How solar panels are manufactured

The solar cell panel design with differently lengthed extension wirings and overlapping connections addresses the reliability issues in existing solar cell panel manufacturing, enhancing connection characteristics and structural stability while simplifying the manufacturing process.

JP7675163B2Active Publication Date: 2025-05-12SHANGRAO JINKO SOLAR TECH DEV CO LTD
View PDF 7 Cites 0 Cited by

Patent Information

Application Number
JP2023214870
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-29
Filing Date
2023-12-20
Publication Date
2025-05-12
Estimated Expiration
2040-11-27

AI Technical Summary

Technical Problem

Existing solar cell panel manufacturing methods face challenges with long-term reliability due to wiring connections between solar cells, which are prone to separation caused by temperature changes, leading to reduced output and high defect rates.

Method used

The proposed solution involves a solar cell panel design where first and second extension wirings of different lengths are used for each solar cell, with a connection structure that includes overlapping portions to improve connection characteristics and structural stability, while simplifying the manufacturing process.

Benefits of technology

This approach enhances the connection characteristics and structural stability of the solar cell panel, reduces material costs, and simplifies the manufacturing process, leading to improved reliability and productivity.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007675163000001
    Figure 0007675163000001
  • Figure 0007675163000002
    Figure 0007675163000002
  • Figure 0007675163000003
    Figure 0007675163000003
Patent Text Reader

Abstract

To provide a solar cell panel capable of improving reliability and productivity, and a method for manufacturing the same.SOLUTION: In a solar cell panel according to an embodiment, a connection structure of a wiring section is improved connecting a plurality of solar cells including first and second solar cells electrically connected to each other. More specifically, the wiring section includes first extension wiring having a first outer section passing through a first side of the solar cell and extended outward and second extension wiring having a second outer section passing through a second side on the opposite side to the first side of the solar cell and extended outward so as to correspond to each of the plurality of solar cells. The wiring section includes a connection section where the second extension wiring of the first solar cell and the first extension wiring of the second solar cell are connected in an overlapping manner, and the connection section includes an overlapping portion that is formed to overlap part of the first solar cell.SELECTED DRAWING: Figure 6
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present invention relates to a solar cell panel. Le More specifically, the present invention relates to a solar cell panel with improved structure and process. Le It relates to a manufacturing method. [Background technology]

[0002] A solar cell is a device that converts solar energy into electrical energy. A solar cell can be manufactured in the form of a solar cell panel by electrically connecting a plurality of solar cells to wiring and carrying out a packaging process to protect the solar cells. Various structures can be applied to electrically connect a plurality of solar cells to wiring.

[0003] As an example, as disclosed in Korean Patent Publication No. 10-2017-0017776, adjacent solar cells can be connected using wiring that extends long enough to span two solar cells. Since solar panels must generate electricity for long periods of time in various environments, long-term reliability is highly required. However, when the wiring connecting multiple solar cells repeatedly expands and contracts due to temperature changes, etc., a problem may occur in which the wiring is separated at a portion where the adhesion is weak. This reduces the output of the solar cell panel, increases the defect rate, and reduces long-term reliability. This problem becomes more serious as the wiring is formed long enough to span two solar cells, and may become even more serious when the wiring is located only on one side of the solar cell.

[0004] Considering these problems, when wiring is formed to correspond to each solar cell, a separate wiring (for example, a bridge wiring located between two solar cells in a direction intersecting the wiring corresponding to each solar cell) is required to connect the wiring corresponding to two adjacent solar cells. This increases material costs and complicates the manufacturing process. In addition, there are problems in that the connection characteristics of the wiring corresponding to each solar cell and the bridge wiring connecting it are deteriorated, and the process must be carried out under harsh conditions to ensure a stable connection. This reduces the reliability and productivity of the solar panel. Summary of the Invention [Problem to be solved by the invention]

[0005] This embodiment is a solar cell panel that can improve reliability and productivity. Le A method of manufacture is provided.

[0006] More specifically, the present embodiment provides a solar cell panel that can improve connection characteristics while simplifying the connection structure and process of wiring connected to adjacent solar cells. Le A method of manufacture is provided.

[0007] In particular, in the present embodiment, since the wiring corresponding to each solar cell is located on one side and there is no wiring between adjacent solar cells that crosses the wiring, the solar cell panel can improve connection characteristics while simplifying the structure and process. Le A method of manufacture is provided. [Means for solving the problem]

[0008] In the solar cell panel according to this embodiment, the connection structure of the wiring section connecting a plurality of solar cells including a first and a second solar cell electrically connected to each other is improved. More specifically, the wiring section includes a first extension wiring having a first outer portion extending outwardly by passing through a first side of the solar cell so as to correspond to each of the plurality of solar cells, and a second extension wiring having a second outer portion extending outwardly by passing through a second side of the solar cell opposite to the first side. The second solar cell includes a connection portion where the second extension wiring and the first extension wiring of the second solar cell are overlapped and connected, and the connection portion is formed by overlapping a part of the first solar cell.

[0009] Here, the second extension wiring of the first solar cell and the first extension wiring of the second solar cell may be extended in parallel to each other and directly connected. The second extension wiring of the first solar cell may be located apart from the second solar cell. In this case, the first extension wiring of the second solar cell may be located on top of the second extension wiring of the first solar cell at the connection portion.

[0010] For example, the length of the first outer portion may be greater than the width of the first or second extension wiring. Or, the length of the second outer portion may be greater than the width of the first or second extension wiring. Or, the length of the connection portion may be greater than the width of the first or second extension wiring. Or, the length of the second outer portion may be greater than or equal to the separation distance between the outer end of the second outer portion and the second solar cell. Or, the length of the overlapping portion may be greater than the width of the first or second extension wiring. Or, the length of the overlapping portion may be greater than or equal to the end distance between the inner end of the first or second extension wiring and the second side or the first side of the solar cell.

[0011] As an example, the overlapping portion may be positioned so as to overlap at least one of the first and second electrodes included in the first solar cell.

[0012] In this embodiment, a fixing portion may be provided that is formed to include at least a portion of the connection portion to fix the first extension wiring and the second extension wiring. As an example, the connection portion may include an inter-cell portion located in the inter-cell region between the first solar cell and the second solar cell, and the fixing portion may be formed partially corresponding to the inter-cell portion and configured as a line joint portion having a thickness, surface roughness, or shape different from other portions. As another example, the fixing portion may include a fixing member that covers at least a portion of the connection portion. In this case, the fixing member may be configured as an insulating tape that is formed to cover at least the first solar cell and at least a portion of the overlapping portion.

[0013] In this embodiment, the area of ​​the connection part is 3 to 16.5 mm 2 may be also possible.

[0014] In this embodiment, the yield strength of the first extension wire or the second extension wire may be 80 to 170 MPa.

[0015] In this embodiment, the solar cells may be arranged in a plurality of solar cell strings in a second direction intersecting the first direction, and may further include a bus bar wiring connecting the solar cell strings at their ends in the second direction. The first extension wiring or the second extension wiring may have a different material, a different melting point, or a different yield strength from the bus bar wiring.

[0016] For example, the melting point of the first extension wiring or the second extension wiring may be higher than the melting point of the bus bar wiring. Alternatively, the first extension wiring or the second extension wiring may include a tin-bismuth alloy and the bus ribbon may include a tin-lead alloy. Alternatively, the yield strength of the first extension wiring or the second extension wiring may be lower than or equal to the yield strength of the bus bar wiring.

[0017] The solar cell panel according to the present embodiment includes a solar cell, a first extension wiring having a first outer portion extending outwardly while passing through a first side of the solar cell in a first direction, and a second extension wiring having a second outer portion extending outwardly while passing through a second side of the solar cell opposite to the first side in the first direction, where the first outer portion and the second outer portion have different lengths.

[0018] For example, the length of the first outer portion may be greater than the width of the first or second extension wiring. Alternatively, the length of the second outer portion may be greater than the width of the first or second extension wiring. The length of the side portion may be greater than or equal to the end distance between the inner end of the first or second extension wiring and the second or first side of the solar cell, or the inner end of the first extension wiring and the inner end of the second extension wiring may be positioned symmetrically to each other in the first direction.

[0019] A method for manufacturing a solar cell panel according to this embodiment includes the steps of: manufacturing a plurality of solar cells including first and second solar cells electrically connected to each other; preparing wiring material including a yield strength increasing process for increasing the yield strength; attaching a first extension wire and a second extension wire to each of the plurality of solar cells; inserting the first solar cell as is and inserting the second solar cell after rotating it 180 degrees, and positioning the first extension wire of the second solar cell on the second extension wire of the first solar cell so as to overlap a portion of the first solar cell; forming a fixing portion in at least a portion of a connection area where the first extension wire and the second extension wire are overlapped and connected to form a solar cell string; and laminating the first cover member, the first sealant, the solar cell string, the second sealant, and the second cover member, and integrating them by applying heat and pressure.

[0020] As one example, the connection portion includes an inter-cell portion located in an inter-cell region between the first solar cell and the second solar cell, and in the step of forming the fixing portion, the inter-cell portion is partially soldered to form the fixing portion configured as a wire joint portion. As another example, in the step of forming the fixing portion, a fixing member configured as an insulating tape is attached onto at least the first solar cell and at least a portion of the overlapping portion.

[0021] In the process of increasing the yield strength, the base wire having a yield strength of 50 to 120 MPa may be stretched in the unwinding process so that the first and second extension wires have a yield strength of 80 to 170 MPa. Effect of the Invention

[0022] According to this embodiment, the first and second extension wires of different lengths are provided for each solar cell, and the area of ​​the connection portion (especially the overlapping portion) is sufficiently secured, thereby improving the connection characteristics and improving the structural stability. At this time, the first and second extension wires are extended in parallel to each other and directly connected, and the simple structure does not include any wiring that crosses them, which reduces material costs and simplifies the process. This improves the reliability and productivity of the solar cell panel.

[0023] Then, a solar cell panel having the desired structure and arrangement of solar cells and wiring parts can be manufactured in a simple process by forming a plurality of solar cells, some of which are inserted as they are, and the other parts are rotated and inserted. The first and second extension wires extended in parallel are connected to each other so that they have an overlapping portion, and only a fixing part for preliminary fixing needs to be formed before the lamination process, so that the process can be further simplified. In addition, the first and second extension wires can have the desired characteristics by performing a yield strength increasing process in the wiring material preparation stage. This can improve the productivity of solar cell panels with excellent reliability. [Brief description of the drawings]

[0024] [Figure 1] 1 is an exploded perspective view showing a schematic configuration of a solar panel according to an embodiment of the present invention; [Diagram 2] 2 is a cross-sectional view showing an example of a solar cell included in the solar cell panel shown in FIG. 1. [Figure 3a] 2 is a rear plan view showing a first solar cell, wiring members, insulating members, and connecting members included in the solar cell panel shown in FIG. 1. [Figure 3b] 2 is a rear plan view showing a second solar cell, wiring members, insulating members, and connecting members included in the solar cell panel shown in FIG. 1. [Figure 4] 2 is a rear plan view showing a schematic diagram of a plurality of solar cells constituting one solar cell string included in the solar cell panel shown in FIG. 1 and wiring parts connected thereto. [Diagram 5] 5 is an enlarged partial plan view of part A in FIG. 4, where (a) is a front plan view and (b) is a rear plan view. [Figure 6] 6 is a cross-sectional view of the solar cell panel taken along line VI-VI in FIG. 5. [Figure 7] 1 is a flowchart illustrating a method for manufacturing a solar panel according to an embodiment of the present invention. [Figure 8]FIG. 4 is a plan view showing first and second solar cells included in a solar panel according to another embodiment of the present invention. [Figure 9] 9 is a cross-sectional view of the solar cell panel taken along line IX-IX in FIG. 8. [Figure 10] FIG. 11 is a plan view showing first and second solar cells included in a solar cell panel according to one modified example of the present invention. [Figure 11] 1 is a photograph of a part of a solar cell panel after a thermal cycle (TC) test is repeated 200 times on the solar cell panel according to Example 1. [Figure 12] 1 is an electroluminescence (EL) photograph of a part of a solar cell panel after a temperature cycle test is repeated 200 times on the solar cell panel according to Example 1; [Figure 13] 1 is a photograph of a part of a solar cell panel according to Comparative Example 1 after a temperature cycle test was repeated 200 times. [Figure 14] 1 is an electroluminescence photograph of a part of a solar cell panel according to Comparative Example 1 after a temperature cycle test was repeated 200 times. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0025] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, the present invention will be described in detail with reference to the accompanying drawings. However, it should be understood that the present invention is not limited to the above embodiment and may be modified in various ways.

