FLEXIBLE AND ROLLABLE BACK-CONTACT SOLAR CELL MODULE AND PREPARATION METHOD THEREOF
20220416101 ยท 2022-12-29
Assignee
Inventors
Cpc classification
H01L31/0481
ELECTRICITY
H01L31/022441
ELECTRICITY
Y02E10/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01L31/022458
ELECTRICITY
H01L31/0516
ELECTRICITY
H01L31/1876
ELECTRICITY
International classification
H01L31/05
ELECTRICITY
Abstract
A flexible and rollable back-contact solar cell module, wherein a length of it can be extended infinitely and the back-contact solar cell module includes a plurality of large cell blocks connected in series or in parallel. The large cell block includes a plurality of small cell strings connected in series or in parallel. The small cell string includes a plurality of small square cell pieces connected in series or in parallel. The series-connection or the parallel-connection between the large cell blocks, the small cell strings, or the small square cell pieces is achieved by welding a flexible interconnected bar in the horizontal or vertical direction. Electrodes of the small square cell pieces are all on a back side and the small square cell pieces are formed by cutting a back-contact solar cell. A protective layer is attached to a surface of a light-receiving side by using an adhesive layer.
Claims
1. A flexible and rollable back-contact solar cell module, wherein a length of the flexible and rollable back-contact solar cell module is allowed to be extended and the flexible and rollable back-contact solar cell module comprises a plurality of large cell blocks connected in series or in parallel; each of the plurality of large cell blocks comprises a plurality of small cell strings connected in series or in parallel; each of the plurality of small cell strings comprises a plurality of small square cell pieces connected in series or in parallel; a series-connection or a parallel-connection between the plurality of large cell blocks, the plurality of small cell strings, or the plurality of small square cell pieces is achieved by welding a flexible interconnected bar in a horizontal direction or a vertical direction; electrodes of the plurality of small square cell pieces are all on a back side and the plurality of small square cell pieces are formed by cutting a back-contact solar cell; a protective layer is attached to a surface of a light-receiving side by using an adhesive layer; a method for preparing the flexible and rollable back-contact solar cell module comprises: pre-cutting the back-contact solar cell and the protective layer to form a plurality of incompletely-disconnected small square cell pieces and a plurality of small square protective layers; attaching light-receiving sides of the plurality of incompletely-disconnected small square cell pieces and the plurality of small square protective layers to each other by the adhesive layer; performing a fragmenting to form the plurality of small square cell pieces with a light-receiving side attached to the plurality of small square protective layers; arranging the plurality of small square cell pieces by a chip automatic fragmenting and arrangement device, and affixing a high-temperature resistant tape to a middle of a back side of the plurality of small square cell pieces to fix a position of the plurality of small square cell pieces, and then welding the plurality of small square cell pieces in series or in parallel by the flexible interconnected bar to form the plurality of small cell strings; arranging the plurality of small cell strings, and then welding the plurality of small cell strings in series or in parallel by the flexible interconnected bar to form the plurality of large cell blocks; and welding the plurality of large cell blocks in series or in parallel by the flexible interconnected bar to form the flexible and rollable back-contact solar cell module according to design requirements.
2. The flexible and rollable back-contact solar cell module according to claim 1, wherein the flexible and rollable back-contact solar cell module is allowed to be further be cut off at an appropriate position according to design requirements to re-form the plurality of large cell blocks, and the plurality of large cell blocks are re-connected in series or in parallel by the flexible interconnected bar to form the flexible and rollable back-contact solar cell module satisfying new design requirements.
3. The flexible and rollable back-contact solar cell module according to claim 1, wherein the flexible interconnected bar in the horizontal direction is configured to connect positive and negative electrodes of the plurality of large cell blocks when the flexible and rollable back-contact solar cell module is formed by the plurality of large cell blocks connected in series.
4. The flexible and rollable back-contact solar cell module according to claim 1, wherein the flexible interconnected bar in the vertical direction is configured to connect positive electrodes of the plurality of large cell blocks and connect negative electrodes of the plurality of large cell blocks when the flexible and rollable back-contact solar cell module is formed by the plurality of large cell blocks connected in parallel.
5. The flexible and rollable back-contact solar cell module according to claim 1, wherein each of the plurality of small square cell pieces has a length of 1-100 mm and a width of 1-100 mm, and the plurality of small square cell pieces maintain a certain interval between each other.
6. The flexible and rollable back-contact solar cell module according to claim 1, wherein the flexible interconnected bar is a flexible copper clad laminate (FCCL) soft welding strip with a width of 0.1-20 mm, a flexible printed circuit board (FPCB), or a flexible tinned-copper strip; a gap between the plurality of small cell strings connected by the flexible interconnected bar is 0.1-5 mm, and each of the plurality of small cell strings comprises more than two small square cells.
7. The flexible and rollable back-contact solar cell module according to claim 1, wherein the protective layer is a hard material layer, and the hard material layer has a thickness of 0.2-2 mm and the hard material layer is made of glass, polycarbonate (PC), polymethyl methacrylate (PMMA), polypropylene (PP), polyethylene terephthalate (PET), or transparent fluorine material layer.
