IP Library Granted Patent US 8,153,886
Granted Patent B1
US 8,153,886 · App. 10/969,577 · Granted Apr 10, 2012

Method of improving the efficiency of loosely packed solar cells in dense array applications

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Quick Facts
Patent No.
US 8,153,886
App. No.
10/969,577
Granted
Apr 10, 2012
Kind
B1
Abstract

An increased efficiency Concentrator Photovoltaic System having a plurality of solar cells laterally spaced from each other on a substrate panel. The solar cells are mounted on electrically conductive areas of an otherwise non-conductive top surface of the substrate with each cell isolated from another by a non-conductive area. The individual cells are connected using ribbons or wires, between the front contact of the solar cells to the conductive area of another cell to form a circuit connecting the cells in a desired configuration. A plurality of tubular enclosures for concentrating light on the solar cells are mounted directly above the solar cells.

Claims (22)

1. An increased efficiency Concentrator Photovoltaic System comprising:

a plurality of solar cells each having a top surface, a front edge, a rear edge, a left edge and a right edge, at least one of the left and right edges including electrical contacts;

a substrate having a non-conductive top surface having a plurality of conductive areas disposed thereon, the conductive areas being separated by non-conductive intercellular areas, each of the plurality of conductive areas having a leg portion and a U-shaped portion, each of the conductive areas configured such that one of the plurality of solar cells is disposed on the leg portion of one of the conductive area, the U-shaped portion of each conductive area having two extending members separated by a space sized to receive the leg portion of an adjacent conductive area while maintaining the non-conductive intercellular area between the leg portion of the adjacent conductive area and U-shaped portion of another conductive area;

electrical connectors in electrical communication with the electrical contacts of each solar cell to connect the solar cells to at least one of the extending members of the U-shaped portion of an adjacent conductive area to bridge the non-conductive intercellular areas;

a plurality of diodes, each of the plurality of diodes associated with one of the plurality of solar cells, each diode connecting each conductive area to an adjacent conductive area; and

a plurality of tubular enclosures each having an open top end, an open bottom end and having reflective inner wall surfaces; said open top ends having a greater circumference than that of said open bottom ends; some of said tubular enclosures being mounted directly above some of said solar cells so that solar rays regularly directed at said intercellular areas will be redirected by reflection to said respective solar cells thereby increasing the electricity producing efficiency of said Photovoltaic system.

2. An increased efficiency Concentrator Photovoltaic System as recited in claim 1 wherein at least one top edge of said open top ends of adjacent tubular enclosures are connected together to form a matrix that shields their respective intercellular areas.

3. An increased efficiency Concentrator Photovoltaic System as recited in claim 2 wherein said solar cells are aligned in rows and columns and said tubular enclosures are aligned in rows and columns.

4. An increased efficiency Concentrator Photovoltaic System as recited in claim 2 wherein said adjacent tubular enclosures have been connected together by electron beam welding.

5. An increased efficiency Concentrator Photovoltaic System as recited in claim 2 wherein said adjacent tubular enclosures have been connected together by laser welding.

6. An increased efficiency Concentrator Photovoltaic System as recited in claim 2 wherein said adjacent tubular enclosures have been connected together by injection molding.

7. An increased efficiency Concentrator Photovoltaic System as recited in claim 1 wherein said substrate is made of non-electrical conducting material.

8. An increased efficiency Concentrator Photovoltaic System as recited in claim 1 wherein said substrate is made of a conducting material in which the top surface has been rendered non-conductive by application of a surface treatment of non-conductive material.

9. An increased efficiency Concentrator Photovoltaic System as recited in claim 1 wherein said substrate is made of a conducting material in which the top surface has been rendered non-conductive by application of a surface coating of non-conductive material.

10. An increased efficiency Concentrator Photovoltaic System comprising:

a plurality of solar cells each having a top surface, a front edge, a rear edge, a left edge and a right edge, at least one of the left and right edges including electrical contacts;

a substrate having a non-conductive top surface having a plurality of conductive areas disposed thereon, the conductive areas being separated by non-conductive intercellular areas, each of the plurality of conductive areas having a leg portion and a U-shaped portion, each of the conductive areas configured such that one of the plurality of solar cells is disposed on the leg portion of one of the conductive areas, the U-shaped portion of each conductive area having two extending members separated by a space sized to receive the leg portion of an adjacent conductive area while maintaining the non-conductive intercellular area between the leg portion of the adjacent conductive area and the U-shaped portion of another conductive area;

electrical connectors in electrical communication with the electrical contacts of each solar cell to connect the solar cells to at least one of the extending members of the U-shaped portion of an adjacent conductive area to bridge the non-conductive intercellular areas; and

a plurality of inverted V-shaped protective shields formed of elongated panels that would have their bottom edges positioned adjacent to said respective left and right edges of said solar cells; said front and rear edges of said respective solar cells would be adjacent each other in a column of solar cells so that solar rays regularly directed at said intercellular areas will be redirected by reflection to said respective solar cells thereby increasing the electricity producing efficiency of said Photovoltaic System.

11. An increased efficiency Concentrator Photovoltaic System as recited in claim 10 wherein said substrate is made of non-electrical conducting material.

12. An increased efficiency Concentrator Photovoltaic System as recited in claim 10 wherein said substrate is made of a conducting material in which the top surface has been rendered non-conductive by application of a surface treatment of non-conductive material.

13. An increased efficiency Concentrator Photovoltaic System as recited in claim 10 wherein said substrate is made of a conducting material in which the top surface has been rendered non-conductive by application of a surface coating of non-conductive material.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 30, 2018
From: AMONIX, INC
To: ARZON SOLAR, LLC
Reel/Frame 046761/0472 →
SECURITY AGREEMENT Recorded Feb 27, 2012
From: AMONIX, INC.
To: SILICON VALLEY BANK
Reel/Frame 027765/0957 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 27, 2011
From: GARBOUSHIAN, VAHAN G.; SLADE, ALEXANDER M.
To: AMONIX, INC.
Reel/Frame 027448/0683 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 16, 2011
From: GARBOUSHIAN, VAHAN G.; SLADE, ALEXANDER M.
To: AMONIX, INC.
Reel/Frame 027240/0012 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 26, 2007
From: AMONIX, INC., A CALIFORNIA CORPORATION
To: AMONIX, INC., A DELAWARE CORPORATION
Reel/Frame 020143/0668 →