[0026] In the drawings, in order to clearly and simply explain the present invention, illustrations of parts that are not related to the explanation are omitted, and the same drawing reference numerals are used for the same or very similar parts throughout the specification. In addition, in the drawings, thickness, width, etc. are illustrated enlarged or reduced in order to make the explanation clearer, but the thickness, width, etc. of the present invention are not limited to those illustrated in the drawings.

[0027] And throughout the specification, when a part "includes" another part, it does not exclude the other part, but can further include the other part, unless otherwise specified. Also, when a part such as a layer, film, region, plate, etc. is said to be "on" another part, this includes not only the case where it is "directly on" the other part, but also the case where the other part is located between them. When a part such as a layer, film, region, plate, etc. is said to be "directly on" another part, it means that the other part is not located between them.

[0028] Hereinafter, a solar panel and a manufacturing method thereof according to an embodiment of the present invention will be described in detail with reference to the accompanying drawings. In this specification, the terms "first" and "second" are used to distinguish one from another, and the present invention is not limited thereto.

[0029] Fig. 1 is an exploded perspective view showing a schematic diagram of a solar cell panel according to an embodiment of the present invention, and Fig. 2 is a cross-sectional view showing an example of a solar cell included in the solar cell panel shown in Fig. 1. For reference, Fig. 2 is a cross-sectional view of the solar cell taken along line II-II in Fig. 3.

[0030] As shown in FIGS. 1 and 2, the solar cell panel 100 according to the present embodiment includes a plurality of solar cells 10 including first and second solar cells 10a and 10b connected to each other, and a plurality of solar cells 11. The solar cell 10 includes a wiring section 20 that electrically connects the solar cells 10 and the wiring section 20. The solar cell panel 100 includes a sealant 30 that surrounds and seals the solar cells 10 and the wiring section 20, a first cover member 42 located on one side (for example, the front side) of the solar cells 10 on the sealant 30, and a second cover member 44 located on the other side (for example, the rear side) of the solar cells 10 on the sealant 30. This will be described in more detail. Here, the solar cell 10 includes a semiconductor substrate 110, and first and second electrodes 142, 144 located on one side (for example, the rear side) of the semiconductor substrate 110.

[0031] In this embodiment, the solar cell panel 100 includes a plurality of solar cells 10, which can be electrically connected in series, in parallel, or in a series-parallel configuration by wiring units 20.

[0032] For example, the wiring unit 20 includes wiring members 22 at least partially overlapping with the first and second electrodes 142, 144 of each solar cell 10 and connected to the first and second electrodes 142, 144. A plurality of solar cells 10 are connected in a first direction (x-axis direction in the drawing) by the wiring members 22 to form one string (i.e., a solar cell string S). The wiring unit 20 may further include bus bar wiring 28 located at both ends of the solar cell string S to connect the solar cell string S to another solar cell string S or an external circuit (e.g., a junction box) (not shown).

[0033] The sealant 30 includes a first sealant 30a located on the front surface of the solar cell 10 connected by the wiring portion 20, and a second sealant 30b located on the rear surface of the solar cell 10. The first sealant 30a and the second sealant 30b prevent the inflow of moisture and oxygen and chemically bond each element of the solar cell panel 100. The first and second sealants 30a and 30b may be made of an insulating material having translucency and adhesiveness. For example, the first sealant 30a and the second sealant 30b may be made of ethylene vinyl acetate copolymer resin (EVA), polyvinyl butyral, silicone resin, ester-based resin, olefin-based resin, etc. The solar cell panel 100 may be configured by integrating the second cover member 44, the second sealant 30b, the solar cell 10, the wiring portion 20, the first sealant 30a, and the first cover member 42 through a lamination process using the first and second sealants 30a and 30b. Although FIG. 1 illustrates the first and second sealants 30a, 30b as separate parts, the first and second sealants 30a, 30b may be integrated by a lamination process and configured as an integrated part having no separate boundary.

[0034] The first cover member 42 is positioned on the first encapsulant 30a to form one surface (for example, the front surface) of the solar cell panel 100, and the second cover member 44 is positioned on the second encapsulant 30b to form the other surface (for example, the rear surface) of the solar cell 10. The first cover member 42 and the second cover member 44 may each be made of an insulating material that can protect the solar cell 10 from external impact, moisture, ultraviolet rays, etc. The first cover member 42 may be made of a light-transmitting material that allows light to pass through, and the second cover member 44 may be made of a sheet made of a light-transmitting material, a non-light-transmitting material, or a reflective material. For example, the first cover member 42 may be made of a glass substrate, etc., and the second cover member 44 may be made of a film or sheet, etc. The second cover member 44 may have a TPT (Tedlar / PET / Tedlar) type or include a polyvinylidene fluoride (PVDF) resin layer formed on at least one surface of a base film (for example, polyethylene terephthalate (PET)).

[0035] However, the present invention is not limited thereto. Thus, the first and second sealants 30a and 30b, the first cover member 42, or the second cover member 44 may include various materials other than those described above and may have various forms. For example, the first cover member 42 or the second cover member 44 may have various forms (e.g., a substrate, a film, a sheet, etc.) or materials.

[0036] An example of a solar cell 10 included in a solar panel 100 according to an embodiment of the present invention will be described in more detail with reference to FIG.

[0037] As shown in Fig. 2, the solar cell 10 according to this embodiment includes a photoelectric conversion unit including a semiconductor substrate 110, and first and second electrodes 142, 144 connected to the photoelectric conversion unit. Here, the first and second electrodes 142, 144 include portions formed parallel to each other, but in this embodiment, the first electrode 142 and the second electrode 144 that collect carriers of opposite polarities may be formed parallel to each other while being located together on one surface (for example, the rear surface) of the photoelectric conversion unit. In this manner, the solar cell 10 may have a rear electrode structure.

[0038] In this embodiment, the photoelectric conversion unit includes a semiconductor substrate 110 and conductive regions 132, 134 located in or on the semiconductor substrate 110. In this embodiment, the first conductive region 132 and the second conductive region 134 involved in carriers of opposite polarities may be located together on one surface (for example, the rear surface) of the semiconductor substrate 110. Here, an example has been given in which the first and second conductive regions 132, 134 are located separately from the semiconductor substrate 110 with the intermediate film 120 interposed therebetween.

[0039] For example, the semiconductor substrate 110 includes a base region 112 made of a crystalline semiconductor (for example, a single crystal or polycrystalline semiconductor, for example, a single crystal or polycrystalline silicon wafer, particularly a single crystal silicon wafer) containing a second conductive type dopant. The solar cell 10 based on the base region 112 or the semiconductor substrate 110 having high crystallinity and few defects has excellent electrical characteristics. A front field region 114 having the same conductive type as the base region 112 and a higher doping concentration than the base region 112 is located on the front surface of the semiconductor substrate 110. The front surface of the semiconductor substrate 110 may be provided with an anti-reflection structure (for example, a pyramidal texturing structure made of the (111) plane of the semiconductor substrate 110) for preventing reflection, and the rear surface of the semiconductor substrate 110 may be made of a mirror-polished surface and have a smaller surface roughness than the front surface. However, the present invention is not limited thereto, and various modifications are possible.

[0040] The intermediate film 120 may be an oxide film, a dielectric film or insulating film containing silicon, a nitrided oxide film, a carbide oxide film, etc. As an example, the intermediate film 120 may be a silicon oxide film. The intermediate film 120 may function as a doping barrier film that prevents diffusion of the first or second conductive type dopant contained in the first and second conductive type regions 132 and 134, or a tunneling film through which tunneling of a majority of carriers occurs.

[0041] The first and second conductive type regions 132 and 134 are formed by doping an amorphous semiconductor, a microcrystalline semiconductor, or a polycrystalline semiconductor (for example, amorphous silicon, microcrystalline silicon, or polycrystalline silicon) with a first or second conductive type dopant. In particular, when the first and second conductive type regions 132 and 134 have a polycrystalline semiconductor, they can have high carrier mobility. For example, when the first or second conductive type dopant is a p-type, a group 3 element such as boron (B), aluminum (Al), gallium (Ga), or indium (In) can be used. When the first or second conductive type dopant is an n-type, a group 5 element such as phosphorus (P), arsenic (As), bismuth (Bi), or antimony (Sb) can be used. As an example, one of the first and second conductive type dopants may be boron (B), and the other may be phosphorus (P).

[0042] The first conductive type region 132 may include a plurality of first conductive type regions 132 extending long in a second direction (the y-axis direction in the drawing) intersecting (for example, perpendicular to) the first direction. The second conductive type region 134 may include a plurality of second conductive type regions 134 extending long in the second direction. Here, the first conductive type regions 132 and the second conductive type regions 134 are alternately positioned in the first direction, and the first conductive type regions 132 and the second conductive type regions 134 are alternately positioned in the first direction. A barrier region 136 may be located between the first conductivity type region 132 and the second conductivity type region 134 .

[0043] Here, the area (width, for example) of the first conductivity type region 132 may be larger than the area (width, for example) of the second conductivity type region 134. This may be advantageous for photoelectric conversion since the first conductivity type region 132 functioning as an emitter region has a larger area than the second conductivity type region 134 functioning as a back surface field region. In this embodiment, the first and second conductivity type regions 132, 134 are located together in the semiconductor layer 130 located on the same plane, and a barrier region 136 made of an undoped intrinsic semiconductor is provided between the first and second conductivity type regions 132, 134.

[0044] However, the present invention is not limited thereto. For example, the intermediate film 120 may not be provided. Alternatively, the positions and shapes of the first and second conductive regions 132, 134 and / or the barrier region 136 may be modified in various ways. Alternatively, at least one of the first and second conductive regions 132, 134 may be formed as a doped region that is formed by doping a part of the semiconductor substrate 110 with a dopant and constitutes a part of the semiconductor substrate 110. Also, the barrier region 136 may not be provided, and the barrier region 136 may be formed of a material other than a semiconductor material or an empty space. Various other modifications are possible.

[0045] The front insulating film 122 is positioned entirely on the front surface of the semiconductor substrate 110 (more precisely, on the front field region 114 formed on the front surface of the semiconductor substrate 110). The front insulating film 122 includes at least one of a front passivation film 122a and an anti-reflection film 122b. The rear passivation film 140 is positioned entirely on the rear surface of the semiconductor layer 130 except for the contact hole 140a. As an example, the front passivation film 122a, the anti-reflection film 122b, or the rear passivation film 140 may have a multi-layer structure in which any one single film selected from the group consisting of a silicon nitride film, a silicon nitride film containing hydrogen, a silicon oxide film, a silicon oxynitride film, an aluminum oxide film, a silicon carbide film, MgF2, ZnS, TiO2, and CeO2 is combined.

