CN210926044U - Photovoltaic module - Google Patents

Photovoltaic module Download PDF

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Publication number
CN210926044U
CN210926044U CN201922490777.1U CN201922490777U CN210926044U CN 210926044 U CN210926044 U CN 210926044U CN 201922490777 U CN201922490777 U CN 201922490777U CN 210926044 U CN210926044 U CN 210926044U
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CN
China
Prior art keywords
battery
photovoltaic module
battery pack
bypass
parallel
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CN201922490777.1U
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Chinese (zh)
Inventor
潘秀娟
董经兵
许涛
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Canadian Solar Inc
CSI Cells Co Ltd
Canadian Solar Manufacturing Changshu Inc
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CSI Cells Co Ltd
CSI Solar Power Group Co Ltd
Canadian Solar Manufacturing Changshu Inc
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Priority to CN201922490777.1U priority Critical patent/CN210926044U/en
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    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy

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Abstract

The utility model discloses a photovoltaic module, include: the battery pack comprises 2N +1 battery packs connected in series, each battery pack comprises two battery strings connected in parallel, and each battery string comprises a plurality of battery pieces which are connected in series and equal in number; all the battery strings are arranged in parallel with the short edge of the assembly, the battery piece is one third of battery pieces formed by cutting the whole battery piece, and N is a positive integer. The circuit connection mode of the component can avoid damage caused by overhigh current of the component.

