PHOTOVOLTAIC MODULE
20180047863 ยท 2018-02-15
Assignee
Inventors
- Joonho Jeon (Seoul, KR)
- Jungguen Kim (Seoul, KR)
- Yong SONG (Seoul, KR)
- Jeonghun Woo (Seoul, KR)
- Eonjoo Hwang (Seoul, KR)
Cpc classification
B32B17/10036
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10018
PERFORMING OPERATIONS; TRANSPORTING
B32B27/06
PERFORMING OPERATIONS; TRANSPORTING
B32B27/28
PERFORMING OPERATIONS; TRANSPORTING
H02S20/30
ELECTRICITY
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B32B27/306
PERFORMING OPERATIONS; TRANSPORTING
H01L31/18
ELECTRICITY
H01L31/0481
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
B32B17/10009
PERFORMING OPERATIONS; TRANSPORTING
B32B2605/006
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/546
PERFORMING OPERATIONS; TRANSPORTING
Y02B10/10
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
International classification
H01L31/18
ELECTRICITY
B32B17/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A photovoltaic module includes: a solar laminated assembly; a first glass adhered to one surface of the solar laminated assembly; a back sheet or a second glass adhered to the other surface of the solar laminated assembly; and encapsulant layers adhering the first glass to the solar laminated assembly and adhering the back sheet or the second glass to the solar laminated assembly. The photovoltaic module may be manufactured by previously manufacturing a solar laminated assembly through a first lamination process, and post-adhering a) a first glass and b) a back sheet or a second glass to the solar laminated assembly.
Claims
1. A photovoltaic module comprising: a solar laminated assembly including at least one solar cell having a first surface and a second surface, a first film disposed on the first surface and a second film disposed on the second surface, a first encapsulant layer disposed between the first surface and the first film, and a second encapsulant layer disposed between the second surface and the second film; a first substrate disposed on the first film; a second substrate disposed on the second film; a third encapsulant layer disposed between the first film and the first substrate; and a fourth encapsulant layer disposed between the second film and the second substrate.
2. The photovoltaic module of claim 1, wherein the first substrate is formed of a curved glass.
3. The photovoltaic module of claim 1, wherein the second substrate is formed of a glass or a transparent sheet.
4. The photovoltaic module of claim 1, wherein: the first to fourth encapsulant layers are formed of a thermosetting resin or a thermoplastic resin, the third encapsulant layer and the fourth encapsulant layer are thicker than the first encapsulant layer and the second encapsulant layer, and the first film is formed of a transparent material.
5. A photovoltaic module comprising: at least one solar cell having a first surface and a second surface in mutually opposite directions; a first substrate having a curved surface and covering the first surface; a second substrate covering the second surface; a first encapsulant layer disposed between the first surface and the first substrate to adhere the at least one solar cell and the first substrate; and a second encapsulant layer disposed between the second surface and the second substrate to adhere the at least one solar cell and the second substrate.
6. The photovoltaic module of claim 5, wherein: the first encapsulant layer and the second encapsulant layer are formed of a thermosetting resin, and are stacked to form two layers, and among the two layers, a layer disposed to be relatively further from the at least one solar cell is thicker than a layer disposed to be relatively closer to the at least one solar cell.
7. The photovoltaic module of claim 5, wherein: the first encapsulant layer and the second encapsulant layer each includes: a first layer adhered to the at least one solar cell; and a second layer adhered to the first substrate or adhered to the second substrate, and any one of the first layer and the second layer is formed of a thermosetting resin and the other is formed of a thermoplastic resin.
8. The photovoltaic module of claim 5, wherein: the first encapsulant layer and the second encapsulant layer are formed of a thermoplastic resin or formed of a thermosetting resin having a thickness ranging from 450 m to 1,100 m.
9. The photovoltaic module of claim 1, wherein the photovoltaic module is curved.
10. A method for manufacturing a photovoltaic module, the method comprising: a first laminating operation of manufacturing a solar laminated assembly having at least one solar cell having a first surface and a second surface, a first film disposed on the first surface, a second film disposed on the second surface, a first encapsulant layer disposed between the first surface and the first film, and a second encapsulant layer disposed between the second surface and the second film; and a second laminating operation of encapsulating the solar laminated assembly between a first substrate and a second substrate.
11. The method of claim 10, wherein the first laminating operation includes: sequentially stacking the first encapsulant layer and the first film on the first surface of the at least one solar cell and sequentially stacking the second encapsulant layer and the second film on the second surface of the at least one solar cell; and adhering the first film to the first surface of the at least one solar cell and adhering the second film to the second surface of the at least one solar cell through a first lamination process of applying heat to the first encapsulant layer and the second encapsulant layer, while pressing the first film and the second film in a direction toward each other.
12. The method of claim 10, wherein: the second laminating operation includes: disposing a third encapsulant layer between the first film and a first glass and disposing a fourth encapsulant layer between the second film and a back sheet or between the second film and a second glass; and adhering the first glass to a first surface of the solar laminated assembly and adhering the back sheet or the second glass to a second surface of the solar laminated assembly through a second lamination process of applying heat and pressure within a hermetically closed chamber, wherein the first to fourth encapsulant layers are formed of a thermosetting resin or a thermoplastic resin.
13. The method of claim 10, wherein: the first film and the second film are removed from the solar laminated assembly between the first laminating operation and the second laminating operation, and the second laminating operation includes: additionally disposing a second layer of the first encapsulant layer between a first layer of the first encapsulant layer exposed as the first film is removed and a first glass, and additionally disposing a second layer of the second encapsulant layer between a first layer of the second encapsulant layer exposed as the second film is removed and a back sheet or a second glass between the first layer of the second encapsulant layer; and adhering the first glass to a first surface of the solar laminated assembly and adhering the back sheet or the second glass to a second surface of the solar laminated assembly through a second lamination process of applying heat and pressure within a hermetically closed chamber, and wherein the first layer of the first encapsulant layer and the first layer of the second encapsulant layer are formed of a thermoplastic resin, and the second layer of the first encapsulant layer and the second layer of the second encapsulant layer are formed of a thermosetting resin.