[0046] The first electrode 142 may be electrically connected (for example, in contact) with the first conductive type region 132 through the contact hole 140a, and the second electrode 144 may be electrically connected (for example, in contact) with the second conductive type region 134 through the contact hole 140a. The first electrode 142 and the second electrode 144 may be made of a conductive material (for example, a metal). The shape, position, number, etc. of the contact hole 140a may be variously modified.

[0047] Such a solar cell 10 is electrically connected to other solar cells 10 through a wiring part 20 including a wiring member 22. Hereinafter, the structures of the solar cell 10 and the wiring part 20 according to this embodiment will be described in more detail with reference to Figures 3a, 3b, and 4 to 6.

[0048] FIG. 3a is a rear plan view showing a first solar cell 10a, wiring material 22, insulating member 34 and connecting member 32 included in the solar panel 100 shown in FIG. 1, and FIG. 3b is a rear plan view showing a second solar cell 10b, wiring material 22, insulating member 34 and connecting member 32 included in the solar panel 100 shown in FIG. 1.

[0049] In this embodiment, a solar cell string S is constructed using first and second solar cells 10a, 10b that have differences in the arrangement of the first and second electrodes 142, 144 and the first and second wirings 22a, 22b connected thereto, but the connection structures of the first and second electrodes 142, 144 and the first and second wirings 22a, 22b in the first and second solar cells 10a, 10b are the same. Therefore, the connection structure of the first and second electrodes 142, 144 and the first and second wirings 22a, 22b in the solar cell 10 will be explained first, and then the connection structure of the first and second solar cells 10a, 10b will be explained. The differences will be explained in detail.

[0050] 1 and 2, and referring to FIGS. 3a and 3b, in each solar cell 10, the first and second electrodes 142, 144 have shapes corresponding to the first and second conductive regions 132, 134, respectively. Thus, the first electrode 142 includes a plurality of first electrodes 142 extending in the second direction to correspond to the plurality of first conductive regions 132. The second electrode 144 includes a plurality of second electrodes 144 extending in the second direction to correspond to the plurality of second conductive regions 134. The first electrodes 142 and the second electrodes 144 are alternately positioned to correspond to the first conductive region 132 and the second conductive region 134 in the first direction. In this case, the first and second electrodes 142, 144 may have the same or similar shapes as the corresponding first and second conductive regions 132, 134, but may have a smaller width than the corresponding first and second conductive regions 132, 134. However, the present invention is not limited thereto, and the first and second electrodes 142, 144 may have different shapes than the first and second conductivity type regions 132, 134.

[0051] In this embodiment, the wiring member 22 includes a first wiring 22a connected to the first electrode 142 and a second wiring 22b connected to the second electrode 144 in each solar cell 10. More specifically, in each solar cell 10, the first wiring 22a can extend long in the first direction so as to overlap with and be connected to the multiple first electrodes 142. Similarly, in each solar cell 10, the second wiring 22b can extend long in the first direction so as to overlap with and be connected to the multiple second electrodes 144. Here, in each solar cell 10, the first wiring 22a can be electrically connected to the first electrode 142 provided in each solar cell 10 via the connecting member 32, and can be insulated from the second electrode 144 by the insulating member 34. In each solar cell 10, the second wiring 22b can be electrically connected to the second electrode 144 via the connecting member 32, and can be insulated from the first electrode 142 by the insulating member 34. As an example, the connection member 32 located between the first wiring 22a and the first electrode 142 contacts them, and the connection member 32 located between the second wiring 22b and the second electrode 144 contacts them. When viewed from the second direction in each solar cell 10, the multiple first wirings 22a and the multiple second wirings 22b may be positioned alternately. In this way, the multiple first and second wirings 22a, 22b have uniform intervals and are connected to the multiple first and second electrodes 142, 144, allowing carriers to be effectively transmitted.

[0052] In this embodiment, the connection member 32 may include various conductive materials, and the insulating member 34 may include various insulating materials. For example, the connection member 32 may be formed of a material including the material included in the first and second electrodes 142, 144 and / or the wiring member 22, or a mixture of these materials. As an example, the connection member 32 includes the material of the first and second electrodes 142, 144 and / or the wiring member 22 by a process of placing the wiring member 22 on the first or second electrode 142, 144 and applying heat. Alternatively, the connection member 32 includes a solder paste layer, an epoxy solder paste layer, etc. As an example, the connection member 32 may include a low-temperature solder paste layer and a high-temperature solder paste layer together. And, the insulating member 34 may include a silicon-based resin, an epoxy-based resin, a urethane-based resin, an acrylic resin, a polyimide, a polyethylene, etc. However, this embodiment is not limited to the materials of the connection member 32 and the insulating member 34, and the connection member 32 and the insulating member 34 may be formed of various materials.

[0053] In this embodiment, the first and second wirings 22a, 22b are positioned to correspond to the solar cells 10, respectively. Here, the first wirings 22a corresponding to the solar cells 10 respectively means that the first wirings 22a connected via the connection members 32 to the multiple first electrodes 142 formed on each solar cell 10 in the first direction are positioned individually on each solar cell 10, but are provided singly. And the second wirings 22b corresponding to the solar cells 10 respectively means that the second wirings 22b connected via the connection members 32 to the multiple second electrodes 144 formed on each solar cell 10 in the first direction are positioned individually on each solar cell 10, but are provided singly. This means that the first wiring 22a is not connected to the first electrodes 142 of the multiple solar cells 10 via the connection members 32, and is not provided in a plurality on one solar cell 10 in the first direction. Similarly, the second wiring 22b is not connected to the second electrodes 144 of the multiple solar cells 10 via the connection members 32, and is not provided in a plurality on one solar cell 10 in the first direction. This allows the first wiring 22a or the second wiring 22b to have a length similar to or slightly longer than the length of the solar cell 10 in the first direction. For example, the total length of the first wiring 22a or the second wiring 22b in the first direction may be within 120% (for example, within 110%) of the length of each solar cell 10 (for example, the maximum length). In this manner, the first wiring 22a and the second wiring 22b are not formed over the entire two solar cells 10, so that the lengths of the first wiring 22a and the second wiring 22b can be reduced, and the structure can be simplified by forming a single wiring so as to individually correspond to each solar cell 10. This makes it possible to effectively prevent problems that may occur when the overall length of the first wiring 22a or the second wiring 22b is large.

[0054] More specifically, when the temperature changes in the environment in which the solar cell panel 100 is located, the first or second wiring 22a, 22b repeatedly expands and contracts. At this time, the expansion and contraction of the first or second wiring 22a, 22b may cause problems such as the wiring 22 being separated from the solar cell 10, the wiring 22 being damaged, or injury. This problem becomes more serious as the total length of the first or second wiring 22a, 22b becomes larger. When this problem occurs, the solar cell panel 100 is determined to be defective and the output is reduced. In particular, in a structure in which the first and second electrodes 142, 144 and the wiring 22 are located on only one side of the solar cell 10 as in this embodiment, problems caused by the expansion and contraction of the first or second wiring 22a, 22b become more serious.

[0055] In consideration of this, in this embodiment, the first and second wirings 22a, 22b having a relatively short overall length are used to prevent problems caused by expansion and contraction of the wiring material 22. This makes it possible to prevent output reduction and defects of the solar cell panel 100 and improve long-term reliability.

[0056] In addition, since the first wiring 22a and the second wiring 22b are formed individually corresponding to each solar cell 10, the first wiring 22a and the second wiring 22b are attached to each solar cell 10, and then the first wiring 22a and the second wiring 22b of the adjacent solar cells 10 (for example, the first solar cell 10a and the second solar cell 10b) are connected or pre-fixed, so that the adjacent solar cells 10 can be electrically and / or physically connected. This simplifies the alignment process between the solar cells 10 and the wiring 22. In addition, when the wiring 22 or the solar cell 10 is damaged and needs to be repaired or replaced, only the wiring 22 or the solar cell 10 can be replaced, so that the repair or replacement is easy. On the other hand, when a single wiring extending over two adjacent solar cells is used, the two adjacent solar cells and the single wiring must be aligned together, which makes the alignment process complicated and increases the possibility of misalignment. Furthermore, if the solar cell or wiring is damaged, a process such as cutting the wiring is required to repair or replace the solar cell or wiring, which can make the repair or replacement difficult and can cause problems such as a significant decrease in reliability at the reconnected portion.

[0057] In this embodiment, of the first wiring 22a and the second wiring 22b, a wiring having a first outer portion 24a extending outwardly and passing through a first side S1 of the solar cell 10 (for example, the left side in Figures 3a and 3b) is referred to as a first extension wiring 24, and a wiring having a second outer portion 26a extending outwardly and passing through a second side S2 opposite to the first side S1 (for example, the right side in Figures 3a and 3b) is referred to as a second extension wiring 26. In this embodiment, the length L1 of the first extension portion 24a and the length L2 of the second extension portion 26a are different from each other in the first direction. The first extension portion 24a and the second extension portion 26b are extended portions so as to form at least a part of a connection portion (reference symbol CP in FIG. 5, the same applies below) that is overlapped and connected to each other, and in this embodiment, the length L1 of the first extension portion 24a and the length L2 of the second extension portion 26a are made different from each other to improve the connection characteristics of the first extension wiring 24 and the second extension wiring 26 (i.e., the first wiring 22a and the second wiring 22b). This will be described in detail later.

[0058] As described above, in this embodiment, the first solar cell 10a and the second solar cell 10b, which are different from each other in the arrangement of the first and second electrodes 142, 144 and / or the first and second wirings 22a, 22b, are provided together.

[0059] More specifically, as shown in FIG. 3a, in the first solar cell 10a, pairs having an arrangement of the first electrode 142 and the second electrode 144 are repeatedly positioned from the first side S1 to the second side S2 in the first direction. Thus, in the first solar cell 10a, an arrangement of the first electrode 142 and the second electrode 144, the first electrode 142 and the second electrode 144, the first electrode 142 and the second electrode 144, etc. may be repeated from the first side S1 to the second side S2 in the first direction. As shown in FIG. 3b, in the second solar cell 10b, pairs having an arrangement of the second electrode 144 and the first electrode 142 are repeatedly positioned from the first side S1 to the second side S2 in the first direction. Thus, in the second solar cell 10b, an arrangement of the second electrode 144 and the first electrode 142, the second electrode 144 and the first electrode 142, the second electrode 144 and the first electrode 142, etc. may be repeated from the first side S1 to the second side S2 in the first direction. That is, the arrangement orders of the first electrodes 142 and the second electrodes 144 in the first direction are reversed in the first and second solar cells 10a and 10b.

[0060] In each of the first and second solar cells 10a, 10b, the first wiring 22a can form the first extension wiring 24, and the second wiring 22b can form the second extension wiring 26. Here, in the first and second solar cells 10a, 10b, different wirings are located at the same position in the second direction.

[0061] That is, in the first and second solar cells 10a, 10b, the first wiring 22a of the first solar cell 10a and the second wiring 22b of the second solar cell 10b are located at the same position in the first direction (for example, the first position P1). Then, in the first and second solar cells 10a, 10b, the second wiring 22b of the first solar cell 10a and the first wiring 22b of the second solar cell 10b are located at a position different from the first position P1 in the first direction (for example, the second position P2). Then, the first position P1 and the second position P2 are alternately located in the second direction, and the first wiring 22a and the second wiring 22b are alternately located.

[0062] More specifically, pairs having an arrangement of the first wiring 22a and the second wiring 22b are repeatedly positioned from one side (for example, the upper side of FIG. 3a) to the lower side (for example, the lower side of FIG. 3a) of the first solar cell 10a in the second direction. As a result, the first solar cell 10a can have an arrangement of the first wiring 22a and the second wiring 22b, the first wiring 22a and the second wiring 22b, the first wiring 22a and the second wiring 22b, etc. from one side to the other side in the second direction. And, pairs having an arrangement of the second wiring 22b and the first wiring 22a can be repeatedly positioned from one side (for example, the upper side of FIG. 3b) to the lower side (for example, the lower side of FIG. 3b) of the second solar cell 10b in the second direction. As a result, second solar cell 10b can have an arrangement of second wiring 22b and first wiring 22a, second wiring 22b and first wiring 22a, second wiring 22b and first wiring 22a, etc. from one side to the other in the second direction.