Description

Photovoltaic module
Technical Field
The utility model belongs to the technical field of the photovoltaic power generation technique and specifically relates to a photovoltaic module is related to.
Background
With the development of photovoltaic cell module technology, the market demand for high power modules is continuously increasing, and besides the use of new technology of cells, the size of the cells is increased, which gradually becomes a shortcut for rapidly increasing the power and efficiency of the modules.
In the related art, the maximum size of the battery piece has been changed from 157mm to 210mm, but the challenges of the large-size battery piece to the module end have gradually increased, for example, the module current has increased to 1.8 times of the existing battery, which is different from the existing module, and is easy to cause impact on the existing system, and as the battery piece becomes larger, if the number of battery pieces or strings of the original conventional module is still maintained, the module width is too wide, for example, according to the existing half-piece symmetric structure, the width of 6 strings of battery modules has exceeded 1.3m, but the module width is far beyond the process capability of the glass manufacturers and other original material manufacturers on the market.
Disclosure of Invention
The utility model discloses aim at solving one of the technical problem that exists among the prior art at least. Therefore, the utility model aims to provide a photovoltaic module, the circuit connection mode of this subassembly can avoid the subassembly electric current too high and damage.
In order to solve the above problem, an embodiment of the utility model provides a photovoltaic module, include: the battery pack comprises 2N +1 battery packs connected in series, each battery pack comprises two battery strings connected in parallel, and each battery string comprises a plurality of battery pieces which are connected in series and equal in number; all the battery strings are arranged in parallel with the short edge direction of the assembly, the battery piece is one third of battery pieces formed by cutting the whole battery piece, and N is a positive integer.
According to the utility model provides a photovoltaic module adopts the third piece battery piece that is formed by whole battery piece cutting, can reduce the subassembly internal resistance, reduces the inside loss of subassembly to and constitute the group battery through connecting two adjacent batteries in series-parallel, through parallel connection's method promptly, can make the electric current that the section battery piece connection caused reduce and obtain resumeing, but subassembly output current still is less than the subassembly electric current that adopts whole piece battery piece to connect, consequently along with the increase of battery piece size, the utility model discloses not only can improve the output of subassembly, can avoid the electric current too high again to cause the impact to the subassembly.
In some embodiments, the number of battery packs is five, and the number of battery slices in each battery string is fifteen one-third battery slices. Aiming at the large-size battery piece, the width of the component can be reduced under the condition of ensuring the output power of the component, and the difficulty of the front plate manufacturing process of the component is reduced.
In some embodiments, the 1 st battery pack to the 2 nth battery pack are connected with a first bypass diode in parallel in a reverse direction between every two adjacent battery packs, and the 2N +1 th battery pack and the 2 nth battery pack are connected with a second bypass diode in parallel in a reverse direction between them, so that the arrangement of diodes is facilitated, the number of bypass diodes used is reduced, and the cost is reduced.
In some embodiments, N of the first bypass diodes are disposed at a first end of the panel, and the second bypass diode is disposed at a second end of the panel, the first end of the panel being opposite the second end.
In some embodiments, the second bypass diode is arranged in one junction box, and the N first bypass diodes are arranged in at least one junction box, so that the number of the junction boxes can be reduced, and the cost can be reduced.
In some embodiments, N of said first bypass diodes are disposed at a first end of said panel; 2N +1 it has the lead wire busbar to draw forth the negative pole end of group battery, the second bypass diode passes through the lead wire busbar sets up the first end of panel to avoid the terminal box at two sides, especially to two-sided two glass class subassembly, do benefit to and improve two-sided rate and reliability.
In some embodiments, the N first bypass diodes and the N second bypass diodes are disposed in at least one junction box, so that the number of the junction boxes used can be reduced, and the cost can be reduced.
In some embodiments, the size of the entire cell sheet is 210 mm.
In some embodiments, the battery strings in five of the battery packs are arranged in parallel with a pack short side direction to form the battery panel; and a first bypass diode is connected between the first battery pack and the second battery pack in parallel, a first bypass diode is connected between the third battery pack and the fourth battery pack in parallel, and a second bypass diode is connected between the fourth battery pack and the fifth battery pack in parallel.
In some embodiments, two of the first bypass diodes and the second bypass diode are respectively disposed in one junction box.
In some embodiments, two of the first bypass diodes are disposed in one junction box and the second bypass diode is disposed in one junction box.
In some embodiments, two of the first bypass diodes are disposed at a first end of the panel, and the second bypass diode is disposed at the first end of the panel through a lead bus bar; two of the first bypass diodes and the second bypass diode are disposed in at least one junction box.
In some embodiments, at least one bypass diode is connected to the common junction box by edge bus bars, the edge bus bars having overlapping regions, and an insulating bar is disposed between the edge bus bars of the overlapping regions, the insulating bar covering at least the overlapping regions to avoid short circuit, current leakage, and the like.