14. The method of claim 10, wherein: the first film and the second film are removed from the solar laminated assembly between the first laminating operation and the second laminating operation, and the first encapsulant layer and the second encapsulant layer each includes: a first layer adhered to the at least one solar cell; and a second layer adhered to the first glass, or to the back sheet or the second glass, any one of the first layer and the second layer is formed of a thermosetting resin and the other is formed of a thermoplastic resin, the second laminating operation includes adhering the first glass to a first surface of the solar laminated assembly and adhering the back sheet or the second glass to a second surface of the solar laminated assembly through a second lamination process of applying heat and pressure within a hermetically closed chamber, the first layer is formed of a thermosetting resin and disposed to cover the at least one solar cell in the first laminating operation, and the second layer is formed of a thermoplastic resin and disposed to cover the first layer in the second laminating operation.
15. The method of claim 10, wherein: the first film and the second film are removed from the solar laminated assembly between the first laminating operation and the second laminating operation, the first encapsulant layer and the second encapsulant layer are formed of a thermoplastic resin, and the second laminating operation includes adhering the first glass to a first surface of the solar laminated assembly and adhering the back sheet or the second glass to a second surface of the solar laminated assembly through a second lamination process of applying heat and pressure within a hermetically closed chamber.
16. The method of claim 10, wherein: the first film is removed from the solar laminated assembly between the first laminating operation and the second laminating operation, the first encapsulant layer includes: a first layer adhered to the at least one solar cell and formed of a thermosetting resin, a second layer adhered to a first glass and formed of the thermoplastic resin, the second encapsulant layer is formed of the thermosetting resin, and the second laminating operation includes: additionally disposing a third encapsulant layer formed of the thermosetting resin between the second film and a back sheet or between the second film and a second glass; and adhering the first glass to a first surface of the solar laminated assembly and adhering the back sheet or the second glass to a second surface of the solar laminated assembly, through a second lamination process of applying heat and pressure within a hermetically closed chamber.
17. The method of claim 10, wherein: the first film is removed from the solar laminated assembly between the first laminating operation and the second laminating operation, the first encapsulant layer and the second encapsulant layer are formed of a thermosetting resin, and the second laminating operation includes: additionally disposing an encapsulant layer which is the same as the first encapsulant layer between the first encapsulant layer and a first glass and additionally disposing a third encapsulant layer formed of a thermosetting resin between the second film and a back sheet or between the second film and a second glass; and adhering the first glass to a first surface of the solar laminated assembly and adhering the back sheet or the second glass to a second surface of the solar laminated assembly, through a second lamination process of applying heat and pressure within a hermetically closed chamber.
18. The method of claim 10, wherein: the first film is removed from the solar laminated assembly between the first laminating operation and the second laminating operation, the first encapsulant layer and the second encapsulant layer are formed of a thermoplastic resin, and the second laminating operation includes: additionally disposing a third encapsulant layer formed of the thermosetting resin between the second film and a back sheet or between the second film and a second glass; and adhering a first glass to a first surface of the solar laminated assembly and adhering the back sheet or the second glass to a second surface of the solar laminated assembly, through a second lamination process of applying heat and pressure within a hermetically closed chamber.
19. The method claim 12, wherein: the second lamination process includes: a preliminary adhering operation of partially melting 1) the third encapsulant layer in contact with the first glass and 2) the fourth encapsulant layer in contact with the back sheet or the second glass by introducing the solar laminated assembly to the inside of the hermitically closed chamber, vacuating the inside of the hermitically closed chamber, and substantially applying heat; and a main adhering operation of entirely melting 1) the third encapsulant layer in contact with the first glass and 2) the fourth encapsulant layer in contact with the back sheet or the second glass by applying heat and pressure to the solar laminated assembly within the hermetically closed chamber and subsequently curing the encapsulant layers.
20. The method of claim 10, wherein the photovoltaic module is curved.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0048] The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate example embodiments and together with the description serve to explain the principles of the invention.
[0049] In the drawings:
[0050]
[0051]
[0052]
[0053]
[0054]
[0055]
[0056]
[0057]
[0058]
[0059]
[0060]
[0061]
[0062]
DETAILED DESCRIPTION OF THE INVENTION
[0063] Description will now be given in detail of the example embodiments, with reference to the accompanying drawings. For the sake of brief description with reference to the drawings, the same or equivalent components will be provided with the same reference numbers, and description thereof will not be repeated.
[0064]
[0065] The photovoltaic module 100 includes a solar laminated assembly 100a, a first glass (a first substrate) 141 covering one side of the solar laminated assembly 100a, and a back sheet or second glass (a second substrate) 142 covering the other side of the solar laminated assembly 100a.
[0066] The solar laminated assembly 100a refers to a solar cell 110 and elements configured to protect the solar cells 110, excluding a) the first glass 141 and b) the back sheet or second glass 142, forming the outermost layers of the photovoltaic module 100. In the present disclosure, the solar laminated assembly 100a refers to a half-finished product previously manufactured during a process of manufacturing the photovoltaic module 100, and a concept of the solar laminated assembly 100a may differ depending on embodiments.
[0067] The solar laminated assembly 100a according to the first embodiment includes at least one solar cell 110, films 121 and 122 disposed to cover opposing surfaces of the solar cell 110, and encapsulant layers 131 and 132 adhering the films 121 and 122 to the solar cell 110.