[0063] As a result, the first extension wiring 24 of the first solar cell 10a and the second extension wiring 26 of the second solar cell 10b can be located at the first position P1 in the first and second solar cells 10a and 10b. The second extension wiring 26 of the cell 10a and the first extension wiring 24 of the second solar cell 10b may be located. The first position P1 and the second position P2 may be alternately located in the second direction, and the first extension wiring 24 and the second extension wiring 26 may be alternately located. More specifically, a pair having an arrangement of the first extension wiring 24 and the second extension wiring 26 may be repeatedly located from one side (for example, the upper side of FIG. 3a) to the lower side (for example, the lower side of FIG. 3a) of the first solar cell 10a in the second direction. As a result, the first solar cell 10a may have an arrangement of the first extension wiring 24 and the second extension wiring 26, the first extension wiring 24 and the second extension wiring 26, the first extension wiring 24 and the second extension wiring 26, etc., from one side to the other side in the second direction. Then, pairs having an arrangement of second extension wiring 26 and first extension wiring 24 can be repeatedly positioned from one side (for example, the upper side in FIG. 3b) to the lower side (for example, the lower side in FIG. 3b) of second solar cell 10b in the second direction. As a result, second solar cell 10b can have an arrangement of second extension wiring 26 and first extension wiring 24, second extension wiring 26 and first extension wiring 24, second extension wiring 26 and first extension wiring 24, etc. from one side to the other side in the second direction.

[0064] That is, in the first and second solar cells 10a, 10b, the arrangement order of the first wirings 22a and the second wirings 22b in the second direction and the arrangement order of the first extension wirings 24 and the second extension wirings 26 are reversed.

[0065] As an example, the first solar cell 10a and the second solar cell 10b may have substantially the same structure, but may differ from each other in the arrangement of the first and second wirings 22a, 22b or the first and second extension wirings 24, 26. For example, after manufacturing a plurality of identical solar cells 10, one may be used as the first solar cell 10a by leaving it as it is, and the other adjacent one may be rotated 180 degrees and used as the second solar cell 10b. That is, the first solar cell 10a and the second solar cell 10b may be positioned symmetrically about the origin.

[0066] As an example, alignment marks 50a and 50b having the same shape may be positioned at different positions in the first solar cell 10a and the second solar cell 10b. For example, in the first solar cell 10a, the first alignment mark 50a is positioned at the upper left of Fig. 3a and the second alignment mark 50b is positioned at the lower right of Fig. 3a, whereas in the second solar cell 10b, the first alignment mark 50a is positioned at the lower right of Fig. 3b and the second alignment mark 50b is positioned at the upper left of Fig. 3b. It can be seen from the alignment marks 50a and 50b that one of the first and second solar cells 10a and 10b is positioned as is and the other is rotated 180 degrees.

[0067] Such pairs of first and second solar cells 10a, 10b are repeatedly positioned to form a solar cell string S made up of a plurality of solar cells 10. In this way, a plurality of solar cells 10 can be manufactured and applied in the same process, and after the processes of forming the solar cells 10, the insulating member 32, and the connecting member 34 are performed in the same manner, the solar cells 10 can be rotated before or after attachment of the wiring material 22 to realize the desired arrangement of the first and second electrodes 42, 44 and the first and second wirings 22a, 22b or the first and second extension wirings 24, 26.

[0068] However, the present invention is not limited to this. Therefore, the first and second solar cells 10a, 10b can be manufactured and used separately. For example, a solar cell having an arrangement of the first and second conductive type regions 32, 34 and the first and second electrodes 42, 44 suitable for the first solar cell 10a and a solar cell having an arrangement of the first and second conductive type regions 32, 34 and the first and second electrodes 42, 44 suitable for the second solar cell 10b can be used separately. In this case, the arrangement of the first and second extension wirings 24, 26 in the first solar cell 10a and the second solar cell 10b is the same as described above. In this case, the wiring forming the first extension wiring 24 and the wiring forming the second extension wiring 26 of the first and second wirings 22a, 22b may be the same or opposite. Various modifications are possible, such as a pair.

[0069] With respect to each solar cell 10, the length L1 of the first outer portion 24a of the first extension wiring 24 in the first direction may be longer than the length L2 of the second outer portion 26a of the second extension wiring 26. As an example, the lengths (L1, L2) being different, or the length L1 of the first outer portion 24a being greater than the length L2 of the second outer portion 26a, means that there is a difference of 10% or more or a difference of 0.1 mm or more based on the longer one. However, the present invention is not limited thereto, and includes all cases in which they can be determined to be different from each other.

[0070] Here, each solar cell 10 is located at a cell-to-cell distance (D in FIG. 5, the same applies below) on the first side S1 and the second side S2 of each solar cell 10. That is, on the first side S1 of each solar cell 10, each solar cell 10 and the first side solar cell located on the first side S1 are located at a cell-to-cell distance (D), and on the second side S2 of each solar cell 10, each solar cell 10 and the second side solar cell located on the second side S2 are located at a cell-to-cell distance (D). Here, the cell-to-cell distance (D) refers to the distance between the second side S2, which is the main edge between adjacent solar cells 10, and the first side S1 (for example, the distance between the second side S2 and the first side S1 at a portion where the inclined portion 10S located at the corner of each solar cell 10 is not provided, for example, the shortest distance). As an example, with respect to the first solar cell 10a shown in Fig. 1, the second solar cell 10b or the first end solar cell 101 located on its first side S1 may be the first side solar cell, and the second solar cell 10b or the first end solar cell 101 located on its second side S2 may be the second side solar cell. As another example, with respect to the second solar cell 10b shown in Fig. 1, the first solar cell 10a or the second end solar cell 102 located on its first side S1 may be the first side solar cell, and the second solar cell 10b or the second end solar cell 102 located on its second side S2 may be the second side solar cell.

[0071] In this embodiment, since the length L1 of the first outer portion 24a is greater than the inter-cell distance (D), an overlapping portion (reference symbol OP in FIG. 5, the same below) that overlaps with the first side solar cell can be provided, and since the length L2 of the second outer portion 26a is smaller than the inter-cell distance (D), it can be separated from the second side solar cell. For example, the length of the overlapping portion OP (reference symbol L11 in FIG. 5, the same below) may be greater than the width (reference symbol W in FIG. 5, the same below) of the first or second extension wiring 24, 26. This is in consideration of the stability of the connection of the wiring portion 22 of the adjacent solar cell 10, which will be described in detail later. However, the present invention is not limited to this, and the length L11 of the overlapping portion OP may be smaller than or equal to the width W of the first or second extension wiring 24, 26.

[0072] And, the length L1 of the first outer portion 24a (particularly, the length L11 of the overlapping portion OP) is larger than or equal to the first end interval ED1 between the inner end 24b of the first extension wiring 24 (i.e., the inner end 24b of the first extension wiring 24 adjacent to the second side S2 of the solar cell 10) and the second side S2 of the solar cell 10, or the second end interval ED2 between the inner end 26b of the second extension wiring 26 (i.e., the inner end 26b of the second extension wiring 26 adjacent to the first side S1 of the solar cell 10) and the first side of the solar cell 10. In particular, the length L11 of the overlapping portion OP may be larger than each of the first end interval ED2 and the second end interval ED2.

[0073] That is, when the first and second extension wirings 24, 26 of adjacent solar cells 10 are connected, the outer end 24c of the overlapping portion OP of the first extension wiring 24 corresponding to the second side solar cell on the second side S2 of the solar cell 10 can be positioned more inward than the inner end 26b of the second extension wiring 26. As an example, when the first and second extension wirings 24, 26 of adjacent solar cells 10 are connected, the overlapping portion OP of the first extension wiring 24 corresponding to the second side solar cell on the second side S2 of the solar cell 10 can be positioned so as to overlap at least one of the first and second electrodes 142, 144 adjacent to the second side S2 of the solar cell 10. This is because the overlapping portion OP of the first extension wiring 24 corresponding to the second side solar cell on the second side S2 of the solar cell 10 can be positioned so as to overlap at least one of the first and second electrodes 142, 144 adjacent to the second side S2 of the solar cell 10. This is done in consideration of the stability of the connection of the wiring portion 22 of 0, and will be described in detail later.

[0074] As an example, the first end interval ED1 and the second end interval ED2 are substantially the same, and the inner end 24b of the first extension wiring 24 and the inner end 26b of the second extension wiring 26 may be positioned symmetrically to each other when viewed from the first direction. Here, being substantially the same means that the ratio difference between the smaller of the first and second end intervals ED1 and ED2 based on the larger one is within 10%. This makes it possible to stably ensure the end intervals ED1 and ED2 between the inner ends 24b and 26b of the first extension wiring 24 and the second side S2 and the first side S1 of the solar cell 10. This is different from the fact that the length L1 of the first outer portion 24a and the length L2 of the second outer portion 26a are different from each other and asymmetric in the first direction.

[0075] The length L2 of the second outer portion 26a may be greater than or equal to the first end interval ED1 or the second end interval ED2. As an example, the length L2 of the second outer portion 26a may be greater than the first end interval ED1 or the second end interval ED2. Or, the length L2 of the second outer portion 26a may be greater than or equal to the separation distance (reference symbol SD in FIG. 5, the same below) between the outer end 26c of the second outer portion 26a and the second-side solar cell (i.e., the value obtained by subtracting the length L2 of the second outer portion 26a from the inter-cell distance (D)). As an example, the length L2 of the second outer portion 26a may be greater than the separation distance SD. When the first and second extension wirings 24, 26 of adjacent solar cells 10 are connected, the second outer portion 26a overlaps with the first outer portion 24a to form a part of the connection portion CP. As described above, by ensuring a sufficient length L2 of the second outer portion 26a that forms the connection portion CP, it is possible to improve the stability of the connection of the wiring portions 22 of adjacent solar cells 10. This will be described in detail later.

[0076] The connection structure of the first and second solar cells 10a, 10b and the solar cell string S including the same will be described in more detail with reference to FIGS.

[0077] Fig. 4 is a rear plan view showing a plurality of solar cells 10 constituting one solar cell string S included in the solar cell panel 100 shown in Fig. 1 and a wiring unit 20 connected thereto. Fig. 5 is a partial plan view showing an enlarged view of part A in Fig. 4, (a) being a front plan view and (b) being a rear plan view. Fig. 6 is a cross-sectional view of the solar cell panel 100 corresponding to line VI-VI in Fig. 5. For clear understanding, first and second electrodes 142, 144 are shown only for the first solar cell 10a in Fig. 5(b).

[0078] 4 to 6, in this embodiment, the first solar cells 10a and the second solar cells 10b are alternately positioned in the first direction, and the first extension wiring 24 and the second extension wiring 26 that extend from two adjacent solar cells 10 (e.g., the first solar cell 10a and the second solar cell 10b) and are adjacent to each other may be connected to form a solar cell string S. Here, the end solar cells 101, 102 are positioned adjacent to the bus bar wiring 28. In the first or second extension wiring 242, 262 corresponding to the end solar cells 101, 102, the first or second outer portion 242a, 262a located in the portion adjacent to the bus bar wiring 28 may have a different length from the first or second outer portion 24a, 26a of the first and second solar cells 10a, 10b (i.e., the internal solar cells) so as to form a bus bar connection portion. For reference, in this specification, the first and second extension wirings 24, 26 are meant to include the first and second extension wirings 242, 262, respectively, and the expressions first and second extension wirings 242, 262 are used only when the content corresponds to the first and second extension wirings 24, 26 provided in the end solar cells 101, 102.

