Photovoltaic battery piece separating device

By designing an automated photovoltaic cell slicing device and using a rotating frame assembly and adsorption plates to achieve automatic slicing of photovoltaic cells, the time-consuming, labor-intensive and pollution-prone manual slicing problems are solved, and the slicing efficiency and result accuracy are improved.

CN223462197UActive Publication Date: 2025-10-21YANGZHOU XINRUI PHOTOELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202422588156.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-24
Publication Date
2025-10-21
Estimated Expiration
2034-10-24

AI Technical Summary

Technical Problem

The existing photovoltaic cell slicing process is time-consuming and labor-intensive, and is prone to damage to the cells and cause contamination, which affects the verification results.

Method used

A photovoltaic cell slicing device was designed, which included a rotating frame assembly, a sliding connecting rod, a flower basket loading assembly, a slicing flower basket and a slicing assembly. Automatic slicing was achieved through synchronous rotation and multi-directional movement. The photovoltaic cells were adsorbed from the fully loaded flower basket using an adsorption plate and loaded into the slicing flower basket.

Benefits of technology

It realizes the automated slicing of photovoltaic cells, reduces manual operation time and damage risks, ensures the cleanliness of cells, and improves slicing efficiency and the accuracy of verification results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a photovoltaic cell slice separating device, which belongs to the technical field of photovoltaic cell slice production and comprises a rotating frame assembly, a sliding connecting rod, a basket loading assembly, a slice separating basket, a full-load basket and a slice separating assembly. The two rotating frame assemblies are oppositely arranged in the first direction and rotate synchronously, the sliding connecting rods are arranged between the two rotating frame assemblies, the basket loading assembly slides along the sliding connecting rods, and the fragmented basket is arranged on the basket loading assembly and used for bearing fragmented photovoltaic cells. The plurality of fragmented flower baskets are uniformly arranged along the circumferential direction to form a plurality of stations, and station switching is realized through rotation. Meanwhile, the flower basket loading assembly slides along the sliding connecting rod to adjust the position or achieve loading and unloading. The fragmentation assembly has motion freedom degrees in multiple directions, the photovoltaic cell pieces are adsorbed from the full-load flower basket through the fragmentation assembly and are sequentially loaded in the flower basket loading assemblies of all the stations, and therefore automatic fragmentation is achieved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to photovoltaic cell production technical field, concretely relates to a photovoltaic cell piece device. BACKGROUND

[0002] In the production process of photovoltaic cell, several groups of photovoltaic cells with similar surface performance are often processed and tested respectively to compare the efficiency and effect of each group of photovoltaic cells, so as to troubleshoot abnormal production line, analyze parameter difference or compare the advantages and disadvantages of printing paste performance. In order to ensure that each group of photovoltaic cells has the same or similar surface performance, it is necessary to reduce the performance difference of each group of cells by dividing the cells, and the principle is to divide the photovoltaic cells in the same basket into other baskets in turn, and the surface performance of the photovoltaic cells with similar positions in the same basket is most similar.

[0003] Manual operation not only consumes time and effort, but also easily causes damage to photovoltaic cells during the process of dividing the cells. In addition, the dust or dirt on the hands can be attached to the photovoltaic cells during the process of holding the photovoltaic cells, which causes pollution to the surface of the photovoltaic cells, resulting in the appearance of low-efficiency or defective cells, affecting the verification result. Therefore, a photovoltaic cell dividing device is needed. SUMMARY

[0004] In order to solve the above problems existing in the prior art, the utility model provides a photovoltaic cell dividing device. The technical problem to be solved by the utility model is realized by the following technical scheme:

