IP Library Granted Patent US 9,470,210
Granted Patent B2
US 9,470,210 · App. 14/594,617 · Granted Oct 18, 2016

Magnet configurations for magnetic levitation of wind turbines and other apparatus

Inventors: Cheong S. Choi (Rockwall, TX); Michael Anthony Jenkins (Phoenix, AZ)
F03D7/0296F03D3/005F03D3/0418F03D3/0427F03D7/042F03D9/002F03D13/20F03D15/00F03D80/70F16C32/0431H02K7/09H02K49/102F05B2240/124F05B2240/13F05B2240/511F05B2240/515F05B2260/302F05B2260/404F05B2270/32F05B2270/321F05B2270/327F16C2360/31Y02E10/728Y02E10/74
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Quick Facts
Patent No.
US 9,470,210
App. No.
14/594,617
Granted
Oct 18, 2016
Kind
B2
Abstract

A wind turbine having one or more magnets for reducing friction between the turbine support and a turbine rotor. The reduction of friction between the turbine rotor and the turbine support allows for an increase in energy production and scale of the wind turbines. The magnet configuration employs a ring of cylindrically-shaped magnets at the bottom and opposed by a corresponding number of generally rectangular-shaped magnets. Bearing magnets are also employed for axial stabilization.

Claims (57)

1. A wind turbine, comprising:

a turbine rotor;

a turbine support;

a first magnet set located on a lower surface of said turbine rotor, magnets therein having a generally rectangular shape and disposed in a ring along said lower surface of said turbine rotor; and

a second magnet set located on an upper surface of said turbine support, magnets therein having a generally cylindrical shape, each of said cylindrically-shaped magnets being disposed in a ring and substantially aligned below a respective rectangularly-shaped magnet in said first magnet set,

whereby, in operation, a space between said first magnet set on said turbine rotor and said second magnet set on said turbine support opens, wherein the space is created by the magnet sets in opposition.

2. The wind turbine according to claim 1 , wherein the turbine support further comprises:

a support shaft and a base.

3. The wind turbine according to claim 2 , wherein the base further comprises:

a platform located substantially under a bottom of the base.

4. The wind turbine according to claim 2 , further comprising:

one or more stabilization magnet sets, wherein the one or more stabilization magnet sets are configured to form a space between the support shaft and the turbine rotor.

5. The wind turbine according to claim 1 , wherein the cylindrically-shaped magnets are about 1.5 inch in diameter.

6. The wind turbine according to claim 1 , wherein the cylindrically-shaped magnets are about 0.75 inches in height.

7. The wind turbine according to claim 1 , further comprising:

at least one generator configured to generate electric power from the movement of said turbine rotor.

8. The wind turbine according to claim 7 , wherein at least one generator further comprises:

a generator gear; and

a turbine gear, wherein the turbine gear is configured to move the generator gear.

9. The wind turbine according to claim 8 , further comprising:

a magnetic gear connection between the generator gear and the turbine gear, wherein the magnetic gear connection is configured to move the generator gear without friction between the turbine gear and the generator gear.

10. The wind turbine according to claim 7 , wherein said at least one generator further comprises:

at least one linear synchronous generator.

11. The wind turbine according to claim 1 , further comprising:

at least one blade coupled to said turbine rotor, said at least one blade configured to move said turbine rotor relative to said turbine support by capturing wind energy.

12. The wind turbine according to claim 11 , wherein said at least one blade is comprised of a poly-carbon material.

13. A wind turbine, comprising:

a turbine rotor;

a turbine support;

a first magnet set located on a lower surface of said turbine rotor, magnets therein having a generally rectangular shape and disposed in a ring along said lower surface of said turbine rotor; and

a second magnet set located on an upper surface of said turbine support, magnets therein having a generally cylindrical shape, each of said cylindrically-shaped magnets being disposed in a ring and substantially aligned below a respective rectangularly-shaped magnet in said first magnet set.

14. The wind turbine according to claim 13 , wherein the turbine support further comprises:

a base located below the turbine rotor;

a support shaft located along a central axis of the turbine rotor and extending therethrough along said central axis; and

a top configured to cover a substantial portion of the turbine rotor and one or more blades affixed thereto.

15. The wind turbine according to claim 14 , wherein the top further comprises:

an observation deck.

16. The wind turbine according to claim 15 , wherein the support shaft further comprises:

an interior access way configured to allow one or more persons to travel to and from the observation deck.

17. The wind turbine according to claim 16 , wherein the interior access way further comprises an elevator.

18. The wind turbine according to claim 13 , further comprising:

a transport device located beneath the turbine support and configured to move the wind turbine to and from remote sites.

19. The wind turbine according to claim 18 , wherein the transport device is a trailer.

20. The wind turbine according to claim 13 , wherein at least one of said magnet sets are permanent magnets.

21. A method for generating electricity, comprising:

lifting a vertical turbine rotor off of a turbine support using a pair of opposing magnet sets, thereby reducing the friction between the vertical turbine rotor and the turbine support,

wherein a first magnet set being located on a lower surface of said vertical turbine rotor, magnets therein having a generally rectangular shape and disposed in a ring along said lower surface of said vertical turbine rotor, and

wherein a second magnet set being located on an upper surface of said turbine support, magnets therein having a generally cylindrical shape, each of said cylindrically-shaped magnets being disposed in a ring and substantially aligned below a respective rectangularly-shaped magnet in said first magnet set;

rotating the vertical turbine rotor relative to the turbine support using the wind, the rotation of said vertical turbine rotor generating energy; and

converting the energy of the moving vertical turbine rotor into electric power.

22. The method according to claim 21 , wherein said step of lifting further comprises:

creating, via magnetic opposition between the two magnet sets, a space between the vertical turbine rotor and the turbine support.

23. The method according to claim 21 , further comprising:

rotating a turbine gear mechanically coupled to the vertical turbine rotor proximate a generator gear mechanically coupled to the generator; and

rotating the generator gear.

24. The method according to claim 23 , wherein rotating the generator gear further comprises:

engaging the generator gear with a magnetic force between the turbine gear and the generator gear.

Assignments (5)
SECURITY INTEREST Recorded Feb 7, 2019
From: HOVER ENERGY, LLC (F/K/A REGENEDYNE, LLC)
To: BEACH, GENTRY T.
Reel/Frame 048270/0205 →
CONDITIONAL BILL OF SALE AND ASSIGNMENT AGREEMENT Recorded Jul 26, 2018
From: BEACH, GENTRY
To: GENAM LLC
Reel/Frame 046635/0480 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2017
From: CHOI, CHEONG S.; JENKINS, MICHAEL ANTHONY
To: REGENEDYNE LLC
Reel/Frame 043432/0176 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2017
From: REGENEDYNE LLC
To: HOVER ENERGY, LLC
Reel/Frame 043432/0365 →
SECURITY INTEREST Recorded Feb 3, 2017
From: REGENEDYNE/HOVER ENERGY
To: VAN DYKE LAW
Reel/Frame 041627/0201 →
Continuity (3)
Continuation 13867962 · Apr 22, 2013
Provisional Application 61636583 · Apr 20, 2012
Related Publication 20150167639A1 · Jun 18, 2015