Additional aspects and advantages of the invention will be set forth in part in the description which follows and, in part, will be obvious from the description, or may be learned by practice of the invention.
Drawings
The above and/or additional aspects and advantages of the present invention will become apparent and readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
fig. 1 is a schematic view of a photovoltaic module according to an embodiment of the present invention;
fig. 2 is a schematic diagram of a panel of a junction box arrangement in a photovoltaic module according to an embodiment of the present invention;
fig. 3 is a schematic diagram of a panel provided with a junction box in a photovoltaic module according to another embodiment of the present invention.
Reference numerals:
a battery panel 10; a battery pack 1; a battery string 2; a battery piece 3; a first bypass diode 4; a second bypass diode 5; a junction box 6; and a lead bus bar 7.
Detailed Description
Embodiments of the present invention are described in detail below, and the embodiments described with reference to the drawings are exemplary.
In order to solve the above problem, the following describes a photovoltaic module according to an embodiment of the present invention with reference to the drawings, and the circuit connection manner of the module can avoid damage caused by too high current of the module.
Fig. 1 is the schematic diagram of the photovoltaic module provided by the embodiment of the utility model, as shown in fig. 1, the photovoltaic module includes panel 10, panel 10 includes series connection's 2N +1 group battery 1, every group battery 1 includes two parallel connection's battery cluster 2, every battery cluster 2 includes a plurality of series connection and the battery piece 3 that quantity equals, wherein, battery cluster 2 and photovoltaic module minor face direction parallel arrangement, battery piece 3 is the third a slice battery piece that whole battery piece cutting formed, N is the positive integer.
Wherein, the photovoltaic module of the embodiment of the present invention adopts one third of the battery pieces, compared with the whole battery pieces, the internal loss of the photovoltaic module can be reduced, and two battery strings 2 are connected in parallel, so as to avoid the voltage reduction caused by adopting one third of the battery pieces, so as to ensure the output power of the photovoltaic module, that is, when the size of the battery pieces is increased, the purpose of increasing the power of the module can still be achieved, further, the output current of each battery string 2 is reduced by adopting one third of the battery pieces, and then the current reduction caused by the connection of one third of the battery pieces is recovered by the parallel connection of the battery strings 2, but the output current of the module is still lower than the module current connected by adopting the whole battery pieces, so that when the size of the battery pieces is increased and the power of the module is increased, the embodiment of the present invention can not greatly increase the current of the photovoltaic module, and the power loss of the component is reduced, so that the impact on the photovoltaic component caused by overhigh current is avoided.
In the embodiment, with respect to the laying direction of the battery string 2, in the circuit module of the symmetrical structure, the battery string is laid in such a manner as to be placed parallel to the long side of the module, in the photovoltaic module according to the embodiment of the present invention, as shown in fig. 1, all the cell strings 2 are disposed parallel to the short side of the module, the long side of one-third cell sheet 3 is parallel to the long side of the module, namely, the battery plates are arranged in a horizontal row mode, so that the battery plates 10 do not need to be arranged according to two parts which are symmetrical up and down, the circuit connection is simpler, if the number of the battery pieces or the number of the battery strings of the original conventional assembly is still kept, the utility model can reduce the width of the assembly on the premise of ensuring the competitive power of the photovoltaic assembly, thereby solving the problem that the raw materials such as glass and the like can not be supplied, because all battery strings 2 are arranged in parallel along the same direction, complex jumper laying can be reduced, and the component manufacturing process is facilitated to be simplified.
It should be noted that the utility model provides a quantity of group battery 1 among photovoltaic module can adjust according to battery piece 3 quantity or subassembly width, and is specifically contingent, does not do the restriction to this.
According to the photovoltaic module provided by the embodiment of the utility model, through the circuit processing mode of cutting three and two, namely, adopting the one third cell piece 3 formed by cutting the whole cell piece to reduce the internal resistance of the module and reduce the internal loss of the module, compared with the whole cell piece module circuit, the output current of each cell string 2 is reduced, then through the parallel connection of two cell strings 2, the current reduction caused by the connection of the one third cell piece can be recovered, but the output current of the module is still lower than the module current adopting the connection of the whole cell piece, thereby increasing the size of the cell piece to improve the power of the module, not only reducing the increase range of the module current, but also avoiding the impact of the overhigh current on the module, simultaneously, through arranging all the cell strings in parallel along the short side of the module, namely adopting the arrangement mode of horizontal row, compared with the arrangement of two parts of up-and down symmetry, the circuit connection is simpler, the manufacturing process of the assembly is simplified, the width of the assembly can be reduced on the premise of ensuring the competitiveness of the power of the photovoltaic assembly, and the problem that raw materials such as glass cannot be supplied is solved.
Further, a bypass diode 4 is arranged in the battery plate 10 and used for realizing a bypass function when the battery string 2 is shielded by a shadow, so that the components are prevented from being damaged due to overheating. Specifically, the 1 st group battery 1 to the 2N group battery 1, a first bypass diode 4 that connects in reverse parallel between two adjacent group batteries 1 to and, a second bypass diode 5 that connects in reverse parallel between the 2N +1 group battery 1 and the 2N group battery 1, lay with same direction based on with battery cluster 2, are favorable to the setting of bypass diode, can reduce the quantity that uses bypass diode, reduce cost.
