Protective glass for solar cell module and manufacturing method for the same
10707365 ยท 2020-07-07
Assignee
Inventors
Cpc classification
H01L31/02366
ELECTRICITY
C03B23/20
CHEMISTRY; METALLURGY
Y02E10/52
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
B32B15/04
PERFORMING OPERATIONS; TRANSPORTING
C03B23/20
CHEMISTRY; METALLURGY
Abstract
The present disclosure provides a protective glass for a solar cell module having improved power generation efficiency of a solar cell obtained by minimizing reflection of light incident onto the protective glass, and a manufacturing method for the same. The protective glass for a solar cell module includes a plurality of glass beads formed in a spherical or hemispherical shape and arranged in the horizontal direction. The plurality of glass beads is disposed on at least one of the upper and lower portions of the sealing member. In addition, the method of manufacturing a protective glass for a solar cell module includes preparing a plurality of glass beads formed in a spherical or hemispherical shape, arranging the glass beads in a horizontal direction, and injecting a molten glass solution into the glass beads and forming the protective glass.
Claims
1. A protective glass for a solar cell module to be disposed on a sealing member for sealing a solar cell installed in a frame to protect the solar cell, the protective glass comprising: a plurality of glass beads formed in a spherical or hemispherical shape and arranged in a horizontal direction, wherein the plurality of glass beads is configured to be disposed on at least one of an upper portion and a lower portion of the sealing member, wherein the plurality of glass beads has a melting point higher than that of the sealing member, wherein the glass beads are processed by heat treatment and configured to be attached to the sealing member, and wherein empty spaces are formed between contact surfaces of the glass beads.
2. The protective glass according to claim 1, wherein the glass beads are formed of tempered low-iron glass, which has a ferric oxide content of about 0.01%.
3. The protective glass according to claim 1, wherein the glass beads are anti reflective coated.
4. The protective glass according to claim 1, wherein a diameter of the glass beads is 3.2 mm to 8.0 mm.
5. A protective glass for a solar cell module to be disposed on a sealing member for sealing a solar cell installed in a frame to protect the solar cell, the protective glass comprising: a plurality of glass beads formed in a spherical or hemispherical shape and arranged in a horizontal direction; and a glass substrate attached to at least one of an upper portion and a lower portion of the sealing member, wherein the plurality of glass beads is configured to be disposed on at least one of the upper portion and the lower portion of the sealing member, wherein the glass beads are disposed on one surface of the glass substrate, wherein the plurality of glass beads has a melting point higher than that of the sealing member, wherein the glass beads are processed by heat treatment and configured to be attached to the sealing member, and wherein empty spaces are formed between contact surfaces of the glass beads.
6. The protective glass according to claim 5, wherein the glass beads are formed of tempered low-iron glass, which has a ferric oxide content of about 0.01%.
7. The protective glass according to claim 5, wherein the glass beads are anti reflective coated.
8. The protective glass according to claim 5, wherein a diameter of the glass beads is 3.2 mm to 8.0 mm.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(9) The above objects, features and advantages will become apparent from the detailed description with reference to the accompanying drawings. Embodiments are described in sufficient detail to enable those skilled in the art in the art to easily practice the technical idea of the present disclosure. Redundant description and detailed descriptions of well-known functions or configurations may be omitted in order not to unnecessarily obscure the gist of the present disclosure. Hereinafter, a protective glass for a solar cell module according to preferred embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Throughout the drawings, like reference numerals refer to like elements. Embodiments of the disclosure are provided to more fully describe the present disclosure to those skilled in the art. It will be appreciated that for clarity of illustration, the shapes and dimensions of some of the elements can be exaggerated
(10)
(11) As shown in
(12) The plurality of glass beads 110 may be arranged in a horizontal direction and be disposed on at least one of the upper and lower portions of the sealing member 40.
(13) That is, the plurality of glass beads 110 may be disposed on the upper portion of the sealing member 40 as shown in
(14) Specifically, the glass beads 110 may be heat-treated so as to be attached to the sealing member 40 while being disposed on at least one of the upper and lower portions of the sealing member 40. That is, the glass beads 110 are disposed on at least one of the upper and lower portions of the sealing member 40 and then subjected to heat treatment. Accordingly, either the sealing member 40 or the glass beads 110 may be melted, so that the glass beads 110 may be attached to the sealing member 40. Since the sealing member 40 is typically made of a transparent resin material such as EVA, epoxy, or acryl, the sealing member 40 has a melting point lower than that of the glass beads 110, and is thus melted when heat treatment is performed thereon.
(15) As described above, when the protective glass 100A for a solar cell module is formed using glass beads 110 having a spherical or hemispherical shape, as shown in
(16) Accordingly, when there is an external shock applied, the shock is absorbed into the spaces between the glass beads 110, and thus spreading of the external shock may be attenuated compared to the flat plate-shaped protective glass, and the area damaged by the external shock may be reduced.
(17) In addition, as shown in
(18) In addition, since the glass beads 110 are attached to at least one of the upper and lower portions of the sealing member 40 by heat treatment, the glass beads 110 may be firmly adhered to the sealing member 40 without using a separate adhesive.