[0068] One or a plurality of solar cells 110 may be provided depending on a design of the photovoltaic module 100. When the solar cell 110 is provided in a plurality, the plurality of solar cells may be disposed to be spaced apart from each other and may be connected in series to form a string. Also, the solar cells 110 may be disposed on the same curved surface. Referring to
[0069] Each solar cell 110 has a first surface 111 and a second surface 112 which face in mutually opposite directions. Light may be received (or collected) only to any one of the first surface 111 and the second surface 112 or to both of them. Here, first and second ordinal numbers are merely used for discriminating therebetween, without any specific technical meaning.
[0070] The films 121 and 122 are disposed to cover the solar cell 110. The films 121 and 122 include a first film 121 and a second film 122 disposed to cover different surfaces. The first film 121 is disposed to cover the first surface 111 of the solar cell 110, and the second film 122 is disposed to cover the second surface 112 of the solar cell 110.
[0071] The first film 121 and the second film 122 form outermost surfaces of the solar laminated assembly 100a and are configured to protect opposing surfaces of the solar cell 110. For example, a physical impact, moisture, and the like, may affect the solar cell 100, and here, the first film 121 and the second film 122 may protect the solar cell 110 from a physical impact or moisture.
[0072] In particular, as described hereinafter, in the method for manufacturing the photovoltaic module 100, after the solar laminated assembly 100a is first manufactured in a first operation (a first laminating operation), a) the first glass 141 and b) the back sheet or second glass 142 are adhered to the solar laminated assembly 100a in a second operation (a second laminating operation), and here, the films 121 and 122 serve to protect the solar cell 110 between the first operation and the second operation.
[0073] At least one of the films 121 and 122 may be formed of a transparent material. In order for the solar cell 110 to produce sufficient electric power, sufficient light has to be provided, and thus, the film covering a light receiving surface of the solar cell 110 is formed of a transparent material. For example, in instance where both the first surface 111 and the second surface 112 of the solar cell 110 receive light, both the first film 121 and the second film 122 are formed of a transparent material. In instance where only any one of the first surface 111 and the second surface 112 of the solar cell 110 receives light, only any one of the first film 121 and the second film 122 may be formed of a transparent material and the other may be formed of an opaque material. Even in instance where only any one of the first surface 111 and the second surface 112 of the solar cell 110 receives light, not all of the first film 121 and the second film 122 are required to be formed of a transparent material. However, when the photovoltaic module 100 is applied to an automobile roof or the interior/exterior material of a building, preferably, a film covering the opposite surface of the light receiving surface, among the first film 121 and the second film 122, is formed of an opaque material in order to prevent an indoor area of the automobile or the building from being visually exposed through the photovoltaic module 100.
[0074] When light is received by the first surface 111 of the solar cell 110, the first film 121 may be formed of a transparent material, and here, the transparent material may be formed of polyethylene terephthalate (PET). In instance where the back sheet 142 of the photovoltaic module 100 is formed of a transparent material or in instance where the photovoltaic module 100 includes the second glass 142 (glass is always transparent), the second film 122 may be formed of a transparent material. The transparent material may be formed of PET, like the first film 121. In instance where the back sheet 141 of the photovoltaic module 100 has a color such as black or white, the second film 122 may have a color to strengthen visibility.
[0075] The encapsulant layers 131 and 132 protect the solar cell 110, and serve to adhere the films 121 and 122 to the solar cell 110, respectively. The encapsulant layers 131 and 132 include a first encapsulant layer 131 and a second encapsulant layer 132. The first encapsulant layer 131 is disposed between the first surface 111 and the first film 121 to adhere the first film 121 to the solar cell 110. The second encapsulant layer 132 is disposed between the second surface 112 and the second film 122 to adhere the second film 122 to the solar cell 110.
[0076] In the present disclosure, the encapsulant layers 131, 132, 133, and 134 may be formed of a thermoplastic resin or a thermosetting resin. This may also be equally applied to the other embodiments, as well as to the first embodiment.
[0077] Thermoplasticity refers to properties deformed when heat is applied again after being formed by applying heat. In contrast, thermosetting properties refers to properties not deformed although heat is applied again, once deformed by applying heat.
[0078] In the present disclosure, types of a thermoplastic resin or thermosetting resin is not particularly limited. Any maternal may be used as a material of the encapsulant layer of the present disclosure as long as it is transparent, has adhesion when cured, and has thermoplasticity or thermosetting properties. For example, thermoplastic olefine (TPO), polyvinyl butyral (PVB), or polycarbonate (PC), which is transparent, has adhesion when cured, and has thermoplasticity, may be used as a material of the encapsulant layer of the present disclosure. Also, ethylene-vinyl acetate (EVA), which is transparent, has adhesion, and has thermosetting properties, may be used as a material of the encapsulant layer of the present disclosure.
[0079] In the photovoltaic module 100 of the first embodiment, the first encapsulant layer 131 and the second encapsulant layer 132 are preferably formed of a thermosetting resin. The photovoltaic module 100 of the first embodiment further includes a third encapsulant layer 133 and a fourth encapsulant layer 134 because arbitrary deformation of the first encapsulant layer 131 and the second encapsulant layer 132 is not desired in the process of thermosetting the third encapsulant layer 133 and the fourth encapsulant layer 134. However, the first encapsulant layer 131 and the second encapsulant layer are not necessarily formed of a thermosetting resin and may be formed of any other material.
[0080] The first glass (first substrate) 141 is disposed to cover the first film 121. The first glass 141 is adhered to the first film 121 by the third encapsulant layer 133 described hereinafter. The first glass 141 forms an outermost surface of one side of the photovoltaic module 100 and the first glass 141 may be referred to as a first outermost layer.
