IP Library › Granted Patent US 10,151,302
Granted Patent B2
US 10,151,302 · App. 15/043,822 · Granted Dec 11, 2018

Compact wind power generation system

Inventors: Timothy T. Takahashi (Phoenix, AZ); Calahan B. Campton (Royal Oak, MI); Donald L. Wood (Phoenix, AZ)
Assignee: Arizona Board of Regents on behalf of Arizona State University
F03D15/10F03D9/25F03D13/20F03D80/70F03D9/11F05B2240/13F05B2260/402F05B2260/4021Y02E10/721
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Quick Facts
Patent No.
US 10,151,302
App. No.
15/043,822
Granted
Dec 11, 2018
Kind
B2
Abstract

Exemplary compact wind power generation systems are configured to be suitable for residential and other locations where concealed moving parts are desirable. The wind power generation systems utilize a propeller disposed behind a contracting inlet. The propeller blades may be oriented “into the wind” to develop consistent torque across a variety of wind speeds. The propeller may rim-drive power generation components, further reducing vibration, or may share a common rotational axis with the power generation components.

Claims (40)

1. A wind power generation system, comprising:

an enclosure configured with an airflow inlet and an airflow exit, wherein the airflow inlet is configured with a contraction ratio of at least 5:1; and

a propeller disposed between the airflow inlet and the airflow exit, wherein the propeller is configured to extract mechanical energy from airflow captured by the inlet,

wherein the airflow exit is configured to vent air which has passed over the propeller out of the enclosure,

wherein the propeller is coupled to three or more bearing assemblies, and

wherein each bearing assembly is configured to hold the propeller in positional space, but allow the propeller to spin freely.

2. The wind power generation system of claim 1 , wherein the effective airflow velocity over the propeller is dominated by the axial flow of the airflow supplied by the airflow inlet.

3. The wind power generation system of claim 1 , further comprising an electrical generator coupled to the propeller via a belt drive.

4. The wind power generation system of claim 3 , wherein a step-up gear ratio between the propeller and the electrical generator is between 1:1 and 1:20.

5. The wind power generation system of claim 1 , further comprising an electrical generator, wherein the propeller and the electrical generator share a common rotational axis.

6. The wind power generation system of claim 5 , wherein a magnet and a coil of the electrical generator are disposed about an outer portion of the propeller.

7. The wind power generation system of claim 6 , wherein the electrical generator is a transverse flux machine.

8. The wind power generation system of claim 1 , wherein the airflow through the propeller is enhanced by the pressure differential between the freestream windward facing inlet and the leeward side separated wake flow region behind the enclosure.

9. The wind power generation system of claim 1 , wherein the airflow inlet is configured with a contraction ratio greater than 10:1.

10. The wind power generation system of claim 1 , wherein the propeller is not mounted on a central shaft.

11. The wind power generation system of claim 1 , wherein the enclosure is mounted on a turntable to enable the wind power generation system to face into oncoming airflow.

12. The wind power generation system of claim 1 , wherein, during operation of the wind power generation system, incoming airflow impinges on the propeller at a unit Reynolds number exceeding 100,000 per inch.

13. The wind power generation system of claim 1 , wherein the system is configured with a Betz limit of between 60% and 70%.

14. A wind power generation system; comprising:

an inlet comprising a leading edge at a first end of the inlet;

a propeller;

an adapter connected between a first side of the propeller and a second end of the inlet; and

an exit plenum connected to a second side of the propeller,

wherein the wind power generation system is configured with a contraction ratio, as measured between the first end of the inlet and the first side of the propeller, of at least 5:1,

wherein the propeller is coupled to three or more bearing assemblies, and

wherein each bearing assembly is configured to hold the propeller in positional space, but allow the propeller to spin freely.

15. The wind power generation system of claim 14 , further comprising an electrical generator,

wherein the propeller and the electrical generator share a common rotational axis,

wherein a magnet and a coil of the electrical generator are disposed about an outer portion of the propeller, and

wherein the electrical generator is a transverse flux machine.

16. A wind power generation system, comprising:

an enclosure configured with an airflow inlet and an airflow exit, wherein the airflow inlet is configured with a contraction ratio of at least 5:1;

a propeller disposed between the airflow inlet and the airflow exit, wherein the propeller is configured to extract mechanical energy from airflow captured by the inlet; and

an electrical generator,

wherein the airflow exit is configured to vent air which has passed over the propeller out of the enclosure,

wherein the propeller and the electrical generator share a common rotational axis,

wherein a magnet and a coil of the electrical generator are disposed about an outer portion of the propeller, and

wherein the electrical generator is a transverse flux machine.

17. The wind power generation system of claim 16 , wherein the propeller is not mounted on a central shaft.

18. The wind power generation system of claim 16 , wherein the system is configured with a Betz limit of between 60% and 70%.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 15, 2016
From: TAKAHASHI, TIMOTHY T.; CAMPTON, CALAHAN B.; WOOD, DONALD L.
To: ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY
Reel/Frame 037735/0453 →
Continuity (3)
Continuation PCTUS2014054884 · Sep 10, 2014
Provisional Application 61876626 · Sep 11, 2013
Related Publication 20160169193A1 · Jun 16, 2016
Cited By (1)
US 12,448,125