[0079] First, the second extension wiring 2 of the first solar cell 10a is connected to the second side S2 of the first solar cell 10a. 6 and the first extension wiring 24 of the second side solar cell (i.e., the second solar cell 10b or the second end solar cell 102) adjacent to the second side S2 of the first solar cell 10a are physically and electrically connected to each other. Hereinafter, the connection structure between the first solar cell 10a and the second solar cell 10b on the second side S2 of the first solar cell 10a will be mainly described in detail. At this time, a connection portion CP is provided where the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b are connected to each other while overlapping each other, and the connection portion CP may be provided with an overlapping portion OP formed by overlapping a part of the first solar cell 10a.

[0080] More specifically, in this embodiment, the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b may be directly or contact-connected by extending in a parallel direction to each other. Here, being directly connected means being connected without using a separate member (e.g., a metal member, a ribbon member, a bridge ribbon connected in a direction intersecting the first and second extension wirings 24, 26, a separate wiring, etc.). In this case, being directly connected includes not only being connected by contacting each other to the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b, but also being connected via a flux layer, an adhesive layer, etc. for improving adhesion properties.

[0081] That is, in this embodiment, second extension wiring 26 of first solar cell 10a and first extension wiring 24 of second solar cell 10b, which have a straight shape or a shape that continues long and parallel to each other in a first direction, can be directly connected or contact-connected. In this manner, second extension wiring 26 of first solar cell 10a and first extension wiring 24 of second solar cell 10b are connected in parallel to each other without having any bent parts, folded parts, intersection parts, etc., and problems such as stress concentration, damage, and twisting that may occur at bent parts, folded parts, intersection parts, etc. can be effectively prevented.

[0082] Here, the connection portion CP includes an overlapping portion OP that overlaps a portion of the first solar cell 10a, and is spaced apart from the second solar cell 10b. That is, the connection portion CP can include an overlapping portion OP that overlaps a portion of the first solar cell 10a, and an inter-cell portion SP that is adjacent to the first solar cell 10a in the inter-cell region between the first solar cell 10a and the second solar cell 10b, and is spaced apart from the second solar cell 10b.

[0083] For this reason, the length L1 of the first outer portion 24a of the first extension wiring 24 may be longer than the length L2 of the second outer portion 26a of the second extension wiring 26 in the first direction. More specifically, since the length L1 of the first outer portion 24a of the second solar cell 10b is greater than the inter-cell distance (D), the second solar cell 10b may have an overlapping portion OP that overlaps with the first solar cell 10a or the second extension wiring 26 located therein. Since the length L2 of the second outer portion 26a of the first solar cell 10a is smaller than the inter-cell distance (D), the portion in the inter-cell region where the second outer portion 26a is located constitutes the inter-cell portion SP of the connection portion CP, and the portion on the second solar cell 10b side where the second outer portion 26a is not located does not have the connection portion CP. As a result, the connection portion CP can be separated from the second solar cell 10b by a separation distance SD in the inter-cell region.

[0084] In this case, the first extension wiring 24 of the second solar cell 10b having the first extension portion 24a of the relatively long length L2 can be positioned on the rear surface of the second extension wiring 26 of the first solar cell 10a having the second extension portion 26a of the relatively short length L1 at the connection portion CP (particularly, the overlapping portion OP). This is in consideration of a stable stacked structure of the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b.

[0085] In this way, when the first extension wiring 24 of the second solar cell 10b has an overlapping portion OP with the first solar cell 10a, the area of ​​the connection portion CP between the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b can be sufficiently secured, and the overlapping portion OP located on the first solar cell 10a can improve structural stability. If the first and second extension wirings 24, 26, which correspond individually to each solar cell 10, are connected only in the inter-cell region without the overlapping portion OP, the area of ​​the connection portion is small, the connection characteristics are deteriorated, and the connection portion is easily separated due to temperature changes, etc.

[0086] In addition, second extension wiring 26 of first solar cell 10a is formed to be separated from second solar cell 10b by a separation distance SD to improve electrical stability. In other words, if first extension wiring 24 of second solar cell 10b is located on the rear surface of second extension wiring 26 of first solar cell 10a, and second extension wiring 26 of first solar cell 10a is not separated by separation distance SD, defects such as a part of second extension wiring 26 of first solar cell 10a being located on the front surface of second solar cell 10b may occur. The separation distance SD can effectively prevent the above-mentioned defects.

[0087] For example, the length L11 of the overlapping portion OP may be greater than or equal to the first end interval ED1. That is, in the first direction, the outer end 24c of the first extension wiring 24 of the second solar cell 10b may be located on the second side S2 of the first solar cell 10a closer to the inside of the first solar cell 10a than the inner end 24b of the first extension wiring 24a of the first solar cell 10a. As an example, in the first solar cell 10a, the first extension wiring 24 (i.e., the overlapping portion OP) of the second solar cell 10b may be located on the second extension wiring 26 of the first solar cell 10a so as to overlap at least one of the first and second electrodes 142, 144 adjacent to the second side S2 of the solar cell 10. And, the length L1 of the first outer portion 24a may be greater than the width W of the first or second extension wiring 24, 26. This is to ensure a sufficient length of the connection portion CP, i.e., the sum of the length L11 of the overlapping portion OP and the length of the inter-cell portion SP (i.e., the length L2 of the second outer portion 26a) (especially, the length L11 of the overlapping portion OP).

[0088] The length L11 of the overlapping portion OP may be greater than the length L2 of the second outer portion 26a. This allows the length of the overlapping portion OP or the area of ​​the connection portion CP to be sufficiently secured, thereby improving the connection characteristics and structural stability of the first extension wiring 24 and the second extension wiring 26, and improving reliability. However, the present invention is not limited thereto. Therefore, the length L11 of the overlapping portion OP may be less than or equal to the length L2 of the second outer portion 26a. In this way, the length of the first outer portion 24a or the first extension wiring 24 can be reduced to reduce material costs, and short circuits that may occur when there is an alignment error in the first outer portion 24a can be prevented. If the length of the overlapping portion OP is long, problems such as the sealant 30 penetrating between the first extension wiring 24 and the second extension wiring 26 stacked on each other in the overlapping portion OP may occur, but if the length L11 of the overlapping portion OP is relatively short, such problems can be effectively prevented.

[0089] The length L2 of the second outer portion 26a of the first solar cell 10b may be greater than or equal to the first end interval ED1. As an example, the length L2 of the second outer portion 26a may be greater than the width W of the first or second extension wiring 24, 26. This is to ensure a sufficient length of the connection portion CP, i.e., the sum of the length L11 of the overlapping portion OP and the length of the inter-cell portion SP (i.e., the length L2 of the second outer portion 26a) (particularly, the length L11 of the overlapping portion OP). Alternatively, the length of the connection portion CP between the first extension wiring 24 and the second extension wiring 26 may be greater than the width W of the first or second extension wiring 24, 26. This is to ensure a sufficient length of the connection portion CP.

[0090] This makes it possible to ensure a sufficient area for the connection portion CP between the first extension wiring 24 and the second extension wiring 26. However, the present invention is not limited to this. When the width W of the first or second extension wiring 24, 26 increases and the area of ​​the connection portion CP increases, the length L2 of the first outer portion 24a and / or the second outer portion 26a, the length of the connection portion CP, etc. can be reduced. As a result, the length L1 of the first outer portion 24a can be reduced to the area of ​​the first or second extension wiring The length L2 of the second outer portion 26a may be smaller than or equal to the width W of the first or second extension wiring 24, 26. Or, the length L2 of the connection portion CP between the first extension wiring 24 and the second extension wiring 26 may be smaller than or equal to the width W of the first or second extension wiring 24, 26.

[0091] For example, the separation distance SD between the outer end 26c of the second extension wiring 26 of the first solar cell 10a and the second solar cell 10b may be 0.5 mm or more. As a result, the second extension wiring 26 and the second solar cell 10b are separated from each other with a stable separation distance SD, so that interference between the second extension wiring 26 and the second solar cell 10b can be minimized. Alternatively, the length L2 of the second outer portion 26a (i.e., the length of the inter-cell portion SP) may be longer than the separation distance SD. As a result, the area of ​​the connection portion CP between the first extension wiring 24 and the second extension wiring 26 (particularly, the area of ​​the inter-cell portion SP) can be maximized to improve structural stability. In particular, the inter-cell portion SP may include a line connection portion AP formed by preliminary or temporary fixing to the first outer portion 24a and the second outer portion 26a. Therefore, the area of ​​the inter-cell portion SP between the second outer portion 26a and the first outer portion 24a can be maximized to improve the process stability of the preliminary or temporary fixing of the first extension wiring 24 and the second extension wiring 26. However, the present invention is not limited to this, and the separation distance SD, the length L2 of the second outer portion 26a, etc. can be variously changed. For example, the length L2 of the second outer portion 26a may be equal to or smaller than the separation distance SD. Various other modifications are also possible.

[0092] In this embodiment, the inter-cell portion SP may be a portion having a linear joint portion AP that is joined before the lamination process by performing a preliminary or temporary fixing process of the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b. That is, in this embodiment, a soldering process may be performed before the lamination process, in which the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b are overlapped in the inter-cell portion SP and heat and pressure are applied thereto. In this manner, the portion formed in contact with each other by the soldering process partially performed in the inter-cell portion SP may constitute the linear joint portion AP.

[0093] In this embodiment, the linear bonded portion AP formed by the soldering process before the lamination process may have a thickness, surface roughness, or shape different from the other portions. In particular, the outer side portion of the conductive coating layer SA of the linear bonded portion AP may have a thickness, surface roughness, or shape different from the outer side portion of the conductive coating layer SA of the other portions. For example, the outer side portion of the conductive coating layer SA of the linear bonded portion A may have a thickness smaller than that of the outer side portion of the conductive coating layer SA of the other portions, the outer side portion of the conductive coating layer SA of the linear bonded portion A may have a surface roughness larger than that of the outer side portion of the conductive coating layer SA of the other portions, or the outer side portion of the conductive coating layer SA of the linear bonded portion A may have a more irregular shape or surface than that of the outer side portion of the conductive coating layer SA of the other portions. This is formed by the pressure applied by the soldering process before the lamination process, and can be seen as a kind of imprint. However, even if the linear bonding portion AP is formed in the soldering process, the conductive coating layer SA of the first and second extension wires 24, 26 may melt entirely in the lamination process, and the linear bonding portion AP may not remain in the final structure. Alternatively, even if the conductive coating layer SA of the first and second extension wires 24, 26 melt entirely in the lamination process, a part of the linear bonding portion AP or a difference in characteristics may remain in the final structure in the soldering process.

[0094] In this embodiment, as described above, the soldering process is performed only on the inter-cell portion SP to perform pre-fixing, and then the overlapping portion OP is fixed by a lamination process, thereby performing pre-fixing or temporary fixation of the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b. Therefore, the process time, process temperature, etc. of the process can be reduced. This will be described in detail later.

[0095] As an example, in this embodiment, the area of ​​the connection portion CP is 3 to 16.5 mm 2 (For example, 6 to 16.5 mm 2 ) may be used. This is limited to a length that maximizes the connection characteristics of the first extension wiring 24 and the second extension wiring 26 and reduces material costs by taking into consideration the length L1 of the first extension wiring 24, the length L2 of the second extension wiring 26, and the width of the overlap of the first extension wiring 24 and the second extension wiring 26 in the width direction. Alternatively, the length L11 of the overlapping portion OP may be 1 to 8 mm (for example, 2 mm to 7 mm, for example, 4 mm or more). This is to maximize the effect of improving the structural stability by the overlapping portion OP. However, the present invention is not limited thereto, and the area of ​​the connection portion CP, the length L11 of the overlapping portion OP, and the like may be variously modified.