8. The flexible and rollable back-contact solar cell module according to claim 1, wherein the adhesive layer attached between the plurality of small square cell pieces and the protective layer is made of silica gel, ethylene vinyl acetate (EVA) glue, polyolefin elastomer (POE) glue, or double-sided glue, and the protective layer is cured by an ultraviolet (UV) light or a high temperature.
9. The flexible and rollable back-contact solar cell module according to claim 1, wherein the back-contact solar cell is an interdigitated back-contact (IBC) solar cell or an interdigitated heterojunction back-contact (HBC) solar cell.
10. The flexible and rollable back-contact solar cell module according to claim 2, wherein the flexible interconnected bar in the horizontal direction is configured to connect positive and negative electrodes of the plurality of large cell blocks when the flexible and rollable back-contact solar cell module is formed by the plurality of large cell blocks connected in series.
11. The flexible and rollable back-contact solar cell module according to claim 2, wherein the flexible interconnected bar in the vertical direction is configured to connect positive electrodes of the plurality of large cell blocks and connect negative electrodes of the plurality of large cell blocks when the flexible and rollable back-contact solar cell module is formed by the plurality of large cell blocks connected in parallel.
12. The flexible and rollable back-contact solar cell module according to claim 2, wherein each of the plurality of small square cell pieces has a length of 1-100 mm and a width of 1-100 mm, and the plurality of small square cell pieces maintain a certain interval between each other.
13. The flexible and rollable back-contact solar cell module according to claim 2, wherein the flexible interconnected bar is a flexible copper clad laminate (FCCL) soft welding strip with a width of 0.1-20 mm, a flexible printed circuit board (FPCB), or a flexible tinned-copper strip; a gap between the plurality of small cell strings connected by the flexible interconnected bar is 0.1-5 mm, and each of the plurality of small cell strings comprises more than two small square cells.
14. The flexible and rollable back-contact solar cell module according to claim 2, wherein the protective layer is a hard material layer, and the hard material layer has a thickness of 0.2-2 mm and the hard material layer is made of glass, polycarbonate (PC), polymethyl methacrylate (PMMA), polypropylene (PP), polyethylene terephthalate (PET), or transparent fluorine material layer.
15. The flexible and rollable back-contact solar cell module according to claim 2, wherein the adhesive layer attached between the plurality of small square cell pieces and the protective layer is made of silica gel, ethylene vinyl acetate (EVA) glue, polyolefin elastomer (POE) glue, or double-sided glue, and the protective layer is cured by an ultraviolet (UV) light or a high temperature.
16. The flexible and rollable back-contact solar cell module according to claim 2, wherein the back-contact solar cell is an interdigitated back-contact (IBC) solar cell or an interdigitated heterojunction back-contact (HBC) solar cell.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The drawings, as a part of the present application, are used to provide a further understanding of the present invention, and the schematic embodiments of the present invention and the descriptions thereof are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0035] In order to make the objectives, technical solutions, and advantages of the present invention clearer, the present invention is further described in detail below in conjunction with the drawings and embodiments. It should be understood that the specific embodiments described herein are used only to explain the present invention and are not used to limit the present invention.
[0036] As shown in
[0037] The preparation process of the back-contact solar cell module is as follows:
[0038] First of all, the back-contact solar cell 1 and the protective layer 4 are pre-cut to form a plurality of small square cell pieces 2 and small square protective layers 4 that are incompletely disconnected. As shown in
[0039] Secondly, the light-receiving side of the back-contact solar cell 1 and the protective layer 4 are attached to each other by the adhesive layer 3. Specifically, the adhesive layer 3 is an optical silica gel cured at high temperature. The protective layer 4 is hard-material transparent glass with a thickness of 0.4 mm.
[0040] Subsequently, the back-contact solar cell 1 after being attached is fragmented to form a plurality of small square cell pieces 2 with the light-receiving side attached to the protective layer.
[0041] As shown in
[0042] As shown in
[0043] As shown in
[0044] As shown in
[0045] The back-contact solar cell module provided by the present invention can be extended infinitely, and the large cell blocks for forming the back-contact solar cell module can be freely combined in series, parallel, or series-parallel connection by simultaneously using the flexible interconnected bar in both horizontal and vertical directions according to the practical application requirements. Moreover, the back-contact solar cell and the protective layer are pre-cut and then attached to each other by the adhesive layer before fragmented, which makes the design of the solar cell module more flexible and the processing more convenient. Furthermore, the electrodes of the back-contact solar cell module are all on the back side, which not only facilitates the welding of the flexible interconnected bar, but also does not block the light-receiving side, so as to effectively improve the light utilization rate. Additionally, since the back-contact solar cell module provided by the present invention can be extended infinitely, the back-contact solar cell module provided by the present invention can further realize the design of the solar cell module with different current and voltage requirements on any width size.
[0046] The above only describes preferred embodiments of the present invention, which are not used to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present invention shall fall within the scope of protection of the present invention.