[0081] The first glass 141 has a curved surface. Here, however, the first glass 141 may not be entirely formed as a curved surface and only a partial region of the first glass 141 may be formed as a curved surface.
[0082] The back sheet or second glass (second substrate) 142 is disposed to cover the second film 122. The back sheet or second glass 142 is adhered to the second film 122 by the fourth encapsulant layer 134 described hereinafter. The back sheet or second glass 142 is provided on the other outermost surface of the photovoltaic module 100 and may be referred to as a second outermost layer having a concept including the back sheet or second glass 142.
[0083] In the photovoltaic module 100, the back sheet or second glass 142 has a curved surface corresponding to the first glass 141. The back sheet does not originally have a curved surface and as the back sheet is adhered to the solar laminated assembly 100a, the back sheet forms a curved surface according to a curvature of the first glass. A curvature of the back sheet or second glass 142 may be substantially the same as that of the first glass 141 within an error range. Like the first glass 141, a partial region of the back sheet or second glass 142 may also be formed as a curved surface.
[0084] The photovoltaic module 100 is not required to have both the back sheet and the second glass and may have only any one of the back sheet and the second glass 142. For example, in instance where the photovoltaic module 100 is applied to an automobile roof, the photovoltaic module 100 may have a back sheet, and here, the first surface 111 of the solar cell 110 is a light receiving surface.
[0085] In instance where the photovoltaic module 100 has the second glass 142, one side and the other side with respect to the solar cell 110 are symmetrical. Here, the first surface 111 and the second surface 112 of the solar cell 110 may not necessarily be distinguished.
[0086] The third encapsulant layer 133 is disposed between the first film 121 and the first glass 141 to adhere the first film 121 and the first glass 141. Also, the fourth encapsulant layer 134 may be disposed between the second film 122 and the back sheet to adhere the second film 122 and the back sheet or disposed between the second film and the second glass 142 to adhere the second film 122 and the second glass 142. Descriptions of the first encapsulant layer 133 and the second encapsulant layer 134 may also be applied to the third encapsulant layer 33 and the fourth encapsulant layer 134.
[0087] Thicknesses of the third encapsulant layer 133 and the fourth encapsulant layer 134 may be greater than those of the first encapsulant layer 131 and the second encapsulant layer 132. When the thickness of the encapsulant layer is greater, adhesion may be increased, and since the third encapsulant layer 133 and the fourth encapsulant layer 134 are used to adhere the glasses 141 and 142 heavier than the films 121 and 122, the third encapsulant layer 133 and the fourth encapsulant layer 134 may be thicker than the first encapsulant layer 131 and the second encapsulant layer 132.
[0088] As the first glass 141 has a curved surface and the second glass 142 has a curved surface, the solar cell 110, the films 121 and 122, and the encapsulant layers 131, 132, 133, and 134 disposed therebetween also have a curved surface. This is because the first glass 141 has rigidity. Since a size of one solar cell 110 is smaller than the films 121 and 122 or the first glass 141, although the solar cell 110 is bent, deformation of the solar cell 110 is smaller than that of the films 121 and 122 or the encapsulant layers 131, 132, 133, and 134. Also, the films 121 and 122 and the encapsulant layers 131, 132, 133, and 134 are flexible to be bendable.
[0089] Thus, in the photovoltaic module 100 having the structure in which the first glass 141 and the back sheet or second glass 142 are adhered to the solar laminated assembly 100a, a corner of the solar cell 110 is not broken.
[0090] Hereinafter, another embodiment of the present disclosure will be described. Here, the same description of another embodiment as that of the first embodiment will be omitted.
[0091]
[0092] The photovoltaic modules 200 and 200 of the second embodiment are distinguished from the first embodiment in that they do not include the films 121 and 122 (please refer to
[0093] In the photovoltaic modules 200 and 200 of the second embodiment, a first encapsulant layer 231 is disposed between a solar cell 210 and a first glass (a first substrate) 241 and adhered to the solar cell 210 and the first glass 241. A second encapsulant layer 232 is disposed between the solar cell 210 and a back sheet or between the solar cell 210 and a second glass (a second substrate) 242 and adhered to the solar cell 210 and the back sheet or adhered to the solar cell 210 and the second glass 242.
[0094] The second embodiment may be classified as embodiment 2-1 and embodiment 2-2. The photovoltaic module 200 of the embodiment 2-1 has a first encapsulant layer and a second encapsulant layer each including two layers, whereas the photovoltaic module 200 of the embodiment 2-2 has a first encapsulant layer and a second encapsulant layer each including one layer.
[0095] In the photovoltaic module 200 of the embodiment 2-1 illustrated in
[0096] Any one of the first layer 231a or 232a and the second layer 231b or 232b may be formed of a thermosetting resin, and the other may be formed of a thermoplastic resin. For example, the first layers 231a and 232a may be formed of a thermosetting resin, and the second layers 231b and 232b may be formed of a thermoplastic resin.
[0097] Conversely, the first layers 231a and 232a may be formed of a thermoplastic resin, and the second layers 231b and 232b may be formed of a thermosetting resin. Here, the second layers 231b and 232b serve to strengthen adhesion.
[0098] In another example, both the first layers 231a and 232a and the second layers 231b and 232b may be formed of a thermosetting resin. Here, the second layers 231b and 232b may be thicker than the first layers 231a and 232a. When both the first layers 231a and 232a and the second layers 231b and 232b are formed of the same thermosetting resin, the first layers 231a and 232a and the second layers 231b and 232b may not be visually distinguishable but are formed to be thicker than a thickness of an encapsulant layer including one layer. For example, in the first embodiment, when a thickness of the first encapsulant layer 131 to the fourth encapsulant layer 134 (please refer to
[0099] In the photovoltaic module 200 of the embodiment 2-2 illustrated in
[0100]
[0101] The photovoltaic modules 300 and 300 of the third embodiment are distinguished from the first and second embodiments described above, in that the photovoltaic modules 300 and 300 include a second film 322, rather than a first film. In the following descriptions, the second film 322 will be referred to as a film 322.