[0096] Similarly, on the first side S1 of the first solar cell 10a, the first extension wiring 24 of the first solar cell 10a and the first extension wiring 24 of the first side solar cell adjacent to the first side S1 of the first solar cell 10a (i.e., another second solar cell 10b or the first end solar cell 101) are physically and electrically connected to each other. The above-mentioned connection structure between the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b can also be applied directly to the connection structure between the second extension wiring 26 of the other second solar cell 10b and the first extension wiring 24 of the first solar cell 10b.

[0097] The first end solar cell 101 has, for example, the same arrangement of the first and second electrodes 142, 144 and the first and second extension wirings 242, 262 as the second solar cell 10b, but the first outer portion 242a of the first extension wiring 242 connected to the first bus bar wiring 28a may have a length suitable for connection with the first bus bar wiring 28a. For example, the first outer portion 242a of the first extension wiring 242 connected to the first bus bar wiring 28a may be the same as, greater than, or smaller than the length of the first outer portion 24a of the first extension wiring 24 of the second solar cell 10b. This is because the first outer portion 24a of the second solar cell 10b has a relatively long length L1. As an example, if the first outer portion 242a of the first extension wiring 242 connected to the first bus bar wiring 28a is the same as the length L1 of the first outer portion 242a of the first extension wiring 24 of the second solar cell 10b, the second solar cell 10b can be used as the first end solar cell 101 as is, thereby simplifying the manufacturing process of the solar cell 10.

[0098] And, the second end solar cell 102 has, as an example, the same arrangement of the first and second electrodes 142, 144 and the first and second extension wirings 242, 262 as the first solar cell 10a, but the second outer portion 262a of the second extension wiring 262 connected to the second bus bar wiring 28b may have a length suitable for connection with the bus bar wiring 28a. For example, the second outer portion 262a of the second extension wiring 26 connected to the second bus bar wiring 28a may be longer than the length of the second outer portion 26a of the second extension wiring 26 of the first solar cell 10a. This is in consideration of the fact that the second outer portion 26a of the first solar cell 10a has a relatively small length L2. As an example, if the length of the second outer portion 262a of the second extension wiring 262 connected to the second bus bar wiring 28b is the same as the length L1 of the first outer portion 24a of the first extension wiring 24 in the first solar cell 10a or the second end solar cell 102, the structural stability is improved and the manufacturing process can be simplified because a wiring having the same length can be used as the second extension wiring 262 to form the second end solar cell 102.

[0099] However, the present invention is not limited to this, and the length of the first and second outer portions 242a, 262a of the first and second end solar cells 101, 102 connected to the first and second bus bar wirings 28a, 28b may vary in various ways.

[0100] As described above, adjacent solar cells 10, i.e., the first end solar cell 101 and the first solar cell The connection structures of the cell 10a, the first solar cell 10a and the second solar cell 10b, the second solar cell 10b and the first solar cell 10a, and the first solar cell 10a and the second end solar cell 102 can be repeated to form a solar cell string S. As a result, the first extension wiring 24 and the second extension wiring 26 can be stably connected by repeatedly performing a process of overlapping the first outer portion 24a of one solar cell 10 on the second outer portion 26a of the other solar cell 20 of two adjacent solar cells 10. As a result, the solar cell string S can be formed by a simple manufacturing process. However, the present invention is not limited thereto, and the arrangement of the first solar cell 10a, the second solar cell 10b, the first end solar cell 101, and the second end solar cell 102 can be variously modified.

[0101] In this embodiment, the first and second extension wires 24, 26 (or the first and second wires 22a, 22b) may have a different material, a different melting point, a different yield strength, etc. from the bus bar wire 28. This is because, in this embodiment, there may be a difference between a connection process between the first and second extension wires 24, 26 and a connection process between the first or second extension wires 24, 26 and the bus bar wire 28. More specifically, the first extension wire 24 and the second extension wire 26 are substantially fixed in a lamination process after being connected by preliminary fixing or temporary fixing, and the first or second extension wire 24, 26 (particularly, the first or second extension wire 242, 262) and the bus bar wire 28 are fixed by a soldering process before the lamination process.

[0102] In this embodiment, the first or second extension wiring 24, 26, or the bus bar wiring 28 each includes a conductive material (for example, a metal material). As an example, the first or second extension wiring 24, 26, or the bus bar wiring 28 may include a core (CA) having conductivity including any of gold (Au), silver (Ag), copper (Cu), or aluminum (Al), and a conductive coating layer (for example, a solder layer) (SA) located on the surface of the core (CA) and including tin (Sn) or an alloy including Sn.

[0103] For example, the core (CA) of the first or second extension wiring 24, 26 or the bus bar wiring 28 is made of copper (Cu), which can reduce material costs and provide excellent electrical conductivity.

[0104] The melting point of the first or second extension wiring 24, 26 may be lower than the melting point of the bus bar wiring 28. In this specification, the melting point of the first or second extension wiring 24, 26 may mean the melting point of the conductive coating layer SA of the first or second extension wiring 24, 26, and the melting point of the bus bar wiring 28 may mean the melting point of the conductive coating layer SA of the bus bar wiring 28. As an example, the melting point of the first or second extension wiring 24, 26 may be 120°C to 150°C, and the melting point of the bus bar wiring 28 may be 150°C to 180°C (more than 150°C and less than 180°C). Alternatively, the conductive coating layer SA of the first or second extension wiring 24, 26 may contain a tin-bismuth alloy (SnBi), and the conductive coating layer SA of the bus bar wiring 28 may contain a tin-lead alloy (SnPb). In the embodiment, the melting point, material, etc. are determined in consideration of the connection process between the first and second extension wirings 24, 26, and the connection process between the first or second extension wirings 24, 26 and the bus bar wiring 28. However, the present invention is not limited to this, and various modifications are possible.

[0105] Also, the first extension wiring 24 and the second extension wiring 26 may have a relatively high yield strength considering that they have an overlapping portion OP. For example, the yield strength of the first or second extension wiring 24, 26 may be 80 to 170 MPa (more specifically, 110 MPa or more, for example, 130 MPa or more). To this end, a process for increasing the yield strength of the first or second extension wiring 24, 26 may be additionally performed before attaching the first or second extension wiring 24, 26 to the solar cell 10. This will be described in more detail later in the manufacturing method of the solar cell panel 100. That is, the first extension wiring 24 overlaps a part of the adjacent solar cell 10. Since the overlapping portion OP is provided, the solar cell 10 has a relatively high yield strength, thereby minimizing deformation of the solar cell 10, and the first extension wiring 24 located on the second extension wiring 26 at the overlapping portion OP can be prevented from lifting up.

[0106] The yield strength of the busbar wiring 28 may be lower than or equal to the yield strength of the first or second extension wiring 24, 26. In particular, the yield strength of the busbar wiring 28 may be lower than the yield strength of the first or second extension wiring 24, 26. For example, the yield strength of the busbar wiring 28 may be 70 to 120 MPa. This is because the busbar wiring 28 is not a wiring directly connected to the solar cell 10, and therefore a separate process for increasing the yield strength is not required, or the degree of increase in the yield strength is not required. The yield strength of the busbar wiring 28 may be relatively low so that the busbar wiring 28 can be easily connected to the first or second extension wiring 24, 26 (i.e., the first or second extension wiring 24, 26) by a soldering process. However, the present invention is not limited thereto, and the yield strength of the busbar wiring 28 may be higher than the yield strength of the first or second extension wiring 24, 26. Various other modifications are possible.

[0107] According to this embodiment, the first and second extension wires 24, 26 having different lengths L1, L2 corresponding to each solar cell 10 are provided to ensure a sufficient area of ​​the connection portion CP (especially the area of ​​the overlapping portion OP), thereby improving connection characteristics and structural stability. Here, the first and second extension wires 24, 26 extend parallel to each other and are directly connected to each other, and have a simple structure without any wiring intersecting therewith, which can reduce material costs and simplify the process. As a result, the reliability and productivity of the solar cell panel 100 can be improved.

[0108] The manufacturing method of the above-mentioned solar cell panel 100 will be described below with reference to FIG. 7 together with FIGS. 1 to 6.

[0109] FIG. 7 is a flow chart showing a method for manufacturing a solar panel 100 according to an embodiment of the present invention.

[0110] First, in the solar cell manufacturing step (ST10), a plurality of solar cells 10 are manufactured as shown in Fig. 2. Various known processes can be applied to the manufacturing process of the solar cells 10. Then, the connection members 32 and the insulating members 34 are formed according to a predetermined pattern. Various known processes can be applied to the manufacturing process of the solar cells 10 and the forming of the connection members 32 and the insulating members 34.

[0111] Next, in the wiring material preparation step (ST20), the wiring material 22 to be attached to the solar cell 10 is prepared. In this embodiment, the wiring material preparation step (ST20) includes a yield strength increasing process for increasing the yield strength of the wiring material 22. Here, the yield strength increasing process is a treatment process for making the first and second extension wires 24, 26 attached to each solar cell 10 have a relatively high yield strength. As such, since the first and second extension wires 24, 26 have a relatively high yield strength, deformation of the solar cell 10 can be minimized, and the lifting phenomenon of the first extension wire 24 located on the second extension wire 26 at the overlapping portion OP can be prevented.

[0112] Here, the yield strength increasing process can be performed in various ways, for example, by increasing the yield strength by stretching the base wire wound around a spool during the unwinding process. At this time, the first and second extension wires 24, 26 can be processed to have a desired shape, pattern, etc. Then, after the yield strength increasing process, the first and second extension wires 24, 26 can be cut to a certain length to manufacture the desired yield strength and length. By performing the yield strength increasing process by stretching the base wire during the unwinding process, the yield strength can be increased without adding any additional process. This allows the process to be simplified.

[0113] For example, the base wiring may have a yield strength of 50 to 120 MPa, and the first and second extension wirings 24, 26 that have undergone the yield strength increasing process may have a yield strength of 80 to 170 MPa. As an example, the yield strength may be increased by 10 to 100 MPa (e.g., 20 to 50 MPa) in the yield strength increasing process. If the yield strength exceeds 100 MPa (e.g., 50 MPa) in the yield strength increasing process, the process may become difficult and other properties besides yield strength may deteriorate, resulting in reduced reliability.

[0114] Next, in the wiring member attachment step (ST30), the first extension wiring 24 and the second extension wiring 26 corresponding to each solar cell 10 are attached using a connection member 32. At this time, the arrangement and length of the first extension wiring 24 and the second extension wiring 26 corresponding to each solar cell 10 may be attached taking into consideration the arrangement and length of the first solar cell 10a, the second solar cell 10b, the first end solar cell 101, and the second end solar cell 102. That is, the wiring member 22 is attached on the multiple solar cells 10, but the arrangement and length of the first extension wiring 24 and the second extension wiring 26 may be different from each other to correspond to the first solar cell 10a, the second solar cell 10b, the first end solar cell 101, and the second end solar cell 102.

[0115] After the wiring 22 is attached onto each solar cell 10, an intra-cell fixing member may be further disposed on the rear surface of the solar cell 10 to cover the solar cell 10 and the wiring 22 for more stable fixation. The intra-cell fixing member may have various materials or shapes, and may be, for example, an insulating tape including an adhesive or sticky material. As an example, the intra-cell fixing member may have a certain width in the first direction and a shape that extends long in the second direction so as to cover a part of the solar cell 10 and the wiring 22. As the fixing member 29 described with reference to Figs. 8 and 9 can be used as it is, a detailed description will be omitted.