[0005] The utility model provides a kind of photovoltaic cell piece slicing device, comprising: rotating frame assembly, sliding link, flower basket loading assembly, slicing flower basket, full load flower basket and slicing assembly;Two rotating frame assemblies are oppositely arranged along the first direction and rotate synchronously;Each rotating frame assembly includes: umbrella-shaped connecting rod, fixed connecting rod, rotating connecting rod and rotating ring, the first end of several umbrella-shaped connecting rods is connected with each other, the other end extends along the circumference and is evenly distributed respectively, the second end of several umbrella-shaped connecting rods is connected with rotating ring;The number of umbrella-shaped connecting rod, fixed connecting rod and rotating connecting rod is equal and one-to-one correspondence, the second end of umbrella-shaped connecting rod is rotatably connected with the first end of rotating connecting rod, and the second end of rotating connecting rod is fixedly connected with rotating connecting rod;Sliding link is connected between the two rotating connecting rods oppositely arranged;At least one flower basket loading assembly is provided on each sliding link, and the flower basket loading assembly is slidably connected with the sliding link, and the slicing flower basket is provided on each flower basket loading assembly;Full load flower basket is arranged between the two rotating frame assemblies, and several photovoltaic cell pieces are loaded in full load flower basket in turn;Slicing assembly is arranged between the two rotating frame assemblies, and includes: slicing guide rail, sliding arm connector, sliding arm, telescopic rod and adsorption plate;Slicing guide rail is arranged along the first direction, sliding arm connector is slidably connected with slicing guide rail, and sliding arm is arranged along the second direction and slidably connected with sliding arm connector;Telescopic rod is arranged along the third direction and is elongated or shortened along the third direction;The first end of telescopic rod is slidably connected with sliding arm, and the second end is fixedly connected with adsorption plate;Adsorption plate is used to adsorb photovoltaic cell piece from full load flower basket and is loaded into several slicing flower baskets respectively;Wherein, the first direction, the second direction and the third direction are perpendicular to each other in pairs.

[0006] In an embodiment of the utility model, umbrella-shaped connecting rod is at least 4, and the included angle between adjacent two umbrella-shaped connecting rods is equal.

[0007] In an embodiment of the utility model, each flower basket loading assembly includes: flower basket bearing plate, baffle and barrier strip, wherein the flower basket bearing plate is slidably connected with sliding link, the baffle is arranged on the flower basket bearing plate, the baffle is L-shaped, including: first connecting part and second connecting part, and the first connecting part and the second connecting part are perpendicular to each other and are arranged along the first direction and the second direction respectively;Barrier strip is arranged on the flower basket bearing plate away from the baffle, and slicing flower basket is arranged between the baffle and the barrier strip.

[0008] In an embodiment of the utility model, each flower basket loading assembly further includes: telescopic barrier, and several telescopic barriers are arranged on the flower basket bearing plate with interval and are arranged away from the first connecting part or the second connecting part respectively;One end of each telescopic barrier is telescopic along the first direction or the second direction to approach or move away from the baffle.

[0009] In one embodiment of the present invention, a plurality of basket teeth are arranged at intervals on both the segmented basket and the fully loaded basket, and the spacing between any two adjacent basket teeth is equal, and the photovoltaic cells are loaded between any two adjacent basket teeth.

[0010] In one embodiment of the present invention, the photovoltaic cell slicing device further includes: a basket guide rail, which is arranged along a first direction and located between a plurality of sliding connecting rods; a fully loaded basket is arranged on the basket guide rail and is slidably connected.

[0011] In one embodiment of the present invention, the photovoltaic cell slice separating device further includes: support plates, two support plates are arranged opposite to each other, and a rotating frame assembly is correspondingly arranged on each support plate, and the rotating frame assembly is rotatably connected to the support plates.

[0012] In one embodiment of the present invention, the photovoltaic cell slice slicing device further includes: a first supporting bracket, the first supporting bracket is respectively connected to both ends of the slicing guide rail, and the slicing guide rail is fixed to the support plate through the first supporting bracket.

[0013] In one embodiment of the present invention, the photovoltaic cell slicing device further includes: a second supporting bracket, the second supporting bracket is respectively connected to both ends of the flower basket guide rail, and the flower basket guide rail is fixed to the support plate through the second supporting bracket.

[0014] In one embodiment of the present invention, the photovoltaic cell slicing device also includes: a driving device; the driving device includes: a rotating frame driving assembly, a slicing flower basket driving assembly, a fully loaded flower basket driving assembly and a slicing driving assembly, wherein the rotating frame driving assembly is used to drive the rotating frame assembly to rotate; the slicing flower basket driving assembly is used to drive the flower basket loading assembly to slide along the sliding connecting rod; the fully loaded flower basket driving assembly is used to drive the fully loaded flower basket to slide along the flower basket guide rail; the slicing driving assembly is used to respectively drive the sliding arm connector to slide along the slicing guide rail, drive the sliding arm to slide along the sliding arm connector, drive the telescopic rod to extend or shorten along the third direction, and drive the adsorption plate to adsorb the photovoltaic cell.