[0102] In the photovoltaic modules 300 and 300 of the third embodiment, a first encapsulant layer 331 is disposed between a solar cell 310 and a first glass (a first substrate) 341 and adhered to the solar cell 310 and the first glass 341. The second encapsulant layer 332 is disposed between the solar cell 310 and the film 322 and adhered to the solar cell 310 and the film 322. A third encapsulant layer 333 is disposed between the film 322 and a back sheet or between the film 322 and a second glass (a second substrate) 342 and adhered to the film 322 and the back sheet or adhered to the film 322 and the second glass 342.
[0103] The third embodiment may be classified as embodiment 3-1 and embodiment 3-2. The photovoltaic module 300 of the embodiment 3-1 has the first encapsulant layer 331 including two layer, whereas the photovoltaic module 300 of the embodiment 3-2 has the first encapsulant layer 331 including one layer.
[0104] In the photovoltaic module 300 of the embodiment 3-1 illustrated in
[0105] In another example, both the first layer 331a and the second layer 331b of the first encapsulant layer 331 may be formed of a thermosetting resin, and the second encapsulant layer 332 and the third encapsulant layer 333 may be formed of a thermoplastic resin. Here, the second layer 331b may be thicker than the first layer 331a, and the third encapsulant layer 333 may be thicker than the second encapsulant layer 332. This is because the second layer and the third encapsulant layer are adhered to a first glass or a second glass requiring strong adhesion.
[0106] In the photovoltaic module 300 of the embodiment 3-2 illustrated in
[0107]
[0108] The photovoltaic module 100, 200, 200, 300, or 300 of the present disclosure is manufactured by a first operation S100 and a second operation S200. Also, operation S150 of removing first and/or second film may be provided between the first operation S100 and the second operation S200, but the operation S150 of removing the first and/or second film is not essential and is optional. That is, the operation S150 may be omitted according to an embodiment.
[0109] In the first operation S100, a solar laminated assembly is manufactured. The solar laminated assembly refers to a half-finished product previously manufactured during a manufacturing process of the photovoltaic module 100, 200, 200, 300, or 300 and a specific concept thereof may be varied according to embodiments.
[0110] In order to manufacture the solar laminated assembly, first, a first encapsulant layer and a first film are sequentially stacked on a first surface of a solar cell, and a second encapsulant layer and a second film are sequentially stacked on a second surface of the solar cell (S110). In the present disclosure, the encapsulant layers may be formed of a thermoplastic resin or a thermosetting resin as mentioned above. Also, at least one of the first film and the second film may be formed of a transparent material as mentioned above.
[0111] Here, sequentially stacking refers to a structure in which the first encapsulant layer is stacked on the first surface of the solar cell and the first film is stacked on the first encapsulant layer, rather than order of stacking. For example, it does not exclude stacking the first encapsulant layer and the first film temporally simultaneously on the first surface of the solar cell in a state in which the first film is already stacked on the first encapsulant layer. This descriptions may also be equally applied to the second encapsulant layer and the second film.
[0112] Thereafter, through a first lamination process, the first film is adhered to the first surface of the solar cell and the second film is adhered to the second surface of the solar cell (S120). Lamination refers to a process of thermosetting the encapsulant layers formed of a thermosetting resin or a thermoplastic resin by applying heat and pressure to thus adhere two adhering targets disposed on one side and the other side of the encapsulant layer. A specific process of lamination may be different in first and second lamination processes.
[0113] In the first lamination process, two adhering targets are a solar cell and films. The first lamination process is performed on a plane. When heat is applied to the first encapsulant layer and the second encapsulant layer, while pressing the first film and the second film in a direction toward each other, the first encapsulant layer and the second encapsulant layer are melted and cured and the first film and the second film are adhered to the first surface and the second surface of the solar cell, respectively.
[0114] Pressure applied during the first lamination process is surface pressure. Here, surface pressure refers to pressure equally applied to the entirety of the flat first film and the flat second film, which is to be distinguished from pressure applied only to any partial region.
[0115] When the first lamination process is completed, a solar laminated assembly is manufactured. A concept of the solar laminated assembly has been described above with reference to
[0116] After the solar laminated assembly is manufactured in the first operation S100, the second operation S200 may be immediately performed or operation S150 of removing the first and/or second films may be performed beforehand.
[0117] Since there is a temporal interval between the first operation S100 and the second operation S200, the solar laminated assembly manufactured in the first operation S100 is required to be protected from an external influence. The external influence may refer to an influence which may be made on performance of the solar cell such as a physical impact, moisture, or the like. Since the first film and the second film form outermost layers of the solar laminated assembly, the first and second films protect the solar laminated assembly.
[0118] When the second operation S200 starts, since the first film and the second film has completed a role of protecting the solar laminated assembly, at least one of the first film and the second film may be removed immediately before the second operation S200 starts. For example, in instance where the first film and the second film are configured as release films, the first film and the second film may be separated and removed from the first encapsulant layer and the second encapsulant layer, respectively.
[0119] However, operation S150 of removing the first film and/or the second film is not essential. When the first film and the second film are not removed, the first film and the second film remain on the photovoltaic module 100, 200, 200, 300, or 300, a finished product. Thus, at least one of the first film and the second film remaining in the photovoltaic module 100, 200, 200, 300, and 300 is required to be formed of a transparent material in order to sufficiently supply light to the solar cell.
