouping component 3 on the carding module 1; the installation sequence of the first grouping component 2 and the second grouping component 3 is that the second grouping component 3 is inserted on the carding module 1 first, and then the first grouping component 2 is inserted on the protruding component 13. Through the above arrangement, the carding of the warp thread is not affected, and the problem of interference between the first grouping component 2 and the second grouping component 3 can be avoided.
[0028] By setting the protruding component 13, on the one hand, the first grouping component 2 is connected; on the other hand, the avoiding groove 131 of the protruding component 13 can guide the warp thread, so that the warp thread can pass through the first wire passing groove 21.
[0029] In some embodiments, as shown in Figures 1 to 10As shown, the first grouping component 2 comprises a hand-held portion 22, and a plurality of connecting columns 23 are spacedly connected to the top of the hand-held portion 22; the end faces of the connecting columns 23 face the separating module 1, and a first thread slot 21 is arranged at the top of the connecting columns 23 and extends to the axial position of the connecting columns 23; wherein each of the connecting columns 23 has a rotating groove 231 therein, and the clamping mechanism 4 comprises an arc-shaped clamping block 41 rotatably arranged in the rotating groove 231; the arc-shaped clamping block 41 has a recess 411 aligned with the first thread slot 21, and when the recess 411 is arranged out of position with the first thread slot 21, the arc-shaped clamping block 41 can radially limit the warp thread of the first thread slot 21. An elastic pad (not shown in the figure) is connected to the side wall of the recess 411, and the elastic pad can be in abutting cooperation with the warp thread to fix the warp thread.
[0030] The hand-held portion 22 of the first grouping component 2 is convenient for the operator to hold; the top of the hand-held portion 22 is provided with an arc-shaped groove 221 for accommodating the connecting columns 23, and a part of the connecting columns 23 is located in the arc-shaped groove 221 and the other part protrudes out of the arc-shaped groove 221. After the warp thread passes through the first thread slot 21, the warp thread can be located in the recess 411 of the arc-shaped clamping block 41, and the elastic pad in the recess 411 can abut against the warp thread to clamp the warp thread.
[0031] By rotating the arc-shaped clamping block 41 by a preset angle, the recess 411 of the arc-shaped clamping block 41 can be arranged out of position with the first thread slot 21, and at this time, the warp thread cannot slide out of the first thread slot 21. Through the above arrangement, when the hand-held portion 22 is moved, the situation that the warp thread is pulled out of the first thread slot 21 can be reduced.
[0032] In some embodiments, as shown in the drawings, Figures 1 to 10 The hand-held portion 22 has a sliding groove 222, and the rotating groove 231 has an opening communicated with the sliding groove 222; the clamping mechanism 4 further comprises a rack 42 and a limiting structure; the rack 42 is slidingly arranged in the sliding groove 222 of the hand-held portion 22; the arc surface of the arc-shaped clamping block 41 has a tooth engaged with the rack 42; one end of the rack 42 extends out of the hand-held portion 22; the limiting structure is arranged between the hand-held portion 22 and the extending end of the rack 42; and the limiting structure can limit two sliding positions of the rack 42 to align or arrange out of position the recess 411 of the arc-shaped clamping block 41 with the first thread slot 21.
[0033] The arc surface of the arc-shaped clamping block 41 is located at the opening position of the rotating groove 231, and by sliding the rack 42, the arc-shaped clamping block 41 can be driven to rotate around the axis of the connecting column 23, so as to align or arrange out of position the recess 411 of the arc-shaped clamping block 41 with the first thread slot 21. The rack 42 is engaged with all the arc-shaped clamping blocks 41 on the hand-held portion 22, and when the rack 42 is slid, it can simultaneously drive a plurality of arc-shaped clamping blocks 41 to rotate, so as to radially limit all the warp threads on the hand-held portion 22; without operating one by one, the operation efficiency can be improved.
[0034] By setting the limiting structure, the sliding position of the rack 42 can be limited, and the separation of the rack 42 and the teeth on the arc-shaped clamping block 41 can be reduced.
[0035] In some embodiments, as shown in Figures 1 to 10 The limiting structure includes a baffle 43 and a sliding block 44. One end of the baffle 43 is connected to the end of the handheld part 22, and the other end extends outward. The bottom of the extended end of the baffle 43 is bent downward. The sliding block 44 is connected to the side wall of the extended end of the rack 42. The top of the sliding block 44 is in contact with the bottom of the baffle 43, and the side wall of the sliding block 44 can be in contact with the bent end of the baffle 43. The sliding block 44 has a limiting hole arranged in the height direction. The positions close to the two ends of the baffle 43 are respectively provided with limiting bolts 45. The limiting bolts 45 are threadedly connected with the baffle 43, and the threaded ends of the limiting bolts 45 can be inserted into the limiting holes of the sliding block 44.