[0015] Compared with the prior art, the beneficial effects of the present invention are:

[0016] The photovoltaic cell slicing device of this utility model comprises several basket loading assemblies evenly arranged along the circumference to form a plurality of workstations. Each of the slicing baskets provided on the assemblies is empty and is used to receive the slicing photovoltaic cells. The basket loading assemblies are driven by a rotating frame assembly to switch between workstations. Simultaneously, the basket loading assemblies slide along a sliding link to adjust their position or facilitate loading and unloading. The slicing assemblies have multiple degrees of freedom of movement. They remove photovoltaic cells from fully loaded baskets and sequentially load them into the basket loading assemblies at each workstation, thus achieving automatic slicing.

[0017] The above description is only a summary of the technical scheme of the present application, in order to more clearly understand the technical means of the present application, the contents of the specification can be implemented, and in order to make the above and other purposes, characteristics and advantages of the present application more obvious and easy to understand, the following preferred embodiments are described in detail, and the accompanying drawings are described as follows. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 is a structural schematic diagram of a photovoltaic cell slicing device provided by an embodiment of the present application;

[0019] Figure 2 is a partial structural schematic diagram of a photovoltaic cell slicing device provided by an embodiment of the present application;

[0020] Figure 3 is a structural schematic diagram of a flower basket loading assembly provided by an embodiment of the present application;

[0021] Figure 4 is a structural schematic diagram of a slicing assembly provided by an embodiment of the present application.

[0022] Icon: 1-rotating frame assembly; 11-umbrella-shaped connecting rod; 12-fixed connecting rod; 13-rotating connecting rod; 14-rotating ring; 2-sliding connecting rod; 3-flower basket loading assembly; 31-flower basket bearing plate; 32-stop bar; 33-barrier; 34-telescopic barrier; 4-sliced flower basket; 5-full flower basket; 6-slicing assembly; 61-slicing guide rail; 62-sliding arm connector; 63-sliding arm; 64- telescopic rod; 65-suction plate; 7-flower basket guide rail; 8-supporting plate; 9-first bearing support; 10-second bearing support; 100-driving device; 200-display screen. DETAILED DESCRIPTION

[0023] In order to further illustrate the technical means and effects adopted by the present application to achieve the predetermined purpose, the following will be described in detail in combination with the drawings and specific embodiments, and a photovoltaic cell slicing device according to the present application will be described in detail.

[0024] The foregoing and other technical contents, characteristics and effects of the present application can be clearly presented in the following specific embodiment description with the accompanying drawings. Through the description of the specific embodiments, the technical means and effects adopted by the present application to achieve the predetermined purpose can be more deeply and specifically understood, however, the attached drawings are only provided for reference and description, and are not used to limit the technical scheme of the present application.

[0025] Embodiment one

[0026] As Figure 1The utility model provides a kind of photovoltaic cell piece slicing device, comprising: rotating frame component 1, sliding link 2, basket loading component 3, slicing basket 4, full basket 5 and slicing component 6;Wherein, two rotating frame component 1 are oppositely arranged along the first direction and rotate synchronously, several sliding links 2 are arranged between the two rotating frame component 1 along the first direction, at least one basket loading component 3 is provided on each sliding link 2, basket loading component 3 is slidably connected sliding link 2, and basket loading component 3 can slide along the first direction, slicing basket 4 is provided on each basket loading component 3. Full basket 5 is arranged between the two rotating frame component 1, and several photovoltaic cell pieces are sequentially loaded in full basket 5. Slicing component 6 is arranged between the two rotating frame component 1, can adjust the position of adsorption plate 65 along the first direction, the second direction and the third direction, and the photovoltaic cell piece is adsorbed from full basket 5 by adsorption plate 65 and is loaded into several slicing baskets 4 respectively. The first direction, the second direction and the third direction are perpendicular to each other in pairs.

[0027] In the embodiment, as shown in Figure 1 and Figure 2 Each rotating frame component 1 comprises: umbrella-shaped connecting rod 11, fixed connecting rod 12, rotating connecting rod 13 and rotating ring 14, wherein the first ends of the plurality of umbrella-shaped connecting rods 11 are connected to each other, the other ends extend circumferentially and are uniformly distributed, and the second ends of the plurality of umbrella-shaped connecting rods 11 are connected to the rotating ring 14; the number of the umbrella-shaped connecting rods 11, the fixed connecting rods 12 and the rotating connecting rods 13 is equal and one-to-one corresponding, the second end of the umbrella-shaped connecting rod 11 is rotatably connected to the first end of the rotating connecting rod 13, and the second end of the rotating connecting rod 13 is fixedly connected to the rotating connecting rod 13; the sliding link 2 is connected between the two oppositely arranged rotating connecting rods 13.

