Claims
- 1. A solar cell module comprising:
a back cover; a transparent front cover overlying and spaced from said back cover; a plurality of solar cells disposed between said front and back covers, said cells being spaced from one another whereby predetermined areas of said back cover are free of said solar cells; and a light-transmitting material encapsulating said cells and bonded to said front and back covers; characterized by said back cover comprising a sheet of an ionomer/nylon alloy having a plurality of light-reflecting facets facing said front cover, said facets having an angular relationship with respect to said front cover such that light passing through said front cover and said light-transmitting material and impinging on said facets is reflected back through said light-encapsulating material toward said front cover at an angle relative to said front cover which is greater than the critical angle, whereby said reflected light is internally reflected back through said light-transmitting material toward said solar cells.
- 2. A solar cell module according to claim 1 wherein said light-reflecting coating comprises a metal film.
- 3. A solar cell module according to claim 2 wherein said light-reflecting coating is aluminum or silver.
- 4. A solar cell module according to claim 1 wherein said light-reflecting coating is a dielectric mirror coating.
- 5. A solar cell module according to claim 4 wherein said light reflecting coating comprises a plurality of layers of inorganic films arranged to provide a mirror function.
- 6. A solar cell module according to claim 1 wherein said back cover has a plurality of parallel V-shaped grooves in one surface thereof with said facets constituting the sides of said grooves.
- 7. A solar cell module according to claim 1 wherein said front cover is a flat sheet and further wherein each facet extends at an angle between 25 and 35 degrees relative to the plane of said front cover member.
- 8. A solar cell module according to claim 7 wherein said grooves have a depth of approximately 0.004 inch.
- 9. A solar cell module according to claim 8 wherein said back cover has a thickness of about 0.010 inch.
- 10. A solar cell module according to claim 1 wherein some of said grooves extend in a first direction and others of said grooves extend in a second direction.
- 11. A solar cell module according to claim 10 wherein said grooves form a herringbone pattern.
- 12. A solar cell module according to claim 1 wherein said grooves have an enclosed angle between 110° and 130°.
- 13. A solar cell module according to claim 1 wherein said back cover is opaque.
- 14. A solar cell module according to claim 1 wherein said ionomer/nylon alloy has the following characteristics: a tensile strength of about 7720 psi, a tensile modulus (Young's) of about 78800 psi, a Vicat value of 190° C., a specific gravity of 1.043, a mold shrinkage of about 1.0%, a melt temperature range of 235-250° C. a mold temperature range of 40-80° C., and a dielectric strength of about 1918 Volt/mil.
- 15. A solar cell module according to claim 1 wherein each of said front and rear covers has a front surface and a rear surface with said rear surfaces facing in the same direction, and further including a frame surrounding said module, said frame having first portions extending over and bonded to said front surface of said front cover and second portions extending below and bonded to said rear surface of said back cover.
- 16. A method of increasing the output current of an array of solar cells in a module having a transparent front cover, a back cover, a plurality of solar cells arranged in rows and columns between said front and back sheets with spaces between said rows and also between said columns, and a light-transmitting material encapsulating said cells and bonded to said front and back covers, said method comprising:
(1) using as said back cover an ionomer/nylon alloy sheet having a light-reflecting coating and a plurality of embossed V-shaped grooves facing said front sheet, with said grooves forming light-reflecting facets with said facets oriented at an angle of between 25 and 35 degrees to said cover sheet; at last some of said facets being located in line with said spaces; and (2) reflecting solar radiation impinging on said facets via said transparent cover sheet, said light-transmitting encapsulating material and said spaces back toward said transparent cover so that said reflected solar radiation will be reflected internally from said cover to said solar cells, whereby light impinging on said facets is directed onto said solar cells and thereby increases the output current of said solar cell module.
- 17. A method according to claim 16 wherein said grooves have a depth of approximately 0.004 inch.
- 18. A method according to claim 16 wherein said back sheet has a front surface facing said front sheet and said facets face said front sheet, whereby areas of said front surface between said rows and between said columns are exposed to receive solar radiation transmitted through said front cover.
Parent Case Info
[0001] This is a continuation-in-part of U.S. patent application Ser. No. 10/171,021, filed Jun. 12, 2002, by Ronald C. Gonsiorawski for “Solar Cell Modules With Improved Backskin” (Attorney Docket No. ASE-11).
Government Interests
[0002] This invention was made under Department of Energy Subcontract No. ZAX-8-17647-10.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10171021 |
Jun 2002 |
US |
Child |
10458616 |
Jun 2003 |
US |