For example, as shown in fig. 1, where N ═ 2, i.e. the photovoltaic module includes five battery packs 1, specifically, when the whole photovoltaic module includes 50pcs whole piece, the whole piece with a side length of 210mm is divided into three by laser scribing, each battery string 2 includes one third of the battery pieces 3 connected in series by 15pcs, which makes up 10 battery strings 2, and the battery strings 2 are laid parallel to the short side of the photovoltaic module, i.e. in a horizontal arrangement, and two adjacent battery strings 2 are in a parallel state, thereby making up five parallel structures, i.e. five battery packs 1, and then five battery packs 1 are connected in series, where, in the first battery pack 1 to the fourth battery pack 1, a first bypass diode 4 is connected in reverse parallel between two adjacent battery packs 1, and a second bypass diode 5 is connected in reverse parallel between the fifth battery pack 1 and the fourth battery pack 1, thereby forming the circuit board 10 for a 50pcs210mm size large silicon wafer photovoltaic module.
In the embodiment, as the conventional diode is limited by the reverse voltage withstanding capability of the conventional diode, the number of the battery pieces which can be protected at most is not more than 24, and the number of the battery pieces 3 in each battery string 2 needs to be matched according to the bypass diode, so that the situation that the voltage of the battery pieces 3 in each battery string 2 is too high and the bypass diode is in breakdown risk is avoided, for example, the number of the battery pieces 3 in each battery string 2 is fifteen-one third of the battery pieces, so that when two adjacent battery strings 2 are connected in parallel, the number of the battery pieces 3 protected by a single bypass diode is not more than 24pcs, and the problem of reverse breakdown of the bypass diode is avoided.
In an embodiment, the bypass diode is arranged within the junction box 6.
Specifically, as shown in fig. 2, N first bypass diodes 4 are disposed at a first end of the battery panel 10, and a second bypass diode 5 is disposed at a second end of the battery panel 10, where the first end of the battery panel 10 is opposite to the second end, at this time, the second bypass diode 5 may be disposed in one junction box 6, and the N first bypass diodes 4 are disposed in at least one junction box 6, that is, when bypass diodes are disposed at both sides of the battery panel 10, the second bypass diode 5 at the second end of the battery panel 10 needs to be disposed in one single junction box 6, and a plurality of first bypass diodes 4 at the first end of the battery panel 10 may be disposed in the junction box 6, so as to reduce the number of the junction boxes 6 and reduce the cost.
Alternatively, as shown in figure 3, N first bypass diodes 4 are provided at a first end of the panel 10; lead wire bus bar 7 is led out from the negative end of the 2N +1 th battery pack 1, and second bypass diode 5 is arranged at the first end of battery board 10 through lead wire bus bar 7, that is, second bypass diode 5 at the second end of battery board 10 can be moved to the first end of battery board 10 in the form of negative jumper wire, thereby making N first bypass diodes 4 and second bypass diodes 5 all located at the same side of battery board 10, which is beneficial to reducing the occupation space of photovoltaic module, at the moment, N first bypass diodes 4 and second bypass diodes 5 are arranged in at least one junction box 6, the number of used junction boxes 6 can be reduced, and the cost is reduced.
Further, in the module circuit, since there may be a partial overlapping region between the jumper wire and the battery cell, when the lead bus bar 7 is provided, an insulating layer is provided at least in the overlapping region to avoid a short circuit, a leakage current, or the like. It can be understood that, for convenience of preparation, the insulating layer may also be disposed in the surrounding area at the same time, or other ways capable of achieving insulation between the jumper and the cell, which is not specifically limited in this embodiment as long as the normal operation of the photovoltaic module is not affected. The insulating layer can be a reflective film, so that the insulating effect can be achieved, light reflection can be performed, and the performance of a photovoltaic module device can be improved. On the premise of achieving the insulating effect, the thickness of the insulating layer is reduced as much as possible so as to avoid lamination and cracking.
Wherein, to two-sided dual glass class subassembly, if the subassembly back produces shelters from and can lead to subassembly back power to descend, can bring reliability hidden danger such as hot spot because shelter from even, if terminal box 6 is in the long limit both sides of subassembly, then shelters from the 3 backs of battery piece for avoiding terminal box 6, then need reserve enough space and give terminal box 6 to lead to the subassembly width widen, the change reduces subassembly efficiency mutually. Consequently, all set up the bypass diode in the circuit connection mode of panel 10 first side more be applicable to two-sided dual glass assembly, can avoid the problem that subassembly efficiency reduces, be favorable to improving two-sided rate and reliability.
The following provides a further detailed description of the arrangement of the junction box 6 in the photovoltaic module according to the present invention with reference to the drawings.
In the embodiment, the size of whole battery piece is 210mm, the utility model discloses a mode of laser scribing is three with 210 mm's of length of a side whole battery piece one minute, adopt one-third battery piece promptly, as shown in fig. 1, wherein, the quantity of group battery 1 is five, adjacent group battery 1 series connection to and two liang of adjacent battery cluster 2 parallel connection, 14 cluster battery clusters 2 altogether adopt 15pcs one-third battery piece 3 on every battery cluster 2, wherein, battery cluster 2 and subassembly minor face parallel arrangement in five group batteries 1 to form panel 10.