[0028] In an optional embodiment, the umbrella-shaped connecting rod 11 has at least four, and the included angle between the two adjacent umbrella-shaped connecting rods 11 is equal. For example, the number of the umbrella-shaped connecting rods 11 can be four, six or eight, and all extend circumferentially from one end.

[0029] In an optional embodiment, as shown in Figure 2 and Figure 3 Each basket loading component 3 comprises: basket bearing plate 31, blocking strip 32 and barrier strip 33; wherein the basket bearing plate 31 is slidably connected to the sliding link 2, the blocking strip 32 is arranged on the basket bearing plate 31, the blocking strip 32 is L-shaped, comprising: first connecting part and second connecting part, the first connecting part and the second connecting part are perpendicular to each other and are arranged along the first direction and the second direction respectively; the barrier strip 33 is arranged on the basket bearing plate 31 away from the blocking strip 32, and the slicing basket 4 is arranged between the blocking strip 32 and the barrier strip 33.

[0030] Further, each flower basket loading assembly 3 further comprises: a plurality of telescopic stoppers 34, which are arranged on the flower basket loading plate 31 at intervals and are arranged away from the first connecting part or the second connecting part respectively; and each telescopic stopper 34 is telescopic in the first direction or the second direction to approach or move away from the blocking strip 32.

[0031] The principle is that the split flower basket 4 is arranged on the flower basket loading plate 31 and is limited between the blocking strip 32 and the blocking strip 33, and is telescopic through the telescopic stopper 34 to realize compression and limiting, and the split flower basket 4 and the flower basket loading plate 31 form a detachable connection to facilitate quick replacement after the split flower basket 4 is inserted with photovoltaic cell pieces.

[0032] In an optional embodiment, as shown in Figure 1 and Figure 2 , the photovoltaic cell splitting device further comprises: a flower basket guide rail 7, which is arranged in the first direction and is located between the plurality of sliding connecting rods 2; and the full-load flower basket 5 is arranged on the flower basket guide rail 7 and is in sliding connection. Further, the full-load flower basket 5 can also be in sliding connection with the flower basket guide rail 7 through the flower basket loading assembly 3.

[0033] In an optional embodiment, a plurality of flower basket teeth (not shown in the figure) are arranged at intervals on the split flower basket 4 and the full-load flower basket 5, and the spacing between any two adjacent flower basket teeth is equal, and the photovoltaic cell pieces are loaded between the two adjacent flower basket teeth. In other words, a plurality of fixed regions are divided on the split flower basket 4 and the full-load flower basket 5 by arranging a plurality of flower basket teeth, and the size of each region is equal. Correspondingly, the photovoltaic cell pieces are loaded in the corresponding regions in sequence to facilitate the control of the movement process of the flower basket loading assembly 3 of the embodiment to realize automatic splitting.

[0034] In an optional embodiment, as shown in Figure 1 , Figure 2 and Figure 4 , the splitting assembly 6 comprises: a splitting guide rail 61, a sliding arm connector 62, a sliding arm 63, a telescopic rod 64 and an adsorption plate 65; the splitting guide rail 61 is arranged in the first direction, the sliding arm connector 62 is in sliding connection with the splitting guide rail 61, the sliding arm 63 is arranged in the second direction and is in sliding connection with the sliding arm connector 62; the telescopic rod 64 is arranged in the third direction and is elongated or shortened in the third direction; the first end of the telescopic rod 64 is in sliding connection with the sliding arm 63, and the second end is fixedly connected with the adsorption plate 65; and the adsorption plate 65 is used for adsorbing photovoltaic cell pieces from the full-load flower basket 5 and loading them into a plurality of split flower baskets 4 in sequence.

[0035] The principle is that: the segmented guide rail 61 is arranged along a first direction, the sliding arm 63 is arranged along a second direction, the sliding arm connector 62 is respectively connected with the segmented guide rail 61 and the sliding arm 63 in a sliding mode, and the sliding arm connector 62 is slidable along the segmented guide rail 61, the sliding arm 63 is slidable relative to the sliding arm connector 62; the telescopic rod 64 is extendable or retractable along a third direction, so that the adsorption plate 65 approaches or moves away from the full-load flower basket 5 or the segmented flower basket 4, thereby adsorbing the photovoltaic cell from the full-load flower basket 5 by the adsorption plate 65 and inserting the photovoltaic cell between the adjacent two flower basket teeth of the segmented flower basket 4.

