IP Library Granted Patent US 11,821,406
Granted Patent B1
US 11,821,406 · App. 17/830,509 · Granted Nov 21, 2023

Vertical axis wind turbine and blade therefor

Inventors: Zakria Ghazanfar Toor (Khobar, SA); Haitham M. Bahaidarah (Dhahran, SA)
Assignee: KING FAHD UNIVERSITY OF PETROLEUM AND MINERALS
F03D3/062F03D3/005
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Quick Facts
Patent No.
US 11,821,406
App. No.
17/830,509
Granted
Nov 21, 2023
Kind
B1
Abstract

A vertical axis wind turbine blade that includes an elongated wing and at least one airflow blocker in the elongated wing. The elongated wing has a first surface and a second surface which meet at a leading edge and a trailing edge, where the leading edge includes a convex curve. The elongated wing also includes a leading edge slat between the first surface and the second surface; and at least one hollow channel extending from the leading edge slat to the first surface. The hollow channel is curved, and the airflow blocker is configured to block the hollow channel.

Claims (37)

1. A vertical axis wind turbine blade, comprising:

an elongated wing having a first surface and a second surface, the first surface and the second surface meeting at a leading edge and a trailing edge, wherein the leading edge comprises a convex curve; and

at least one airflow blocker in the elongated wing,

wherein the elongated wing comprises:

a leading edge slat formed by the leading edge, the first surface, and the second surface and delimited by a leading edge channel, the leading edge slat being contained within a first side wall of the elongated wing and a second side wall of the elongated wing and being wider at the first surface than at the second surface; and

at least one hollow channel extending from the leading edge channel at a midpoint of the leading edge slat to the first surface,

wherein the at least one hollow channel is curved, and

wherein the at least one airflow blocker includes at least one channel, wherein the at least one airflow blocker includes a plurality of angled filter layers, and

wherein the at least one airflow blocker is configured to obstruct airflow through the at least one hollow channel.

2. The vertical axis wind turbine blade of claim 1 , wherein the leading edge channel is disposed along a length of the leading edge slat.

3. The vertical axis wind turbine blade of claim 2 , wherein the at least one hollow channel includes a branch in fluid communication with the leading edge channel that extends to the second surface.

4. The vertical axis wind turbine blade of claim 3 , wherein the at least one airflow blocker is configured to block the at least one hollow channel at the first surface or the second surface.

5. The vertical axis wind turbine blade of claim 2 , wherein the at least one airflow blocker is located in the leading edge channel and wherein the at least one airflow blocker is configured to obstruct airflow through the leading edge channel.

6. The vertical axis wind turbine blade of claim 1 , wherein the at least one hollow channel is connected to at least one slot on the first surface, and wherein the at least one slot is positioned along a chord of the vertical axis wind turbine blade.

7. The vertical axis wind turbine blade of claim 1 , further comprising an airflow sensor disposed in the at least one hollow channel and/or the leading edge channel.

8. The vertical axis wind turbine blade of claim 7 , wherein the airflow sensor is disposed in the at least one hollow channel and wherein the airflow sensor is configured to detect an angle of attack of against the vertical axis wind turbine blade.

9. The vertical axis wind turbine blade of claim 1 , wherein the vertical axis wind turbine blade is a straight blade.

10. A vertical axis wind turbine, comprising:

a central rotating shaft;

at least one blade having a first surface and a second surface, the first surface and the second surface meeting at a leading edge and a trailing edge, wherein the leading edge comprises a convex curve; and

at least one airflow blocker in the at least one blade,

wherein the at least one blade comprises:

a leading edge slat, formed by the leading edge, the first surface, and the second surface and delimited by a leading edge channel the leading edge slat being contained within a first side wall of the elongated wing and a second side wall of the elongated wing and being wider at the first surface than at the second surface; and

at least one hollow channel extending from the leading edge channel at a midpoint of the leading edge slat to the first surface,

wherein the at least one hollow channel is curved, and

wherein the at least one airflow blocker includes at least one channel, wherein the at least one airflow blocker includes a plurality of angled filter layers, and

wherein the at least one airflow blocker is configured to obstruct airflow through the at least one hollow channel, and

wherein the leading edge and the trailing edge are oriented parallel to a vertical axis of the central rotating shaft.

11. The vertical axis wind turbine of claim 10 , wherein the at least one blade is attached to the central rotating shaft via at least one blade strut.

12. The vertical axis wind turbine of claim 10 , wherein the leading edge channel disposed along a length of the leading edge slat.

13. The vertical axis wind turbine of claim 12 , wherein the at least one hollow channel includes a branch in fluid communication with the leading edge channel that extends to the second surface.

14. The vertical axis wind turbine of claim 13 , wherein the at least one airflow blocker is configured to block the at least one hollow channel at the first surface or the second surface.

15. The vertical axis wind turbine of claim 12 , wherein the at least one airflow blocker is located in the leading edge channel and wherein the at least one airflow blocker is configured to obstruct airflow through the leading edge channel.

16. The vertical axis wind turbine of claim 10 , wherein the at least one hollow channel is connected to at least one slot on the first surface, and wherein the at least one slot is parallel to a chord of the at least one blade.

17. The vertical axis wind turbine of claim 10 , further comprising an airflow sensor disposed in the at least one hollow channel and/or the leading edge channel.

18. The vertical axis wind turbine of claim 17 , wherein the airflow sensor is disposed in the at least one hollow channel and wherein the airflow sensor is configured to detect an angle of attack against the at least one blade.

19. The vertical axis wind turbine of claim 10 , wherein the at least one blade is a straight blade.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2022
From: TOOR, ZAKRIA GHAZANFAR; BAHAIDARAH, HAITHAM M.
To: KING FAHD UNIVERSITY OF PETROLEUM AND MINERALS
Reel/Frame 060080/0179 →
Cited By (1)
US 12,305,616