METHOD FOR MANUFACTURING SOLAR CELL MODULE
20170148941 ยท 2017-05-25
Assignee
Inventors
Cpc classification
H10F19/80
ELECTRICITY
Y02E10/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B32B37/10
PERFORMING OPERATIONS; TRANSPORTING
B29C65/40
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Embodiments include an exemplary method for manufacturing a solar cell module that includes: a front surface-side transparent protective member having a curved shape; a back surface-side protective member having a curved shape corresponding to the curved shape of the front surface-side transparent protective member; and a filler layer disposed between the front surface-side transparent protective member and the back surface-side protective member, and seals a solar cell inside. The exemplary method may comprise: preparing the front surface-side transparent protective member having the curved shape and the back surface-side protective member having the curved shape; and manufacturing the solar cell module by disposing the solar cell and the filler layer between the front surface-side transparent protective member and the back surface-side protective member, and by pressing the front surface-side transparent protective member, the back surface-side protective member, the solar cell, and the filler layer.
Claims
1. A method for manufacturing a solar cell module including: a front surface-side transparent protective member having a curved shape; a back surface-side protective member having a curved shape corresponding to the curved shape of the front surface-side transparent protective member; and a filler layer disposed between the front surface-side transparent protective member and the back surface-side protective member, and that seals a solar cell inside, the method comprising: preparing the front surface-side transparent protective member having the curved shape and the back surface-side protective member having the curved shape; and manufacturing the solar cell module by disposing the solar cell and the filler layer between the front surface-side transparent protective member and the back surface-side protective member, and by pressing the front surface-side transparent protective member, the back surface-side protective member, the solar cell, and the filler layer.
2. The method according to claim 1, wherein the back surface-side protective member comprises a flexible sheet material.
3. The method according to claim 1, wherein when the pressing is performed, the solar cell module is heated to cause a peripheral portion of the solar cell module in a plan view to have a higher temperature than a central portion of the solar cell module in the plan view.
4. The method according to claim 1, wherein each of the curved shapes comprises a three-dimensionally curved shape.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0012] The figures depict one or more implementations in accordance with the present teaching, by way of examples only, not by way of limitations. In the figures, like reference numerals refer to the same or similar elements.
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0021] The following describes a method for manufacturing a solar cell module according to one or more embodiments, with reference to the drawings. However, the following one or more embodiments are merely an example and does not limit the scope of the present disclosure. The numerical values, shapes, materials, structural elements, the arrangement and connection of the structural elements, etc. shown in the following one or more embodiments are mere examples, and therefore do not limit the scope of the present disclosure. Structural elements having essentially the same functions may share the same reference numbers in the figures.
[0022]
[0023] A first principal surface 11 on a front surface side of front the surface-side protective member 10 and a second principal surface 12 on a back surface side of the front surface-side protective member 10 each have a curved shape bulging toward the front surface side. In addition, a first principal surface 21 on a front surface side of the back surface-side protective member 20 and a second principal surface 22 on a back surface side of the back surface-side protective member 20 each also have a curved shape bulging toward the front surface side. The curved shape of the back surface-side protective member 20 corresponds to the curved shape of the front surface-side protective member 10. Each solar cell of the solar cells 31 is electrically connected via a wiring member 32 in the filler layer 30.
[0024]
[0025] In an example, the front surface side transparent protective member 10 may include a glass plate or a transparent resin plate such as an acryl plate and a polycarbonate plate. The filler layer 30 may include a crosslinking resin such as an ethylene-vinyl acetate (EVA) copolymer or a non-crosslinking resin such as polyolefin.
[0026] In one or more embodiments, the back surface-side protective member 20 includes a flexible sheet material. Examples of the flexible sheet material include a resin sheet material such as polyvinylidene fluoride (PVF), polyethylene terephthalate (PET), and polytetrafluoroethylene (PTFE). In addition, the sheet flexible material may be formed by laminating metal foils such as aluminum foils. A thickness of the back surface-side protective member 20 is in a range of from 50 m to 350 m, and more specifically in a range of from 130 m to 250 m.
[0027]
[0028]
[0029] First, front surface-side transparent protective member 10 having a curved shape and back surface-side protective member 20 having a curved shape are prepared (Step S11).
[0030] Specifically, front surface-side transparent protective member 10 having the curved shape is prepared. Front surface-side transparent protective member 10 having the curved shape may be produced by bending a glass plate or a resin plate having a plate shape, by heat, cutting, or like mechanism or operation. In addition, the front surface-side transparent protective member 10 having the curved shape may be produced by pressing the front surface-side transparent protection member 10 using a metal mold, or like mechanism or operation. The back surface-side transparent protective member 20 having the curved shape is also prepared.
[0031] Next, the solar cell module 1 is manufactured by disposing the solar cells 31 and the filler layer 30 between the front surface-side transparent protective member 10 and the back surface-side protective member 20, and pressing the front surface-side transparent protective member 10, the back surface-side protective member 20, the solar cells 31, and the filler layer 30 (Step S12).
[0032] Specifically, a crosslinking resin or non-crosslinking resin sheet which is to be filler layer 30 is laminated on front surface-side transparent protective member 10, and solar cells 31 electrically connected via wiring member 32 are disposed on the crosslinking resin or non-crosslinking resin sheet. Another crosslinking resin or non-crosslinking resin sheet which is to be filler layer 30 is disposed on solar cells 31.
[0033] Next, as illustrated in
[0034] In one or more embodiments, unlike the conventional method illustrated with reference to
[0035] A heating temperature for pressing may be a temperature at which the back surface-side protective member 20 is not deteriorated by heat. Specifically, the temperature is in a range of from 100 C. to 240 C., and more specifically in a range of from 120 C. to 180 C. Moreover, the solar cell module 1 may be heated to cause a peripheral portion 1b of the solar cell module 1 in a planar direction (x direction and y direction) to have a higher temperature than a central portion 1a of the solar cell module 1 in the planar direction. Stated differently, the solar cell module 1 may be heated to cause the peripheral portion 1b of the solar cell module 1 in a plan view to have a higher temperature than the central portion 1a of the solar cell module 1 in the plan view. The difference in temperature between the peripheral portion 1b and central portion 1a is in a range of from 20 C. to 50 C., and more specifically in a range of from 40 C. to 50 C. Setting such a difference in temperature allows peripheral portion 1b to actively expand and contract by heat to easily fit the curved shape, which makes it possible to easily perform processing.
[0036]
[0037]
[0038] As illustrated with reference to
[0039] Although the exemplary three-dimensionally curved shape has been illustrated and described as a curved shape that curves in the x direction and the y direction in one or more embodiments, the present disclosure is not so limited. For example, a three-dimensionally curved shape that curves only in the x direction or only the y direction is possible.
[0040] Moreover, although the exemplary curved shape has been illustrated and described as a curved shape bulging toward the front surface side(convex shape) of solar cell module 1, the present disclosure is not so limited. For example, a curved shape bulging toward the back surface side (concave shape) of solar cell module 1 may be possible within the scope of one or more embodiments.
[0041] While the foregoing has described one or more embodiments and/or other examples, it is understood that various modifications may be made thereto and that the subject matter disclosed herein may be implemented in various forms and examples, and may be applied in numerous applications, only some of which have been described herein. Thus, it is intended that embodiments be bounded by the following claims and any and all equivalents, modifications and variations that fall within the scope thereof based on the present teachings.