[0036] In an optional embodiment, as shown in Figure 1 and Figure 2 The photovoltaic cell segmentation device further comprises: a support plate 8, a first bearing support 9 and a second bearing support 10, the two support plates 8 are oppositely arranged, each support plate 8 is correspondingly provided with a rotating frame assembly 1, and the rotating frame assembly 1 is rotationally connected with the support plate 8. The first bearing support 9 and the second bearing support 10, the first bearing support 9 is respectively connected with both ends of the segmented guide rail 61, and the segmented guide rail 61 is fixed to the support plate 8 through the first bearing support 9. The second bearing support 10 is respectively connected with both ends of the flower basket guide rail 7, and the flower basket guide rail 7 is fixed to the support plate 8 through the second bearing support 10.

[0037] For example, the segmented guide rail 61 is fixed to the support plate 8 through the first bearing support 9, and the flower basket guide rail 7 is fixed to the support plate 8 through the second bearing support 10, wherein the first bearing support 9 is located above the second bearing support 10, and neither of them rotates with the rotating frame assembly 1, and when the rotating frame assembly 1 rotates, the segmented guide rail 61 is located above at least most of the segmented flower baskets 4, so as to facilitate the adsorption of the photovoltaic cell from bottom to top and the insertion of the photovoltaic cell from top to bottom.

[0038] In an optional embodiment, as shown in Figures 1 to 4 The photovoltaic cell segmentation device further comprises: a driving device 100; the driving device 100 comprises: a rotating frame driving assembly, a segmented flower basket driving assembly, a full-load flower basket driving assembly and a segmentation driving assembly, wherein the rotating frame driving assembly is used to drive the rotating frame assembly 1 to rotate; the segmented flower basket driving assembly is used to drive the flower basket loading assembly 3 to slide along the sliding connecting rod 2; the full-load flower basket driving assembly is used to drive the full-load flower basket 5 to slide along the flower basket guide rail 7; the segmentation driving assembly is used to drive the sliding arm connector 62 to slide along the segmented guide rail 61, drive the sliding arm 63 to slide along the sliding arm connector 62, drive the telescopic rod 64 to extend or retract along the third direction, and drive the adsorption plate 65 to adsorb the photovoltaic cell.

[0039] For example, the telescopic rod 64 is an electric or pneumatic telescopic rod, and the adsorption plate 65 is a suction cup which adsorbs by vacuum.

[0040] In an optional embodiment, asFigure 1 A display screen 200 is arranged on one of the support plates 8, and is connected to the driving device 100 to control the operation of the driving device 100 and display the working state of the driving device 100.

[0041] The working process of the photovoltaic cell slicing device in the embodiment is described as follows:

[0042] Firstly, the photovoltaic cells are inserted into the full-load flower basket 5 to ensure that the photovoltaic cells are arranged in sequence between the flower basket teeth; the full-load flower basket 5 is fixed on the flower basket loading assembly 3, and is moved to the middle position of the flower basket guide rail 7 under the driving of the full-load flower basket driving assembly. Similarly, a plurality of slicing flower baskets 4 are placed on the flower basket loading assembly 3, are fixed in the first direction and the second direction by the telescopic barrier 34 respectively, and the plurality of flower basket loading assemblies 3 are sequentially moved to the middle position of the sliding connecting rod 2 under the driving of the slicing flower basket driving assembly.

[0043] Secondly, the sliding arm connector 62 is driven to slide along the slicing guide rail 61, the sliding arm 63 is driven to slide along the sliding arm connector 62, and the telescopic rod 64 is driven to extend or shorten in the third direction to adjust the position of the adsorption plate 65. After the adsorption plate 65 is moved to the position directly above the full-load flower basket 5, the adsorption plate 65 is slowly lowered to adsorb the photovoltaic cells on one side of the full-load flower basket 5. After the adsorption is stable, the adsorption plate 65 is slowly raised to take out the photovoltaic cells, and the positions of the sliding arm connector 62 and the sliding arm 63 are adjusted to move the adsorption plate 65 to the position directly above any one of the slicing flower baskets 4, and the adsorption plate 65 is slowly lowered to insert the adsorbed photovoltaic cells between the first pair of flower basket teeth on one side of the slicing flower basket 4. After the slicing of the first photovoltaic cell is completed, the positions of the other slicing flower baskets 4 are adjusted to enable each slicing flower basket 4 to reach the same working point by only rotating.