[0120] In a state in which the first film and the second film are present, outermost layers of the solar laminated assembly are formed by the first film and the second film. When the first film and the second film are removed, the first encapsulant layer and the second encapsulant layer are exposed.
[0121] In the second operation S200, an encapsulant layer may be additionally selectively disposed before the second lamination process S220. However, whether to additionally disposed an encapsulant layer differs according to embodiments, and thus, details thereof will be described in each embodiment.
[0122] Thereafter, in the second operation S200, a first glass is adhered to the first surface of the solar laminated assembly and a back sheet or second glass is adhered to the second surface thereof through the second lamination process S220. The first glass is formed to have a curved surface. The back sheet, which is originally flat, may be bent to have a curvature corresponding to the first glass as it is adhered to the second surface of the solar laminated assembly. In contrast, the second glass is different from the back sheet in that the second glass is originally formed to have a curved surface corresponding to the first glass.
[0123] As the first glass and the second glass are formed to have a curved surface, the second lamination process may be performed on a plane. Thus, the second lamination process is performed in a manner different from that of the first lamination process.
[0124] The second lamination process includes a preliminary adhering operation S221 and a regular adhering operation S222.
[0125] In the preliminary adhering operation S221, the solar laminated assembly is introduced to the inside of a hermetically closed chamber, the inside of the chamber is vacuated and heat is applied to partially melt the encapsulant layer. Thereafter, in the regular adhering operation S222, when heat and pressure are applied, the encapsulant layers are entirely melted and then cured within the hermetically closed chamber, In this instance, the thermoplastic resin which was melted and then cured during the first lamination process is not melted again during the second lamination process.
[0126] In the photovoltaic module 100 of the first embodiment, a component for adhering the first glass 141 to the solar laminated assembly 100a is the third encapsulant layer 133, and a component for adhering the back sheet or second glass 142 to the solar laminated assembly 100a is the fourth encapsulant layer. Thus, the third encapsulant layer 133 and the fourth encapsulant layer 134 are partially melted in the preliminary adhering operation S221 of the second lamination process and entirely melted and then cured in the regular adhering operation S222.
[0127] In contrast, in the photovoltaic module 200 or 200 of the second embodiment, a component for adhering the first glass to the solar laminated assembly is the first encapsulant layer 231 and a component for adhering the back sheet or second glass 242 to the solar laminated assembly is the second encapsulant layer 232. Thus, the first encapsulant layer 231 and the second encapsulant layer 232 are partially melted in the preliminary adhering operation S221 of the second lamination process and entirely melted and then cured in the regular adhering operation S222.
[0128] Also, in the photovoltaic module 300 or 300 of the third embodiment, a component for adhering the first glass to the solar laminated assembly is the first encapsulant layer 331 and a component for adhering the back sheet or second glass 342 to the solar laminated assembly is the third encapsulant layer 333. Thus, the first encapsulant layer 331 and the third encapsulant layer 333 are partially melted in the preliminary adhering operation S221 of the second lamination process and entirely melted and then cured in the regular adhering operation S222.
[0129] When the solar laminated assembly is adhered to the first glass 141, 241, or 341 having a curved surface and the back sheet or the second glass 142, 242, or 342 having a curved surface is adhered to the solar laminated assembly through the second lamination process S220 including the preliminary adhering operation S221 and the regular adhering operation S222, the photovoltaic module 100, 200, 200, 300, or 300 is manufactured. The photovoltaic module 100, 200, 200, 300, or 300 manufactured thusly has an overall bent shape, and a curvature of the photovoltaic module 100, 200, 200, 300, or 300 is determined by a curvature of the first glass 141, 241, or 341 and a curvature of the second glass 142, 242, or 342.
[0130] When the solar cell is directly adhered to the glass having the curved glass only through the first lamination process, the solar cell may be broken. In the present disclosure, however, the solar laminated assembly is previously manufactured through the first lamination process S120 performed on a plane, and thereafter, the photovoltaic module 100, 200, 200, 300, or 300 is manufactured through the second lamination process S220. Thus, although the photovoltaic module 100, 200, 200, 300, or 300 in a bent form is manufactured, the solar cell is not broken.
[0131] Also, when the solar cell is directly adhered to the glass having a curved surface only through the first lamination process, the string connecting the solar cells may slide down the curved surface of the glass to cause a possibility that the photovoltaic module is manufactured to be different from the original design. However, in the present disclosure, since the solar laminated assembly is previously manufactured through the first lamination process S120 performed on the plane, although the solar laminated assembly is adhered to the first glass 141, 241, or 341 having a curved surface through the second lamination process S220, the problem in which the solar cells slide down does not arise.
[0132] In addition, if both of the two outermost layers of the photovoltaic module are formed of glass, bubbles may be generated within the photovoltaic module due to an operation between the solar cell and a ribbon structure. However, in the present disclosure, since the solar laminated assembly is previously manufactured through the first lamination process S120, although the first glass 141, 241, or 341 having a curved surface and the second glass 142, 242, or 342 having a curved surface form the outermost layers of the photovoltaic module 100, 200, 200, 300, or 300, bubbles may not be generated.
[0133] Hereinafter, a detailed process of manufacturing the photovoltaic modules 100, 200, 200, 300, and 300 of the first to third embodiments will be described. Descriptions of a common method thereof will be replaced with the descriptions of
[0134]
[0135] In
[0136] Since the photovoltaic module 100 of the first embodiment are required to include the first film 121 and the second film 122, the first film 121 and the second film 122 are not removed after operation S100.
[0137] In the photovoltaic module 100 of the first embodiment, the first to fourth encapsulant layers 131, 132, 133, and 134 may be formed of a thermosetting resin or a thermoplastic resin.
