IP Library Granted Patent US 10,330,086
Granted Patent B2
US 10,330,086 · App. 15/310,770 · Granted Jun 25, 2019

Vertical axis turbine clustering

Inventor: Daniel Farb (Beit Shemesh, IL)
F03D80/00F03D3/005F03D3/061F03D7/06F03D9/257F05B2230/60F05B2240/211F05B2240/40Y02E10/74Y02P70/523
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Quick Facts
Patent No.
US 10,330,086
App. No.
15/310,770
Granted
Jun 25, 2019
Kind
B2
Abstract

One of the barriers to greater adoption of small turbines is their aerodynamic interference with each other, and hence the need to separate them. Certain types of vertical axis turbines, the drag types, can actually enhance each other's performance when placed close to each other under the right conditions.

Claims (22)

1. A turbine cluster comprising:

a turbine set of structurally unconnected, vertical axis, drag turbines, each of the turbines having two or more concave turbine blades of at least 20% solidity;

a first, vertical axis, drag turbine of the turbine set driven by air flow of a prevailing velocity;

and

a second, vertical axis, drag turbine of the turbine set fixed in a position in which a rotation path defined by its blade tip enters a path of air flow having a speed greater than the prevailing velocity, wherein the air flow having a speed greater than the prevailing velocity is deflected from blade rotation of the first turbine, wherein the rotation path defined by the blade tip of the second turbine is disposed at a distance from a shaft center of the first turbine substantially equal to a radius length of the first turbine times 1.05-1.6 measured at a deviation angle, a first leg of the deviation angle defined by a flow direction of the prevailing air flow and a second leg of the deviation angle defined by a line traversing axes of the first turbine and the second turbine, the deviation angle ranging between 45-135°.

2. The turbine cluster of claim 1 , wherein the first turbine and the second turbine are configured to rotate in an identical direction.

3. The turbine cluster of claim 1 , wherein the first turbine and the second turbine are configured to rotate in opposite directions.

4. The turbine cluster of claim 1 , wherein the turbine set is implemented with turbines having two blades.

5. The turbine cluster of claim 1 , wherein the turbine set is implemented with turbines having three blades.

6. The turbine cluster of claim 1 , wherein the two or more concave turbine blades have at least 60% solidity.

7. The turbine cluster of claim 1 , wherein the second turbine includes a processor, with memory that receives information on at least the blade positions of both turbines and wind speed and direction, and coordinating by means of the processor output the position of the blades in respect to blades on the first turbine.

8. A method for capturing air flow in turbine clusters, the method comprising:

providing a turbine set of structurally unconnected, vertical axis, drag turbines, each of the

turbines having two or more concave turbine blades of at least 20% solidity;

driving a first, vertical axis, drag turbine of the turbine set with an air flow of a prevailing velocity; and

driving a second, vertical axis, drag turbine of the turbine set fixed in a position in which a rotation path defined by its blade tip enters a path of air flow having a speed greater than the prevailing velocity, wherein the air flow having a speed greater than the prevailing velocity is deflected from blade rotation of the first turbine, wherein the rotation path defined by the blade tip of the second turbine is disposed at a distance from a shaft center of the first turbine substantially equal to a radius length of the first turbine times 1.05-1.6 measured at a deviation angle, a first leg of the deviation angle defined by a flow direction of the prevailing air flow and a second leg of the deviation angle defined by a line traversing axes of the first turbine and the second turbine, the deviation angle ranging between 45-135°.

9. The method of claim 8 , wherein the first turbine and the second turbine are configured to rotate in an identical direction.

10. The method of claim 8 , wherein the first turbine and the second turbine are configured to rotate in opposite directions.

11. The method of claim 8 , wherein the turbine set is implemented with turbines having two blades.

12. The method of claim 8 , wherein the turbine set is implemented with turbines having three blades.

13. The method of claim 8 , wherein the two or more concave turbine blades have at least 60% solidity.

14. The method of claim 8 , wherein the second turbine includes a processor, with memory that receives information on at least the blade positions of both turbines and wind speed and direction, and coordinating by means of the processor output the position of the blades in respect to blades on the first turbine.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2018
From: FLOWER TURBINES, LLC
To: FARB, DANIEL
Reel/Frame 046198/0868 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 13, 2016
From: FARB, DANIEL
To: FLOWER TURBINES, LLC.
Reel/Frame 040608/0427 →
Continuity (2)
Provisional Application 62001103 · May 21, 2014
Related Publication 20170089326A1 · Mar 30, 2017
Cited By (8)
US 12,199,437 US 12,209,571 US 12,228,105 US 12,276,208 US 12,305,610 US 12,348,046 US 12,352,240 US 12,362,698