[0044] Finally, after adjusting to the same working point of each slice basket 4, automatic slicing can be realized. Taking the example of taking slices from the first side of the full basket 5 and inserting slices from the same side of the slice basket 4, after completing a slice from the full basket 5, the full basket 5 advances a distance in the second direction, and the length of the distance is equal to the distance between any two adjacent basket teeth, that is, automatic feeding is realized by advancing the full basket 5. Similarly, after the slice basket 4 completes a slice, the rotating frame assembly 1 rotates to move the adjacent slice basket 4 to the working point, and the next slice is completed by the slicing assembly 6. Cycle to complete the slice on each slice basket 4 at the same position of the basket teeth, then advance the slice basket 4 a distance in the second direction before the next slice, and the length of the distance is equal to the distance between any two adjacent basket teeth. Continue to repeat the slicing until all the photovoltaic cell slices in the full basket 5 are sliced or all the slice baskets 4 are filled with photovoltaic cell slices. Move the full basket 5 and the plurality of slice baskets 4 to one end of the sliding link 2, remove the full basket 5 and the plurality of slice baskets 4, and then load the full basket 5 and the empty slice basket 4. Repeat the above working process until the slicing work is completed.

[0045] The photovoltaic cell slicing device of the utility model, evenly set several basket loading assemblies to form several stations along the circumferential direction, the slice basket set on the several basket loading assemblies is all empty basket, used for receiving the sliced photovoltaic cell; the basket loading assembly is driven to rotate by the rotating frame assembly to realize station switching, and the basket loading assembly also slides along the sliding link to adjust the position or realize loading and unloading. The slicing assembly has multiple directional degrees of freedom, and the slicing assembly adsorbs the photovoltaic cell from the full basket and loads it in the basket loading assembly of each station in turn, so that automatic slicing is realized.

[0046] It should be noted that the relational terms herein, such as first and second, and the like, are used solely to distinguish one from another entity or action without necessarily requiring or implying any actual relationship or order between such entities or actions. Moreover, the terms "comprises", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a vesicle or apparatus that comprises a list of elements does not include only those elements but can also include other elements not expressly listed or inherent to such vesicle or apparatus. An element proceeded by "comprises a... " does not, without more constraints, preclude the existence of additional identical elements in the vesicle or apparatus that includes the recited element. The terms "connected" and "coupled" and the like, as used herein, are not limited to physical or mechanical connections or couplings, but can include electrical coupling or connections, whether direct or indirect. The terms "upper", "lower", "left", "right", and the like, as used herein, are intended to be relative terms based on the orientation of the figures as shown and are not intended to be limiting or to imply specific orientations of the components or elements described herein, and thus should not be construed to limit the present application.

[0047] The above description is further to the present application in conjunction with the specific preferred embodiments, and cannot be deemed as limiting the specific implementation of the present application to these descriptions. For those skilled in the art to which the present application belongs, without departing from the concept of the present application, a number of simple deductions or substitutions can be made, which should be deemed as falling within the protection scope of the present application.

Claims

1. A photovoltaic cell slicing device, characterized in that: The utility model relates to a kind of photovoltaic cell loading device, including: Rotary frame assembly (1), sliding link (2), basket loading assembly (3), piece basket (4), full basket (5) and piece assembly (6); Two rotary frame assemblies (1) are oppositely arranged along the first direction and rotate synchronously;Each rotary frame assembly (1) includes umbrella link (11), fixed link (12), rotating link (13) and rotating ring (14), the first end of several umbrella links (11) is connected to each other, the other end extends along the circumference and is evenly distributed respectively, the second end of several umbrella links (11) is connected to rotating ring (14);The number of umbrella link (11), fixed link (12) and rotating link (13) is equal and one-to-one correspondence, the second end of umbrella link (11) is rotatably connected to the first end of rotating link (13), the second end of rotating link (13) is fixedly connected to rotating link (13);Sliding link (2) is connected between two oppositely arranged rotating links (13); At least one basket loading assembly (3) is provided on each sliding link (2), and the basket loading assembly (3) is slidably connected to the sliding link (2). Each basket loading assembly (3) is provided with a piece basket (4). Full basket (5) is arranged between two rotary frame assemblies (1), and several photovoltaic cell pieces are loaded in full basket (5) in sequence. The piece assembly (6) is arranged between two rotary frame assemblies (1) and includes piece guide rail (61), sliding arm connector (62), sliding arm (63), telescopic rod (64) and adsorption plate (65). The piece guide rail (61) is arranged along the first direction. The sliding arm connector (62) is slidably connected to the piece guide rail (61). The sliding arm (63) is arranged along the second direction and is slidably connected to the sliding arm connector (62). The telescopic rod (64) is arranged along the third direction and is elongated or shortened along the third direction. The first end of the telescopic rod (64) is slidably connected to the sliding arm (63), and the second end is fixedly connected to the adsorption plate (65). The adsorption plate (65) is used to adsorb the photovoltaic cell pieces from the full basket (5) and load them into several piece baskets (4) respectively. Wherein, the first direction, the second direction and the third direction are perpendicular to each other.