[0138] Once the thermosetting resin is thermally cured, the thermosetting resin is not deformed although heat is applied again thereto. Thus, the first encapsulant layer 131 and the second encapsulant layer 132 cured through the first lamination process in the first operation S100 are not deformed although heat is applied through the second lamination process S220 described hereinafter. Meanwhile, although the thermoplastic resin is thermally cured through the first lamination process, when heat is applied again through the second lamination process S220, the thermoplastic resin is melted and thermally cured.
[0139] Referring to
[0140] Thereafter, the first glass 141 is adhered to the first film 121 through the second lamination process S220, and the back sheet or second glass 142 is adhered to the second film 122. Details of the second lamination process has been described above with reference to
[0141]
[0142] Since the first glass 141 is formed to have a curved surface, when the solar laminated assembly 100a is adhered to the first glass 141, the solar laminated assembly 100a is naturally bent to have the same curvature as that of the first glass 141. Similarly, when the back sheet is adhered to the solar laminated assembly 100a, the back sheet is bent to have the same curvature as that of the first glass 141.
[0143]
[0144] In
[0145] The first film 221 and the second film 222 are formed as release films, and the photovoltaic module 200 of the second embodiment does not include the first film 221 and the second film 222. Thus, after the first operation S110, the first film 221 and the second film 222 are removed (S150). Also, in
[0146] Referring to
[0147] In the photovoltaic module 200 of the second embodiment, the first encapsulant layers 231a and 231b and the second encapsulant layers 232a and 232b may each include two layers, and, among the two layers, the first layers 231a and 232a are adhered to the solar cell 21 in a first operation. Also, the second layers 231b and 232b are adhered to the first glass 241a and the back sheet or second glass 242 in a second operation. The first layers 231a and 232a may be formed of a thermosetting resin or a thermoplastic resin, and the second layers 231b and 232b may be formed of a thermosetting resin.
[0148] When the first layers 231a and 232a are formed of a thermoplastic resin and the second layers 231b and 232b are formed of a thermosetting resin, the second layers 231b and 232b are added in the second operation to enhance adhesion.
[0149] When both the first layers 231a and 232a and the second layers 231b and 232b are formed of a thermosetting resin, a thickness of the second layers 231b and 232b may be greater than that of the first layers 231a and 232a. This is because the second layers 231b and 232b are adhered to the first glass 2421 and the back sheet or second glass 242 requiring strong adhesion. When both the first layers 231a and 232a and the second layers 231b and 232b are formed of a thermosetting resin, the first layers 231a and 232a and the second layers 231b and 232b have a thickness greater than that of a thermosetting resin of a single layer, as described above.
[0150] As the second layer 231b of the first encapsulant layer and the second layer 231b of the second encapsulant layer are additionally disposed, a structure in which the first layer 231a and the second layer 231b of the first encapsulant layer 231 and the first glass 241 are sequentially stacked is formed on the first surface 211 of the solar cell 210. Also, a structure in which the first layer 232a and the second layer 232b of the second encapsulant layer 232 and the back sheet or second glass 242 are sequentially stacked is formed on the second surface 212 of the solar cell 210.
[0151] Thereafter, the first glass 241 and the back sheet or second glass 242 are adhered to the solar laminated assembly 200a through the second lamination process S220. Details of the second lamination process has been described above with reference to
[0152] As the second layer 231b of the first encapsulant layer 231 is thermally cured, the first glass 241 is adhered to the first surface of the solar laminated assembly 200a, and as the second layer 232b of the second encapsulant layer 232 is thermally cured, the back sheet or second glass 242 is adhered to the second surface of the solar laminated assembly 200a. Since the first film and the second film have already been removed, here, the first surface of the solar laminated assembly 200a refers to the first layer 231a of the first encapsulant layer 231 and the second surface refers to the first layer 232a of the second encapsulant layer 232.
[0153]
[0154]
[0155] This embodiment is distinguished from the embodiment described above with reference to
[0156] In
[0157] In
[0158] In this embodiment, the first layers 231a and 232a are formed of a thermosetting resin, and the second layers 231b and 232b are formed of a thermoplastic resin. In the first lamination process, both the first layer 231a and the second layer 231b of the first encapsulant layer 231 are thermally cured, and both the first layer 231a and the second layer 231b of the second encapsulant layer 232 are thermally cured. However, since the second layer 231b of the first encapsulant layer 231 and the second layer 232b of the second encapsulant layer 232 are formed of a thermoplastic resin, when the second layer 231b of the first encapsulant layer 231 and the second layer 232b of the second encapsulant layer 232 are re-heated in the second lamination process, they are deformed again.
[0159] The first film 221 and the second film 222 are formed as release films, and the photovoltaic module 200 of the second embodiment do not include the first film 221 and the second film 222. Thus, after the first operation S100, the first film 221 and the second film 222 are removed (S150). The second layer 231b of the first encapsulant layer 231 and the second layer 232b of the second encapsulant layer 232 are exposed. In
[0160] In the photovoltaic module 200 of this embodiment, since the second layer 231b of the first encapsulant layer 231 and the second layer 232b of the second encapsulant layer 232 are formed of a thermoplastic resin, although the second layer 231b of the first encapsulant layer 231 and the second layer 232b of the second encapsulant layer 232 are thermally cured by first lamination process, they are deformed when heat is applied thereto again. Thus, an additional encapsulant layer for adhering the first glass 241 or the back sheet or second glass 242 is not required.
