IP Library › Granted Patent US 12,278,593
Granted Patent B2
US 12,278,593 · App. 17/631,225 · Granted Apr 15, 2025

Three-dimensional solar electrical generation systems and methods of deployment

Inventors: Kenneth Eugene Lebioda (Calgary, CA); John Charles Goetz (Canmore, CA); Christian Bennett Lebioda (Calgary, CA); Nolan Kenneth Lebioda (Calgary, CA); Christopher Ross Armstrong Halliday (Calgary, CA)
Assignee: Stella Power Inc.
H02S30/10H02S20/10H02S40/22
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Quick Facts
Patent No.
US 12,278,593
App. No.
17/631,225
Granted
Apr 15, 2025
Kind
B2
Abstract

Three-dimensional solar power generation systems are described. The systems are characterized by a plurality of solar panels configured to include pole and equator facing panels and, in various embodiments additional top and/or side panels that form a segmented and dome-shaped assembly. The systems have improved efficiencies particularly with respect to early morning and evening power generation that enable improved power densities on a given land area as compared to traditional solar panel arrays. Methods of deploying the systems are also described.

Claims (37)

1. An array of solar panel assemblies, the array comprising:

a plurality of rows of solar panel assemblies having a row spacing with a width RS between each row,

wherein each solar panel assembly has:

a length axis L, and

a plurality of rectangular solar panels having an assembled height h, the plurality of rectangular solar panels including at least two adjacent sub-assemblies of an equator facing panel (EFP), a top panel (TP) and a pole facing panel (PFP), wherein, within each adjacent assembly the EFP, TP and PFP are fixedly connected together and oriented with respect to a horizontal plane wherein

each TP is between an EFP and PFP and connected to a top edge of an EFP and PFP, the top edge parallel to the length axis;

each PFP is angled with respect to the horizontal plane at an angle β;

each EFP is angled with respect to the horizontal plane at an angle θ;

each TP is angled with respect to the horizontal plane at an angle ε and wherein θ and ε are not equal;

each TP fixedly interconnects the EFP and PFP to form a fixed segmented and dome-shaped assembly; and

each PFP and EFP each have respective lengths to support a TP at the angle ε, and

an inter-row solar panel (IRSP) configured to a lower edge of the EFPs or PFPs of the solar panel assembly within space row and wherein each IRSP is configured or selective movement of the IRSP between a deployed and exposed position and an un-deployed position and to abut an adjacent EFP or PFP of another solar panel assembly of the array in the deployed position.

2. The array as in claim 1 where the IRSP is pivotally attached to the solar panel assembly and configured to pivot between the deployed and exposed position and the un-deployed position.

3. The array as in claim 1 where the IRSP is configured to the solar panel assembly with a drawer system configured to slide the IRSP between the deployed and exposed position where the IRSP extends outwardly from the solar panel assembly into the space row and the un-deployed position where the IRSP is beneath the solar panel assembly.

4. The array as in claim 1 wherein each PFP and EFP are substantively equal in area and each TP is substantively twice the area of a PFP or EFP.

5. The array of claim 1 further comprising four trapezoidal side panels and where each trapezoidal side panel has two side edges operatively connected to a corresponding side edge of an adjacent side panel.

6. The array of claim 1 wherein the array has height range from top to bottom of a PFP of 18 to 28 inches when the array is deployed between 45-60 degrees latitude.

7. The array of claim 1 wherein the array has a height range from top to bottom of PFPs of 24 to 36 inches when the array is deployed between 0-45 degrees latitude.

8. The array as in claim 1 where ε is 0-20°.

9. The array as in claim 1 where h is 1-3 feet.

10. The array as in claim 1 where θ is 10-45°.

11. The array as in claim 1 where θ is 10-30°.

12. The array as in claim 1 where β is 10-45°.

13. The array as in claim 1 where β is 30-45°.

14. The array as in claim 1 wherein each solar panel assembly has a width W defined as a cross-sectional and transverse width through the PFP, TP and EFP and the length L perpendicular to W is 1-20 times W.

15. An array of solar panel assemblies, the array comprising a plurality of rows of solar panel assemblies having a row spacing with a width RS between each row, wherein each solar panel assembly has a length axis L, where each solar panel assembly consists of:

a plurality of rectangular solar panels having an assembled height h, the plurality of rectangular solar panels including at least two adjacent assemblies of an equator facing panel (EFP), a top panel (TP) and a pole facing panel (PFP), wherein, within each adjacent assembly the EFP, TP and PFP are fixedly connected together and oriented with respect to a horizontal plane wherein

each TP is between an EFP and PFP and connected to a top edge of an EFP and PFP, the top edge parallel to the length axis;

each PFP is angled with respect to the horizontal plane at an angle β;

each EFP is angled with respect to the horizontal plane at an angle θ;

each TP is angled with respect to the horizontal plane at an angle ε and wherein θ and ε are not equal;

each TP fixedly interconnects the EFP and PFP to form a fixed segmented and dome-shaped assembly; and

each PFP and EFP each have respective lengths to support a TP at the angle ε.

16. The array as in claim 15 further comprising an inter-row solar panel (IRSP) configured to a lower edge of the EFPs or PFPs of the solar panel assembly within the space row and wherein each IRSP is configured for selective movement of the IRSP between a deployed and exposed position and an un-deployed position and to abut an adjacent EFP or PFP of another solar panel assembly of the array in the deployed position.

17. The array as in claim 16 where the IRSP is pivotally attached to the solar panel assembly and configured to pivot between the deployed and exposed position and the un-deployed position.

18. The array as in claim 16 where the IRSP is configured to the solar panel assembly with a drawer system configured to slide the IRSP between the deployed and exposed position where the IRSP extends outwardly from the solar panel assembly into the space row and the un-deployed position where the IRSP is beneath the solar panel assembly.

19. The array as in claim 15 wherein each PFP and EFP are substantively equal in area and each TP is substantively twice the area of a PFP or EFP.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2022
From: LEBIODA, KENNETH EUGENE; GOETZ, JOHN CHARLES; LEBIODA, NOLAN KENNETH; HALLIDAY, CHRISTOPHER ROSS ARMSTRONG; LEBIODA, CHRISTIAN BENNETT
To: STELLA POWER INC.
Reel/Frame 060080/0460 →
Continuity (2)
Provisional Application 63039775 · Jun 16, 2020
Related Publication 20220278644A1 · Sep 1, 2022
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