[0116] Next, in the solar cell arranging step (ST40), the solar cells 10 can be arranged in a desired order, including a rotational insertion process. That is, some of the solar cells 10 with the wiring members 22 attached thereto can be inserted as is, and the other solar cells can be rotated 180 degrees and inserted to form a solar cell string S.

[0117] For example, the first end solar cell 101 can be rotated 180 degrees and then inserted. Then, the first solar cell 10a is inserted as is, and the second solar cell 10b is rotated 180 degrees and then inserted. This process is repeated multiple times. Then, the second end solar cell 120 is inserted as is. This completes the arrangement of the solar cells 10 that make up the solar cell string S.

[0118] In this case, the first extension wire 24 of the solar cell 10 inserted later is positioned on the second extension wire 26 of the solar cell 10 inserted earlier among two adjacent solar cells 10 to form a connection portion CP. In this case, the first extension wire 24 of the solar cell 10 inserted later is disposed to overlap the solar cell 10 inserted earlier to form an overlap portion OP.

[0119] More specifically, the first extension wiring 24 of the first solar cell 10a is disposed on the rear surface of the second extension wiring 262 of the first end solar cell 101. As an example, the first extension wiring 24 of the first solar cell 10a is directly connected to the rear surface of the second extension wiring 26 within the first end solar cell 101, and is positioned in a state where an overlapping portion OP is formed.

[0120] Then, the first extension wiring 24 of the second solar cell 10b is positioned on the rear surface of the second extension wiring 26 of the first solar cell 10a. Within solar cell 10a, the first extension wiring 24 is directly connected to the rear surface of second extension wiring 26 to form an overlapping portion OP. Then, the first extension wiring 24 of another first solar cell 10a is positioned on the rear surface of second extension wiring 26 of second solar cell 10b. As an example, the first extension wiring 24 of another first solar cell 10a is directly connected to the rear surface of second extension wiring 26 within second solar cell 10b to form an overlapping portion OP. By repeating such a process, a plurality of first solar cells 10a and a plurality of second solar cells 10b are arranged alternately.

[0121] Then, the first extension wiring 24 of the second end solar cell 102 is positioned on the rear surface of the second extension wiring 26 of the second solar cell 10b. As an example, the first extension wiring 24 of the second end solar cell 102 is directly connected to the rear surface of the second extension wiring 26 within the second solar cell 10b to form an overlapping portion OP.

[0122] Next, in the fixing portion forming step (ST50), a fixing portion is formed to fix the first and second extension wirings 24, 26 provided on two adjacent solar cells 10. Here, the fixing portion may be formed in an area including at least a portion of the connection portion CP.

[0123] In this embodiment, the fixing portion may be formed of a line joint portion AP partially formed in the inter-cell portion SP. The line joint portion AP may be formed by a soldering process in which heat and pressure are applied, and more specifically, may be formed by a preliminary soldering process in which the first and second extension wirings 24, 26 are preliminarily fixed. In this embodiment, the first and second extension wirings 24, 26 of adjacent solar cells 10 are joined in a lamination process, so the line joint portion AP only needs to prevent distortion, deformation, etc. of the first and second extension wirings 24, 26 before the lamination process. Thus, the temperature of the preliminary soldering process in which the line joint portion AP is formed may be lower than the temperature of the soldering process in which the multiple wiring parts 20 are connected (for example, the soldering process in which the first or second extension wirings 242, 262 and the bus bar wiring 28 are connected).

[0124] As an example, the temperature of the pre-soldering process may be 300 to 400°C, and the temperature of the soldering process for connecting the plurality of wiring parts 20 (e.g., the soldering process for connecting the first or second extension wiring 242, 262 to the bus bar wiring 28) may be 400 to 500°C (for example, more than 400°C and less than 500°C). Although the temperature of the pre-soldering process is relatively low, it is higher than the melting points of the first and second extension wirings 24, 26 in order to increase the process speed. However, the present invention is not limited thereto, and various modifications are possible.

[0125] Such a pre-soldering process can be performed by various methods and devices, and as one example, it can be performed by using a pulse heater. That is, the linear bonding portion AP can be formed by applying heat from the pulse heater while applying pressure to the inter-cell portion SP. The pulse heater has a high temperature rise rate and can stably form the linear bonding portion AP. As described above, the linear bonding portion AP can have a different thickness, surface roughness, or shape from other portions, and as one example, it can have an indentation.

[0126] Next, in the busbar wiring attachment step (ST60), a plurality of solar cell strings S may be arranged in the second direction, and ends of the solar cell strings S may be alternately connected by busbar wiring 28. As an example, in a solar cell string S adjacent to one solar cell string S in the second direction, a first end solar cell 101 and a second solar cell 102 may be alternately positioned in the second direction. Then, a first busbar wiring 28a connects a first end solar cell 101 of one solar cell string S to a second end solar cell 102 of another solar cell string S located on one side in the second direction, and a second busbar wiring 28b connects a second end solar cell 102 of one solar cell string S to another solar cell string S located on one side in the second direction. The bus bar wiring 28 may be connected to the first end solar cell 101 of the solar cell 102 at the first end. More specifically, the bus bar wiring 28 may be extended in a second direction intersecting with the first extension wiring 242 of the solar cell 101 at the first end and the second extension wiring 262 of the solar cell 102 at the second end, and fixed by a soldering process at an overlapping portion thereof. In this way, a plurality of solar cell strings S connected in series may be formed. However, the present invention is not limited thereto, and various modifications are possible.

[0127] In this embodiment, the bus bar wiring 28 may not be subjected to a yield strength increasing process, or may be subjected to a yield strength increasing process so that the bus bar wiring 28 has a yield strength that is lower than or equal to that of the first and second extension wirings 24, 26. Since the bus bar wiring 28 is not directly connected to the solar cell 10, it is relatively easily deformed, and peeling of the bus bar wiring 28 can be prevented.

[0128] And, the busbar wiring attachment step (ST60) is performed by a soldering process. As described above, the temperature of the preliminary soldering process for forming the wire bonding portion AP may be lower than the temperature of the soldering process for performing the busbar wiring attachment step (ST60), and the temperature of the soldering process for performing the busbar wiring attachment step (ST60) may be 400 to 500°C (for example, more than 400°C and less than 500°C). This allows the busbar wiring 28 and the first and second extension wirings 24, 26 to be completely soldered at the overlapping portions.

[0129] The busbar wiring attachment step (ST60) may form a junction portion having a different thickness, surface roughness, or shape from other portions of the first or second extension wiring 24, 26 and the busbar wiring 28. The junction portion may have similar characteristics to the line junction portion AP.

[0130] For example, the joint portion may have a thickness, surface roughness, or shape different from the other portions. In particular, the outer side portion of the conductive coating layer SA at the joint portion may have a thickness, surface roughness, or shape different from the outer side portion of the conductive coating layer SA at the other portions. For example, the outer side portion of the conductive coating layer SA at the joint portion may have a thickness smaller than that of the outer side portion of the conductive coating layer SA at the other portions, the outer side portion of the conductive coating layer SA at the joint portion may have a surface roughness larger than that of the outer side portion of the conductive coating layer SA at the other portions, or the outer side portion of the conductive coating layer SA at the joint portion may have a more irregular shape or surface than that of the outer side portion of the conductive coating layer SA at the other portions. This is formed by the pressure applied in the soldering process before the lamination process, and may be seen as a kind of imprint.

[0131] Next, in the lamination step (ST70), the first cover member 42, the first sealant 30a, the multiple solar cell strings S connected by bus bar wiring 28, the second sealant 30b, and the second cover member 44 are integrated using heat and pressure to manufacture the solar cell panel 100.

[0132] More specifically, the first cover member 110, the first sealant 30a, the solar cell strings S connected by the bus bar wiring 28, the second sealant 30b, and the second cover member 44 are sequentially placed on the work table of the lamination device to form a laminated structure. As an example, the first cover member 42 made of a glass substrate can be placed on the work table of the lamination device, and the first sealant 30a, the solar cell strings S connected by the bus bar wiring 28, the second sealant 30b, and the second cover member 44 can be sequentially placed thereon, but the present invention is not limited to this and various modifications are possible. Next, a lamination process is performed in which heat and pressure are applied to the laminated structure. Then, the first sealant 30a and the second sealant 30b are melted and hardened, and are compressed by pressure, so that the sealant 30 can completely fill the space between the first cover member 42 and the second cover member 44. As a result, the sealant 30 can be completely filled with the space between the first cover member 42 and the second cover member 44. 0, the space between the first cover member 42 and the second cover member 44 can be completely filled, and the solar cell strings S connected by the bus bar wiring 28 can be sealed. In this way, a solar cell panel 100 having a desired shape can be manufactured.

[0133] The lamination process may be performed at a temperature at which the first and second sealants 30a and 30b can be melted, for example, at 160 to 180°C. In this embodiment, the melting point of the first or second extension wire 24 and 26 may be lower than the temperature of the lamination process, for example, 120 to 150°C. As a result, the conductive coating layer SA can be melted as a whole at the connection portion CP of the first and second extension wires 24 and 26 and bonded to each other. As a result, since a process of soldering the entire overlapping portion CP of the first and second extension wires 24 and 26 is not required before the lamination process, the preliminarily fixed portion (wire joint portion AP or fixing member (reference number 29 in FIG. 9)) can be preliminarily fixed by a soldering process for preliminary or temporary fixing.

[0134] As described above, since the conductive coating layers SA of the first and second extension wirings 24, 26, which have a melting point lower than the temperature of the lamination process, are melted as a whole in the lamination process, the linear joint portion AP disappears after the lamination process, or even if it remains, the difference in shape from other portions is not large. Also, since the portions where the conductive coating layers SA of the first and second extension wirings 24, 26 contact each other in the linear joint portion AP are melted as a whole, the conductive coating layers SA of the first and second extension wirings 24, 26 are integrated and no boundary is provided between them, as shown in the enlarged circle of Fig. 6. On the other hand, since the conductive coating layer SA of the bus bar wiring 28, which has a relatively high melting point, is not melted in the lamination process, the joint portion or impression formed on the conductive coating layer SA of the bus bar wiring 28 may remain as it is after the lamination process, or the difference in shape from other portions may be larger than that of the linear joint portion AP. In addition, since the conductive coating layer SA of the bus bar wiring 28 and the conductive coating layer SA of the first or second extension wiring 24, 26 are made of different materials, a boundary remains between the conductive coating layer SA of the bus bar wiring 28 and the conductive coating layer SA of the first or second extension wiring 24, 26 after the lamination process.

[0135] According to the manufacturing method of the present embodiment, a solar cell panel 100 having the desired structure and arrangement of the solar cells 10 and wiring part 20 can be manufactured in a simple process by forming a plurality of solar cells 10, some of which are inserted as they are, and the other parts are rotated and inserted. In addition, the first and second extension wires 24, 26 extending in parallel are connected to each other to have an overlapping portion CP, and only a fixing part for preliminary fixing needs to be formed before the lamination process, so that the process can be further simplified. In addition, the yield strength increasing process can be performed in the wiring material preparation step (ST20) so that the first and second extension wires 24, 26 have the desired characteristics. As a result, a solar cell panel 100 having excellent reliability can be manufactured in a simple process.

[0136] In the above description, the solar cell arranging step (ST40) performed after the wiring member attachment step (ST30) includes a rotating process. However, the rotating process may be performed at other steps. For example, a rotating process of some solar cells 10 may be performed before the wiring member attachment step (ST30) and then the wiring member 22 may be attached. Various other variations are possible.