[0036] The baffle 43 is fixed on the handheld part 22, and the sliding block 44 is fixed on the rack 42. The bent end of the baffle 43 is bent downward. When the sliding block 44 is in contact with the bent end of the baffle 43, it is the limit distance for the rack 42 to slide outward. When the sliding block 44 is in contact with the end of the handheld part 22, it is the limit position for the rack 42 to slide inward.
[0037] When the sliding block 44 is in contact with the bent end of the baffle 43, the position of the limiting bolt 45 and the limiting hole of the sliding block 44 are inserted and matched, which can fix the position of the rack 42. At this time, the groove 411 on the arc-shaped clamping block 41 is aligned with the first wire passing groove 21.
[0038] When the sliding block 44 is in contact with the side of the handheld part 22, the position of the limiting bolt 45 and the limiting hole of the sliding block 44 are inserted and matched, which can fix the position of the rack 42. At this time, the groove 411 of the arc-shaped clamping block 41 can be kept in a state of being out of position with the first wire passing groove 21, reducing the situation that the thread is separated from the first wire passing groove 21.
[0039] In some embodiments, as shown in Figures 1 to 10 The outer end of the connecting column 23 has a connecting groove 232, which is in communication with the rotating groove 231. The arc-shaped clamping block 41 is provided with a threaded hole, and a positioning screw 46 is arranged at the position of the threaded hole. The other end of the positioning screw 46 is located in the connecting groove 232, and the outer peripheral wall of the positioning screw 46 is in contact with the two sides of the connecting groove 232. The sliding groove 222 is in communication with the bottom of the handheld part 22. The bottom of the handheld part 22 is detachably provided with a cover plate 223, which is in contact with the bottom of the rack 42 to limit the rack 42 in the height direction.
[0040] The threaded hole on the arc-shaped clamping block 41 is a through hole, and the side wall opposite to the positioning screw 46 on the rotating groove 231 has a insertion hole 233; when the recess 411 of the arc-shaped clamping block 41 is aligned with the first wire passing groove 21, the positioning screw 46 is aligned with the insertion hole 233, and the positioning screw 46 can be inserted into the insertion hole 233.
[0041] When the rack 42 is installed, the position of the arc-shaped clamping block 41 is first fixed, specifically: the recess 411 of the arc-shaped clamping block 41 is rotated to a position aligned with the first wire passing groove 21, and at this time the positioning screw 46 is located at one end of the connecting groove 232; a limiting block is inserted into the first wire passing groove 21 and the recess 411, and the two sides of the limiting block are in contact with the two sides of the recess 411 respectively, and the two sides of the limiting block are in contact with the two sides of the first wire passing groove 21 respectively. Then by rotating the positioning screw 46, the inner side end of the positioning screw 46 can be inserted into the insertion hole 233 of the rotating groove 231, at this time the position of the arc-shaped clamping block 41 can be fixed.
[0042] The rack 42 is inserted into the sliding groove 222 from the bottom end of the handheld part 22, so that the rack 42 is engaged with the arc-shaped clamping block 41, and then the cover plate 223 is fixed on the bottom of the handheld part 22 by bolts; at this time the bottom of the rack 42 is in contact with the cover plate 223, which can limit the height direction of the rack 42. After the rack 42 is installed, the sliding block 44 on the rack 42 is located at the bent end of the baffle 43, and then the limiting bolt 45 is inserted into the limiting hole on the sliding block 44, which can fix the position of the rack 42.
[0043] After the rack 42 is installed, the limiting block is removed; the function of the limiting block is to assist in positioning, and prevent the arc-shaped clamping block 41 from rotating during the installation of the rack 42.
[0044] The arc-shaped clamping block 41 is a cylindrical structure, and the outer peripheral wall of the arc-shaped clamping block 41, except for the recess 411 part, is provided with teeth engaged with the rack 42; the outer peripheral wall of the arc-shaped clamping block 41 is in contact with the inner peripheral wall of the rotating groove 231, which can circumferentially limit the arc-shaped clamping block 41.
[0045] In some embodiments, as Figures 1 to 10As shown, for the second grouping component 3, the warp thread exit side 12 of the carding module 1 is provided with a slot 14, and the end of the connecting column 23 is provided with an insertion block 234 which is inserted into the slot 14. The insertion block 234 of the second grouping component 3 is directly inserted into the slot 14 of the side of the carding module 1; for the first grouping component 2, the slot 14 is arranged on the protruding component 13 of the carding module 1, and the insertion block 234 on the first grouping component 2 is inserted into the slot 14 of the protruding component 13. When the second grouping component 3 is inserted into the carding module 1, there is a gap between the protruding component 13 and the top of the hand holding portion 22 of the second grouping component 3, so as to avoid interference of the installation of the protruding component 13 on the second grouping component 3. The top of the carding module 1 is provided with a chamfer on both sides of each carding channel 11, so as to facilitate guiding the warp thread into the corresponding carding channel 11.