In the embodiment, as shown in fig. 1, a first bypass diode 4 is connected in parallel between a first battery pack 1 and a second battery pack 1, a first bypass diode 4 is connected in parallel between a third battery pack 1 and a fourth battery pack 1, and a second bypass diode 5 is connected in parallel between a fourth battery pack 1 and a fifth battery pack 1, so that two first bypass diodes 4 and one second bypass diode 5 are arranged in the whole photovoltaic module.
Further, when the junction boxes 6 are disposed, two first bypass diodes 4 and two second bypass diodes 5 may be disposed in one junction box 6, as shown in fig. 2, the corresponding junction boxes 6 are disposed as three single junction boxes, two junction boxes 6 disposed separately corresponding to the two first bypass diodes 4 are disposed at a first end of the battery panel 10, and the junction box 6 disposed separately corresponding to the second bypass diode 5 is disposed at a second end of the battery panel 10. Alternatively, the two first bypass diodes 4 are arranged in one junction box 6, and the second bypass diode 5 is arranged in one junction box 6 separately, i.e. the two first bypass diodes 4 are integrated in one junction box 6 by circuit connection, while the junction box 6 of the second end of the battery plate 10 is still a single diode junction box in which the second bypass diode 5 is arranged.
Alternatively, in an embodiment in which two first bypass diodes 4 are provided at the first end of the battery panel 10 and a second bypass diode 5 is provided at the first end of the battery panel 10 through the lead bus bar 7 as shown in fig. 3, the two first bypass diodes 4 and the second bypass diode 5 may be provided in at least one junction box 6. Specifically, as shown in fig. 3, the present invention, in the form of the lead bus bar 7, moves the second bypass diode 5 at the second end of the battery plate 10 to the first end of the battery plate 10, so that the three bypass diodes are all located at the same side of the battery plate 10, and therefore, all or part of the bypass diodes can be disposed in the same junction box 6, that is, three to one junction box 6 can be disposed, such as three bypass diodes can be disposed in the same junction box 6, or four bypass diodes can be disposed in the junction box 6 separately as shown in fig. 3, or any two adjacent bypass diodes can be integrated in one junction box, and another bypass diode is disposed in one junction box 6 separately, and the arrangement manner is not particularly limited.
It should be noted that, when each bypass diode is separately disposed in the junction box 6, the circuit connection mode of the battery panel 10 is relatively simpler than the other junction box 6 setting modes.
In an embodiment, when the at least one bypass diode is connected to the common junction box 6 by edge bus bars, there is an overlap region of the edge bus bars, and an insulation bar is disposed between the edge bus bars of the overlap region, the insulation bar covering at least the overlap region. Specifically, the utility model discloses in, when merging partial bypass diode integration in same terminal box 6, at its edge busbar overlap department, need prolong edge busbar, there is the overlap between edge busbar and the edge busbar this moment, need set up the insulating strip at this overlap department and do corresponding insulation processing to avoid the overlap department because of the electric connection problem that direct contact leads to, ensure photovoltaic module's normal work. It is understood that, for the convenience of preparation, the insulating strips may also be disposed in the surrounding area at the same time, and this embodiment is not particularly limited thereto as long as the normal operation of the photovoltaic module is not affected.
Further, the edge bus bar may include a center conductive line and a peripheral insulating layer wrapped outside the center conductive line. It should be noted that when the edge bus bar with the structure is in contact with other lead structures, the peripheral insulating layer can play an insulating role, and an additional insulating layer is not required, so that the photovoltaic module structure and the process are simplified.
In summary, according to the photovoltaic module of the present invention, one third of the cells 3 are adopted, and all the cells 2 are arranged in parallel along the short side of the module, the long side of the one third of the cells 3 is parallel to the long side of the module, i.e. the arrangement manner of horizontal row is adopted, compared with the arrangement manner of two symmetrical parts, the circuit connection is simpler, the complicated processes of wire jumper laying and insulation can be reduced, thereby facilitating the process of simplifying the module, improving the productivity, meanwhile, compared with the circuit adopting the whole cell module, the one third of the cells 3 is adopted by the circuit processing manner of cutting three and two, and the cells 2 are connected in parallel, thereby reducing the increase range of the module current, especially, aiming at the design of the cell with the size of 50pcs210mm, the cell with the circuit connection manner of the photovoltaic module of the present invention, the cell with the current of 1.8 times originally is reduced to 0.6 times by the manner of cutting three, and then the current of the component is recovered to 1.2 times by a parallel circuit mode, so that the current of the component is close to that of the component corresponding to the existing 166mm battery, the power of the component can reach more than 460W and is higher than that of the component corresponding to the 166mm battery, the impact on the component caused by overhigh current is avoided, and the width of the component can be reduced as much as possible on the premise of ensuring the competitiveness of the component power, so that the problem that raw materials such as glass cannot be supplied is solved.
In the description herein, references to the description of the term "one embodiment," "some embodiments," "an illustrative embodiment," "an example," "a specific example," or "some examples" or the like mean that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the terms used above do not necessarily refer to the same embodiment or example.
While embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that: various changes, modifications, substitutions and alterations can be made to the embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.