(19) The glass beads 110 may be formed of tempered low-iron glass. Accordingly, the glass beads 110 may protect the solar cell 20 from an external shock or the like and prevent reflection of incident light, thereby increasing the light transmittance.
(20) In order to minimize reflection of incident light, the glass beads 110 may be processed through anti-reflection coating.
(21) As described above, the glass beads 110 are formed of tempered low-iron glass and have a reduced reflectance of light due to the anti-reflection coating process. Thereby, the power generation efficiency of the solar cell 20 may be further enhanced.
(22) The diameter of the glass beads 110 may be 3.2 mm to 8.0 mm. If the diameter of the glass beads 110 is less than 3.2 mm, the flatness of the glass beads 110 may increase, resulting in a reduced refractive index. If the diameter of the glass beads 110 exceeds 8.0 mm, the height of the protective glass may increase, resulting in the increased total volume of the solar cell module.
(23)
(24) As shown in
(25) The glass beads 110 are preferably disposed on the top of the glass substrate 120. Alternatively, the glass beads 110 may be disposed on the bottom of the glass substrate 120. The glass beads 110 may be disposed on both the top and bottom of the glass substrate 120.
(26) As the protective glass 100B for a solar cell module further includes the glass substrate 120, attaching the protective glass 100B to the sealing member 40 may prevent penetration of foreign substances into the frame 30.
(27)
(28) As shown in
(29) The step 210 of preparing a plurality of glass beads includes preparing a plurality of glass beads 110 formed in a spherical or hemispherical shape. Here, the diameter of the glass beads 110 may be 3.2 mm to 8.0 mm.
(30) The glass beads 110 may be formed of tempered low-iron glass in order to protect the solar cell 20 from an external shock or the like and to prevent reflection of incident light to enhance the light transmittance. In addition, anti-reflection coating may be performed on the surface of the glass beads 110 to minimize reflection of incident light.
(31) The step 220 of arranging the glass beads on the sealing member in the horizontal direction includes arranging the glass beads 110 on at least one of the upper and lower portions of the sealing member 40 in the horizontal direction. Although the glass beads 110 can be disposed spaced apart from each other, the outer circumferential surfaces of the glass beads 110 are preferably formed to be in contact with each other in order to enhance the refractive index.
(32) The step 230 of attaching the glass beads to the sealing member by heat treatment includes attaching the glass beads 110 to the sealing member 40 by heat-treating the sealing member 40 and the glass beads 110. Since the sealing member 40 is formed of a transparent resin material having a lower melting point than the glass beads 110, the glass beads 110 may be attached to the sealing member 40 as the sealing member 40 is melted.
(33) Then, the protective glass 100A for a solar cell module attached to the upper portion of the sealing member 40 may be obtained as shown in
(34)
(35) The step 310 of preparing a plurality of glass beads includes preparing a plurality of glass beads 110 formed in a spherical or hemispherical shape. Specifically, the glass beads 110 preferably have a spherical shape with a diameter of 3.2 mm to 8.0 mm.
(36) The step 320 of arranging the glass beads in the horizontal direction includes horizontally arranging the glass beads in a protective glass manufacturing frame, wherein a surface of the protective glass manufacturing frame on which the glass beads 110 are placed is formed to be flat. Here, the protective glass manufacturing frame may be formed in a box shape with an open top to prevent the glass beads 110 from being separated.
(37) Although the glass beads 110 can be arranged spaced apart from each other, the outer circumferential surfaces of the glass beads 110 are preferably formed to be in contact with each other to enhance the refractive index. The step 330 of injecting the glass solution and forming the protective glass includes injecting a molten glass solution into the protective glass manufacturing frame in which the glass beads 110 are disposed and forms the protective glass. That is, the glass solution is injected into empty spaces between the glass beads 110, and the glass beads 110 are cured such that the glass beads 110 are bonded.
(38) The step 330 of injecting the glass solution into the protective glass manufacturing frame and forming the protective glass may include injecting the glass solution to a height less than half the height of the glass beads 110. Accordingly, even when the glass solution is injected, the upper portions of the glass beads 110 may maintain the hemispherical shape, and therefore the reflectance of light incident onto the glass beads 110 may be reduced.
(39) The manufacturing method 300 for a protective glass for a solar cell module may further include a step of removing the protective glass from the protective glass manufacturing frame after the step 330 of injecting the glass solution and forming the protective glass. Thereby, the protective glass 100B for a solar cell module of the type shown in
(40) The protective glass 100B for a solar cell module may be formed of tempered low-iron glass in order to protect the solar cell 20 from an external shock or the like and to prevent reflection of incident light to enhance the light transmittance. In addition, anti-reflection coating may be performed on the surface of the obtained protective glass 100B to minimize reflection of incident light.
(41) While the present disclosure has been particularly shown and described with reference to exemplary embodiments thereof shown in accompanying drawings, it is clearly understood that the same is by way of illustration and example only and is not to be taken by way of limitation and that the present disclosure described above may be variously substituted, altered, and modified by those skilled in the art to which the present invention pertains without departing from the scope and sprit of the present disclosure. Therefore, the true scope of protection of the present disclosure should be determined only by the appended claims.