[0046] The above only describes the preferred embodiments of the present application and is not intended to limit the present application. Any modification, equivalent replacement and improvement made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A warp combing device for a photovoltaic wire mesh weaving machine, characterized in that, include: The combing module has several combing channels at the top, and each combing channel is used for a warp thread to pass through; The first grouping component is inserted into the warp thread exit side of the combing module; the first grouping component has a first thread groove aligned with the combing channel, and a combing channel is spaced between adjacent first thread grooves; The second grouping component is inserted into the warp thread exit side of the combing module; the second grouping component has a second thread guide groove, and the combing channel between the second thread guide groove and the adjacent first thread guide groove corresponds one-to-one; Both the first grouping component and the second grouping component are provided with clamping mechanisms for clamping the warp threads.
2. The warp combing device for a photovoltaic wire mesh weaving machine as described in claim 1, characterized in that, The warp thread exit side of the combing module has a protruding part at the position of the first grouping component, and the protruding part is inserted into the first grouping component; The protruding component has a clearance groove for avoiding the combing channel, and there is a space between the first grouping component and the combing module for placing the second grouping component.
3. The warp combing device for a photovoltaic wire mesh weaving machine as described in claim 1, characterized in that, The first grouping component includes: The handheld part has several connecting posts spaced apart at the top; the end face of the connecting post faces the combing module, the first wire passage groove is disposed at the top of the connecting post, and the first wire passage groove extends to the axis position of the connecting post. Each of the connecting columns has a rotating groove, and the clamping mechanism includes an arc-shaped clamping block rotatably disposed in the rotating groove; the arc-shaped clamping block has a groove aligned with the first wire guide groove, and when the groove is misaligned with the first wire guide groove, the arc-shaped clamping block radially limits the warp of the first wire guide groove.
4. The warp combing device for a photovoltaic wire mesh weaving machine as described in claim 3, characterized in that, The handgrip has a sliding groove, and the rotating groove has an opening communicating with the sliding groove; the clamping mechanism further includes: A rack is slidably disposed within a groove in the handgrip; the arc-shaped clamp has teeth on its arc surface that mesh with the rack; one end of the rack extends out of the handgrip. A limiting structure is disposed between the handgrip and the extended end of the rack; the limiting structure can restrict two sliding positions of the rack so that the groove of the arc-shaped clamp is aligned with or misaligned with the first wire guide groove.
5. The warp combing device for a photovoltaic wire mesh weaving machine as described in claim 4, characterized in that, The limiting structure includes: A baffle is connected at one end to the end of the handheld part and extends outward at the other end; the bottom of the extended end of the baffle is bent downward. A slider is connected to the side wall of the extended end of the rack; the top of the slider contacts the bottom of the baffle, and the side wall of the slider can contact the bent end of the baffle. The slider has a limiting hole arranged along the height direction, and the baffle is provided with limiting bolts at both ends. The limiting bolts are threadedly engaged with the baffle, and the threaded end of the limiting bolt can be inserted into the limiting hole of the slider.
6. The warp combing device for a photovoltaic wire mesh weaving machine as described in claim 4, characterized in that, The groove connects to the bottom of the handheld part, and the bottom of the handheld part is detachably provided with a cover plate. The cover plate contacts the bottom of the rack to limit the rack in the height direction.
7. The warp combing device for a photovoltaic wire mesh weaving machine as described in claim 4, characterized in that, The outer end of the connecting column has a connecting groove, which communicates with the rotating groove; the arc-shaped clamping block has a threaded hole, and the arc-shaped clamping block has a positioning screw at the position of the threaded hole. The other end of the positioning screw is located in the connecting groove, and the outer peripheral wall of the positioning screw is in contact with both sides of the connecting groove.
8. The warp combing device for a photovoltaic wire mesh weaving machine as described in claim 7, characterized in that, The threaded hole on the arc-shaped clamping block is a through hole, and the side wall opposite to the positioning screw of the rotating groove has an insertion hole; when the groove of the arc-shaped clamping block is aligned with the first wire guide groove, the positioning screw is aligned with the insertion hole, and the positioning screw can be inserted and engaged with the insertion hole.
9. A warp combing device for a photovoltaic wire mesh weaving machine as described in claim 3, characterized in that, An elastic pad is connected to the side wall of the groove, and the elastic pad can abut against the warp thread to fix the warp thread.
10. A warp combing device for a photovoltaic wire mesh weaving machine as described in claim 3, characterized in that, The warp side of the combing module is provided with a slot, and the end of the connecting post has a plug that engages with the slot.