Claims (13)

1. A photovoltaic module, comprising:
the battery pack comprises 2N +1 battery packs connected in series, each battery pack comprises two battery strings connected in parallel, each battery string comprises a plurality of battery pieces which are connected in series and equal in number, and N is a positive integer;
all the battery strings are arranged in parallel with the short side direction of the assembly, and the battery piece is a one-third battery piece formed by cutting the whole battery piece.
2. The pv assembly according to claim 1 wherein the number of said groups is five and the number of said tiles in each said string is fifteen-one-third tiles.
3. The photovoltaic module of claim 1,
the battery pack comprises 1 st battery pack to 2 Nth battery pack, wherein a first bypass diode is connected between every two adjacent battery packs in parallel in a reverse direction, and a second bypass diode is connected between the 2N +1 th battery pack and the 2 Nth battery pack in parallel in the reverse direction.
4. The photovoltaic module of claim 3,
n first bypass diodes are arranged at a first end of the solar panel, the second bypass diodes are arranged at a second end of the solar panel, and the first end of the solar panel is opposite to the second end.
5. The photovoltaic module of claim 4, wherein the second bypass diode is disposed in a junction box and N of the first bypass diodes are disposed in at least one junction box.
6. The photovoltaic module of claim 3,
the N first bypass diodes are arranged at the first end of the battery panel;
and a lead bus bar is led out from the cathode end of the 2N +1 th battery pack, and the second bypass diode is arranged at the first end of the battery board through the lead bus bar.
7. The photovoltaic module of claim 6, wherein N of the first bypass diodes and the second bypass diodes are disposed in at least one junction box.
8. The photovoltaic module of claim 1, wherein the size of the entire cell sheet is 210 mm.
9. The photovoltaic module of claim 2,
the battery strings in the five battery packs are arranged in parallel with the short side direction of the assembly to form the battery plate;
and a first bypass diode is connected between the first battery pack and the second battery pack in parallel, a first bypass diode is connected between the third battery pack and the fourth battery pack in parallel, and a second bypass diode is connected between the fourth battery pack and the fifth battery pack in parallel.
10. The photovoltaic module of claim 9,
the two first bypass diodes and the second bypass diode are respectively arranged in a junction box.
11. The photovoltaic module of claim 9,
the two first bypass diodes are arranged in one junction box, and the second bypass diode is arranged in one junction box.
12. The photovoltaic module of claim 9,
two first bypass diodes are arranged at the first end of the battery plate, and the second bypass diode is arranged at the first end of the battery plate through a lead bus bar;
two of the first bypass diodes and the second bypass diode are disposed in at least one junction box.
13. The photovoltaic module according to any of claims 5 or 6 or 11 or 12, characterized in that at least one bypass diode is connected to a common junction box by means of edge busbars which present overlapping areas, between which there are arranged insulating strips which at least cover said overlapping areas.
CN201922490777.1U 2019-12-31 2019-12-31 Photovoltaic module Active CN210926044U (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113130688A (en) * 2019-12-31 2021-07-16 苏州阿特斯阳光电力科技有限公司 Photovoltaic module

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113130688A (en) * 2019-12-31 2021-07-16 苏州阿特斯阳光电力科技有限公司 Photovoltaic module

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Address after: No. 199, deer mountain road, Suzhou high tech Zone, Jiangsu Province

Patentee after: CSI Cells Co.,Ltd.

Patentee after: Changshu Artes Sunshine Power Technology Co.,Ltd.

Patentee after: Atlas sunshine Power Group Co.,Ltd.

Address before: No. 199, deer mountain road, Suzhou high tech Zone, Jiangsu Province

Patentee before: CSI Cells Co.,Ltd.

Patentee before: Changshu Artes Sunshine Power Technology Co.,Ltd.

Patentee before: CSI SOLAR POWER GROUP Co.,Ltd.