2. The photovoltaic cell dicing apparatus of claim 1, wherein, The umbrella link (11) has at least four roots, and the included angle between two adjacent umbrella links (11) is equal.

3. The photovoltaic cell dicing apparatus of claim 1, wherein, Each basket loading assembly (3) includes basket bearing plate (31), baffle (32) and barrier (33), wherein, The basket bearing plate (31) is slidably connected to the sliding link (2). The baffle (32) is arranged on the basket bearing plate (31). The baffle (32) is L-shaped, including first connecting part and second connecting part, which are perpendicular to each other and arranged along the first direction and the second direction respectively. The blocking strip (33) is arranged on the basket carrier plate (31) away from the blocking strip (32), and the fragment basket (4) is arranged between the blocking strip (32) and the blocking strip (33).

4. The photovoltaic cell dicing apparatus of claim 3, wherein, Each of the basket loading assemblies (3) further comprises: a telescopic blocking device (34), a plurality of telescopic blocking devices (34) are arranged on the basket carrier plate (31) and are arranged away from the first connecting part or the second connecting part, respectively. One end of each of the telescopic blocking devices (34) is telescopic in the first direction or the second direction to approach or move away from the blocking strip (32).

5. The photovoltaic cell dicing apparatus of claim 1, wherein, A plurality of basket teeth are arranged on the fragment basket (4) and the full-load basket (5) at intervals, and the distance between any two adjacent basket teeth is equal, and the photovoltaic cell is loaded between the two adjacent basket teeth.

6. The photovoltaic cell dicing apparatus of claim 3, wherein, Further comprising: A basket guide rail (7) is arranged in the first direction between a plurality of the sliding connecting rods (2); the full-load basket (5) is arranged on the basket guide rail (7) and is slidingly connected.

7. The photovoltaic cell dicing apparatus of claim 6, wherein, Further comprising: A support plate (8) is arranged oppositely, and each of the support plates (8) is correspondingly provided with the rotating frame assembly (1), and the rotating frame assembly (1) is rotationally connected to the support plate (8).

8. The photovoltaic cell dicing apparatus of claim 7, wherein, Further comprising: A first bearing support (9) is connected to both ends of the fragment guide rail (61), and the fragment guide rail (61) is fixed to the support plate (8) through the first bearing support (9).

9. The photovoltaic cell dicing apparatus of claim 7, wherein, Further comprising: A second bearing support (10) is connected to both ends of the basket guide rail (7), and the basket guide rail (7) is fixed to the support plate (8) through the second bearing support (10).

10. The photovoltaic cell dicing apparatus of claim 6, wherein, Further comprising: A driving device (100); The driving device (100) comprises a rotating frame driving assembly, a fragment basket driving assembly, a full-load basket driving assembly, and a fragment driving assembly, wherein the rotating frame driving assembly is used to drive the rotating frame assembly (1) to rotate; the fragment basket driving assembly is used to drive the basket loading assembly (3) to slide along the sliding connecting rod (2); the full-load basket driving assembly is used to drive the full-load basket (5) to slide along the basket guide rail (7); The fragment driving assembly is used to drive the sliding arm connector (62) to slide along the fragment guide rail (61), drive the sliding arm (63) to slide along the sliding arm connector (62), drive the telescopic rod (64) to lengthen or shorten in the third direction, and drive the adsorption plate (65) to adsorb the photovoltaic cell.