[0161] In the second operation S200, through the second lamination process S220, the first glass 241 is adhered to the first film 221 and the back sheet or second glass 242 is adhered to the second film 222 without adding an encapsulant layer. Details of the second lamination are the same as that described above with reference to
[0162] In
[0163] In
[0164] The first film 221 and the second film 222 are formed as release films, and the photovoltaic module 200 of the second embodiment does not include the first film 221 and the second film 222. Thus, after the first operation S100, the first film 221 and the second film 222 are removed (S150). In
[0165] In the photovoltaic module 200 of this embodiment, the first encapsulant layer 231 and the second encapsulant layer 232 are formed of a thermoplastic resin of a single layer. Although the thermoplastic resin is thermally cured by the first lamination process, when heat is applied thereto, the thermoplastic resin is deformed again. Thus, an additional encapsulant layer for adhering the first glass 241 or the back sheet or second glass 242 is not required.
[0166] In the second operation S200, without adding a separate encapsulant layer, the first glass 241 is adhered to the first surface of the solar laminated assembly 200a and the back sheet or second glass 242 is adhered to the second surface thereof through the second lamination process S220. Details of the second lamination process is the same as described above with reference to
[0167] In
[0168]
[0169] In the first operation S100, first, the first layer 331a of the first encapsulant layer 331 is disposed on a first surface 311 of the solar cell 310 and the second encapsulant layer 332 formed of a single layer is disposed on a second surface 312 of the solar cell 310. Also, a first film (not shown) is adhered to the first surface 311 and a second film 322 is adhered to the second surface 312 of the solar cell 310. Accordingly, the solar laminated assembly is formed.
[0170] The first layer 331a of the first encapsulant layer 331 and the second encapsulant layer 332 may be formed of a thermosetting resin.
[0171] The photovoltaic module 300 of the third embodiment does not include the first film, and the first film is removed between the first operation and the second operation (S150). In the solar laminated assembly, the first film is removed and the first layer 331a of the first encapsulant layer 331 is exposed.
[0172] Thereafter, in the second operation S200, the second layer 331b of the first encapsulant layer 331 is additionally disposed between the first layer 331a of the first encapsulant layer 331 and the first glass 341 and the third encapsulant layer 333 is additionally disposed between the second film 322 and the back sheet or between the second film 322 and the second glass 342 (S212). The second layer 331b and the third encapsulant layer 333 may be formed of a thermosetting resin. Also, in order to ensure strong adhesion, the second layer 331b of the first encapsulant layer 331 may be thicker than the first layer 331a and the third encapsulant layer 333 may be thicker than the second encapsulant layer 332.
[0173] Finally, through the second lamination process S220, the first glass 341 is adhered to the first surface of the solar laminated assembly and the back sheet or second glass 342 is adhered to the second surface of the solar laminated assembly.
[0174]
[0175] First, referring to operation S115, the first encapsulant layer 331 includes the first layer 331a and the second layer 331b, both the two layers 331a and 331b are disposed on the first surface 311 of the solar cell 310 in the first operation S100. Also, the second encapsulant layer 332 formed as a single layer is disposed on the second surface 312 of the solar cell 310. The embodiment of
[0176] The first layer 331a of the first encapsulant layer 331 is formed of a thermosetting resin, and the second layer 331b may be formed of a thermoplastic resin. Also, both the second encapsulant layer 332 and the third encapsulant layer 333 may be formed of a thermosetting resin. Through this embodiment, the photovoltaic module 300 illustrated in
[0177] Referring to operation S116, both the first encapsulant layer 331 and the second encapsulant layer 332 are formed as a single layer, and the first encapsulant layer 331 is disposed on the first surface 311 of the solar cell 310 in the first operation S100, and the second encapsulant layer 332 is disposed on the second surface 312 of the solar cell 310. Both the first encapsulant layer 331 and the second encapsulant layer 332 are formed of a thermoplastic resin. Meanwhile, the third encapsulant layer 333 is formed of a thermosetting resin.
[0178] Only the third encapsulant layer 333 is added (S213) in the second operation S200, and through this embodiment, the photovoltaic module 300 illustrated in
[0179] The photovoltaic module and the manufacturing method thereof described above are not limited to the components and methods of the embodiments described above and the entirety or a portion of the embodiments may be selectively combined to various modifications.
[0180] According to the present disclosure having the configuration described above, although the outermost layer of the photovoltaic module is formed of glass with a curved surface, since the solar cell is protected by the first lamination process and thus stress applied to the solar cell due to the curved surface is alleviated, the solar cell is not broken. Thus, the photovoltaic module may be applied to a roof of an automobile, an interior or exterior material of a building, and the like, requiring a curved surface functionally or in design.
[0181] Also, in the present disclosure, since the solar laminated assembly is previously manufactured through the first lamination process in the first operation and the solar laminated assembly is post-bonded to the curved glass, 1) the problem of generation of bubbles and 2) the problem that an array of strings connecting solar cells slide down the curved surface to break the array of the solar cells do not arise. Thus, when the present disclosure is used, the curved photovoltaic module as initially designed may be manufactured.
[0182] The foregoing embodiments and advantages are merely example and are not to be considered as limiting the present disclosure. The present teachings can be readily applied to other types of apparatuses. This description is intended to be illustrative, and not to limit the scope of the claims. Many alternatives, modifications, and variations will be apparent to those skilled in the art. The features, structures, methods, and other characteristics of the example embodiments described herein may be combined in various ways to obtain additional and/or alternative example embodiments.
[0183] As the present features may be embodied in several forms without departing from the characteristics thereof, it should also be understood that the above-described embodiments are not limited by any of the details of the foregoing description, unless otherwise specified, but rather should be considered broadly within its scope as defined in the appended claims, and therefore all changes and modifications that fall within the metes and bounds of the claims, or equivalents of such metes and bounds are therefore intended to be embraced by the appended claims.