[0137] In this embodiment, the fixing portion forming step (ST50) is performed after the solar cell arranging step (ST40). At this time, the fixing portion forming step (ST50) may be performed after all the solar cells 10 corresponding to the solar cell string S are arranged in the solar cell arranging step (ST40). Alternatively, the fixing portion forming step (ST50) may be performed after all the solar cells 10 corresponding to the solar cell string S are arranged in the solar cell arranging step (ST40). It is also possible to perform the fixing portion forming step (ST50) during the process of arranging the corresponding plurality of solar cells 10. That is, after overlapping the first and second extension wires 24, 26 of the two solar cells 10, a process of forming the fixing portions of the first and second extension wires 24, 26 is performed, and this process can be repeatedly performed.

[0138] Hereinafter, a solar cell panel and a manufacturing method thereof according to another embodiment of the present invention will be described in detail. A detailed description of parts that are the same as or very similar to the above description will be omitted, and only the different parts will be described in detail. Also, the above embodiment or a modified example thereof and the following embodiment or a modified example thereof may be combined together and fall within the scope of the present invention.

[0139] FIG. 8 is a plan view showing first and second solar cells included in a solar panel according to another embodiment of the present invention, and FIG. 9 is a cross-sectional view of the solar panel corresponding to line IX-IX in FIG.

[0140] As shown in Figures 8 and 9, in this embodiment, the fixing portion that fixes the second extension wiring 26 of the first solar cell 10a and the first extension wiring 24 of the second solar cell 10b includes a fixing member 29 that covers at least a portion of the connection portion.

[0141] Here, the fixing member 29 includes various materials capable of fixing the first and second extension wires 24, 26 and the first and / or second solar cells 10a, 10b. As an example, the fixing member 29 may be made of an insulating tape including a base member 29a and an adhesive layer 29b located on one surface of the base member 29a and connected to the wiring unit 20. When the fixing member 29 is made of tape in this manner, the fixing member 29 can be fixed at a desired position by a simple process of attaching the tape.

[0142] The base member 29a plays a role in increasing the strength of the fixing member 29. As an example, the base member 29a is mainly made of resin, and includes, for example, polyethylene (PE), polyethylene terephthalate (PET), and the like.

[0143] The adhesive layer 29b may include an adhesive or cohesive material and be fixed to the wiring member 22 by adhesion or adhesion. Here, adhesion means that two layers are completely physically attached to each other and at least one layer is damaged when the two layers are separated, and cohesion means that the two layers are fixed so that they can be attached to or separated from each other without being damaged by a certain physical force at room temperature. When the adhesive layer 29b includes an adhesive material, it may have better fixing properties. When the adhesive layer 29b includes a cohesive material, the fixing member 29 may be easily separated when the fixing member 29 is attached incorrectly or when the solar cell 10 is replaced or repaired. For example, the adhesive layer 29b may include an epoxy-based, an acrylic-based, or a silicone-based adhesive or cohesive material.

[0144] At this time, the thickness of the base member 29a may be greater than or equal to the thickness of the adhesive layer 29b. This can improve the strength of the fixing member 29. For example, the thickness of the base member 29a may be 100 um or less (for example, 50 um to 70 um), and the thickness of the adhesive layer 29b may be 100 um or less (for example, 10 um to 30 um). However, the present invention is not limited thereto, and the thickness of the base member 29a and the thickness of the adhesive layer 29b may have various values.

[0145] Also, the fixing member 29 does not have to be made of insulating tape, but may be formed by applying an adhesive or sticky material.

[0146] In this embodiment, the fixing member 29 may be formed on the rear surface of the first solar cell 10a and / or the second solar cell 10b so as to cover the connection portion CP (particularly, the overlapping portion OP) of the first and second extension wirings 24, 26. As an example, the fixing member 29 is adhered to the rear surfaces of the first and second extension wirings 24, 26 on the rear surface of the first solar cell 10a and / or the second solar cell 10b. This can simplify the fixing structure.

[0147] 8, the fixing member 29 may be formed over the entire first and second solar cells 10a, 10b while continuing long in a direction intersecting (for example, perpendicular to) the extension direction of the first and second extension wires 24, 26. In this case, the first and second extension wires 24, 26 may be stably fixed.

[0148] However, the present invention is not limited thereto. As a modified example, as shown in FIG. 10, a fixing member 29 may be provided to correspond to the first solar cell 10a where the overlapping portion OP of the first and second extension wirings 24, 26 is located among the first and second solar cells 10a, 10b. The planar shape of the fixing member 29 may also be modified in various ways. In addition, in FIG. 8 to FIG. 10, the fixing member 29 is located on the rear surface of the first and second extension wirings 24, 26, but the present invention is not limited thereto. For example, the fixing member 29 may be located on the front surface of the first and second extension wirings 24, 26, or on both the front surface and the rear surface. When the fixing member 29 is located on the front surface of the first and second extension wirings 24, 26, it may have a certain color and contribute to improving the appearance of the solar cell panel 100. For example, the fixing member 29 may be configured as a shielding member having a shape corresponding to the inter-cell region between the first and second solar cells 10a, 10b and an opaque color similar to that of the solar cells 10 to prevent the boundary surface of the solar cells 10 from being clearly recognized. Various other modifications are possible.

[0149] Although the above description has been based on the first and second solar cells 10a, 10b, the above description can be applied to any two solar cells adjacent to each other in the plurality of solar cells 10, including the first and second end solar cells.

[0150] In the manufacturing method of the solar cell panel 100 including the first and second solar cells 10a, 10b described above, the fixing portion forming step (ST50) may be performed by attaching a fixing member 29 onto the first and / or second solar cells 10a, 10b and the first and second extension wires 24, 26.

[0151] The present invention will be described in more detail below based on experimental examples. However, the experimental examples are merely for illustrating the present invention, and the present invention is not limited thereto.

[0152] Example 1 A plurality of solar cells as shown in FIG. 2 were manufactured, an insulating member and a connecting member were formed on each solar cell, and a pre-soldering process was performed at a temperature of 300° C. to attach first and second extension members. The first and second extension wires of two adjacent solar cells were connected to form a solar cell string so as to have a connecting portion, and a soldering process was performed at a temperature of 450° C. to attach bus bar wiring to the solar cell string. The first cover member, the first sealant, the solar cell string to which the bus bar wiring was attached, the second sealant, and the second cover member were sequentially stacked, and a lamination process was performed in which pressure was applied at a temperature of 180° C. to complete the manufacture of a solar panel.

[0153] Here, the first and second extension members were formed by performing a yield strength increasing process on the base wire having a yield strength of 80 MPa, and the yield strength of the first and second extension members was 110 MPa. and the second extension wiring contained a tin-bismuth alloy and had a melting point of 120° C., and the bus bar wiring contained a tin-lead alloy and had a melting point of 150° C. The connection portions of the first and second extension wiring were positioned to have an overlapping portion that overlapped one solar cell, and the length of the overlapping portion was 3 mm.

[0154] Comparative Example 1 A solar cell panel was manufactured in the same manner as in Example 1, except that the connection portions of the first and second extension wires did not have an overlapping portion overlapping a solar cell, but were located only in the separation area between adjacent solar cells, and the connection portions had a length shorter than the separation distance.

[0155] Photographs and electroluminescence (EL) photographs of a portion of a solar cell panel after a thermal cycle (TC) test was repeated 200 times on the solar cell panel according to Example 1 are attached in Figures 11 and 12, respectively, and photographs and electroluminescence photographs of a portion of a solar cell panel after a thermal cycle test was repeated 200 times on the solar cell panel according to Example 1 are attached in Figures 13 and 14, respectively.

[0156] Referring to Fig. 11, it can be seen that the first and second extension wirings are stably connected in the solar cell panel according to Example 1. Referring to Fig. 12, it can be seen that in the solar cell panel according to Example 1, no shadows are generated in the solar cell even in the electroluminescence photograph, and from this point, it can be seen that the first and second extension wirings do not float up even after the temperature cycle test. In this way, in Example 1 having the overlapping portion, the first and second extension wirings are stably connected and the first and second extension wirings do not float up, and therefore it can be seen that it has excellent reliability.

[0157] On the other hand, referring to Fig. 13, it can be seen that in the solar cell panel according to Comparative Example 1, there are parts where the first and second extension wires are not stably connected. Referring to Fig. 14, in the solar cell panel according to Comparative Example 1, there is no shadow that looks darker than other parts in the solar cell in the electroluminescence photograph, and from this, it can be seen that the lifting phenomenon of the first and second extension wires occurred even after the temperature cycle test. In this way, in Comparative Example 1 which does not have an overlapping part, the first and second extension wires are not stably connected, or the lifting phenomenon of the first and second extension wires occurs, which may reduce reliability.

[0158] The above-mentioned features, structures, effects, etc. are included in at least one embodiment of the present invention, and are not necessarily limited to only one embodiment. Furthermore, the features, structures, effects, etc. exemplified in each embodiment can be combined or modified in other embodiments by a person having ordinary skill in the art to which the embodiment belongs. Therefore, the contents related to such combinations and modifications should be interpreted as being included in the scope of the present invention.

Claims

1. fabricating a plurality of solar cells including first and second solar cells electrically connected to each other; preparing a wiring material including a yield strength increasing process for increasing the yield strength; attaching a first extension wire and a second extension wire to each of the plurality of solar cells; an arrangement step of inserting the first solar cell as it is, rotating the second solar cell by 180 degrees, and positioning the first extension wiring of the second solar cell on the second extension wiring of the first solar cell so as to overlap a portion of the first solar cell; forming a fixing portion at least in a portion of a connection portion where the first extension wiring and the second extension wiring are overlapped and connected to configure a solar cell string; and a lamination step of stacking the first cover member, the first encapsulant, the solar cell string, the second encapsulant, and the second cover member and integrating them by applying heat and pressure; the connection portion includes an inter-cell portion located in an inter-cell region between the first solar cell and the second solar cell, The method for manufacturing a solar cell panel, wherein in the forming of the fixing portion, the fixing portion is formed by partially soldering the inter-cell portion to form the fixing portion configured with a line joint portion.

2. fabricating a plurality of solar cells including first and second solar cells electrically connected to each other; Preparing wiring material; attaching a first extension wire and a second extension wire to each of the plurality of solar cells; an arrangement step of inserting the first solar cell as it is, rotating the second solar cell by 180 degrees, and positioning the first extension wiring of the second solar cell on the second extension wiring of the first solar cell so as to overlap a portion of the first solar cell; forming a fixing portion in at least a part of a connection portion where the first extension wiring and the second extension wiring are overlapped and connected in an inter-cell region between the first solar cell and the second solar cell to configure a solar cell string; and a lamination step of stacking the first cover member, the first encapsulant, the solar cell string, the second encapsulant, and the second cover member and integrating them by applying heat and pressure; A method for manufacturing a solar panel comprising the steps of:

3. the connection portion includes an inter-cell portion located in an inter-cell region between the first solar cell and the second solar cell, The method of claim 2 , wherein in the forming of the fixing portion, the fixing portion is formed by partially soldering the inter-cell portion to form the fixing portion having a linear joint portion.

4. 3. The method for manufacturing a solar cell panel according to claim 1 or 2, wherein in the step of forming the fixing portion, a fixing member made of an insulating tape is attached onto at least a portion of an overlapping portion formed by overlapping the first solar cell and the connection portion with a portion of the first solar cell.

5. 2. The method of claim 1, wherein in the yield strength increasing step, the base wire having a yield strength of 50 to 120 MPa is pulled in the unwinding step so that the first and second extension wires have a yield strength of 80 to 170 MPa.

6. A method for manufacturing a solar cell panel as described in claim 2, wherein the step of preparing the wiring material includes a yield strength increasing process for increasing the yield strength of the wiring material.

Citation Information

Patent Citations

  • Solar cell panel, and apparatus and method for attaching wiring material of solar cell panel

    JP2017098548A

  • Solar cell interconnection

    JP2017528919A

  • Solar cell panel

    JP2019036733A

  • Double-sided light-receiving solar cell module

    JP2019117860A

  • Solar cell module

    US20110132425A1