Claims
- 1. A crossflow wind turbine that generates mechanical energy from wind comprising:
a rotor having a plurality of rotor blades that are symmetrically disposed around an axis, said rotor blades disposed in said rotor so that a gap is formed between leading edges of said rotor blades; a rotor space formed in a volume that is swept out by said rotor blades, said rotor space having a drive portion in which said rotors are driven by said wind and a return portion in which said rotors return to said drive portion; a plurality of airfoils that direct wind into said drive portion and direct wind away from said return portion to cause said rotor to turn and generate said mechanical energy.
- 2. The crossflow turbine of claim 1 wherein said rotor blades are disposed in said rotor so that said leading edges are spaced apart from and overlap said axis of said rotor to form said gap.
- 3. The crossflow turbine of claim 1 wherein said rotor blades are disposed in said rotor so that said leading edges are spaced apart from and are substantially even with said axis to form said gap.
- 4. The crossflow turbine of claim 2 wherein said rotor blades are disposed in said rotor so that said wind flows across said rotor blades in said drive portion, through said gap, and into said return portion of said rotor space.
- 5. The crossflow turbine of claim 3 wherein said rotor blades are disposed in said rotor so that said wind flows across said rotor blades in said drive portion, through said gap, and into said return portion of said rotor space.
- 6. The crossflow turbine of claim 1 wherein said axis is vertical and said airfoils extend at least partially over a base so that said base and said airfoils capture wind along lower portions of said crossflow turbine and direct winds from said lower portion of said crossflow turbine.
- 7. The crossflow turbine of claim 1 wherein said airfoils are placed symmetrically around said rotor to provide an omnidirectional crossflow turbine.
- 8. The crossflow turbine of claim 1 wherein said airfoils are placed non-symmetrically around said rotor to provide a substantially bidirectional crossflow turbine.
- 9. A method of generating mechanical energy from wind comprising:
providing a crossflow wind turbine having airfoils and a rotor that sweeps out a rotor space, said rotor space having a drive portion and a return portion; symmetrically placing a plurality of rotor blades in said rotor that form a gap between leading edges of said rotor blades; placing said airfoils around said rotor to substantially direct said wind into said drive portion of said rotor space so that said wind drives said rotor blades in said drive portion, and to substantially block said wind from entering said return portion of said rotor space so that said rotor blades return to said drive portion to generate said mechanical energy.
- 10. The method of claim 9 wherein said step of symmetrically placing a plurality of rotor blades in said rotor further comprises:
placing said plurality of rotor blades in said rotor so that said leading edges are spaced apart from and overlap an axis of rotation of said rotor to form said gap.
- 11. The method of claim 9 wherein said step of symmetrically placing a plurality of rotor blades in said rotor further comprises:
placing said plurality of rotor blades in said rotor so that said leading edges are spaced apart from and are substantially even with an axis of rotation of said rotor to form said gap.
- 12. The method of claim 9 wherein said step of placing said airfoils around said rotor further comprises:
placing at least one airfoil in a position to block said wind from entering said second portion whenever said wind flows substantially from at least one predetermined direction, and placing at least one other airfoil in a position to direct said wind into said first portion whenever said wind is flowing substantially from said at least one predetermined direction.
- 13. The method of claim 9 wherein:
providing a crossflow turbine comprises providing a vertical crossflow turbine; and, placing said airfoils comprises placing said airfoils so that said airfoils at least partially extend over a base to form an airfoil so that said utility enclosure and said airfoils direct wind from lower portions of said crossflow turbine into said crossflow turbine.
- 14. The method of claim 9 wherein placing said airfoils around said rotors further comprises placing said airfoils symmetrically around said rotor to provide an omnidirectional crossflow turbine.
- 15. The method of claim 9 wherein placing said airfoils around said rotors further comprises placing said airfoils non-symmetrically around said rotor to provide a substantially bidirectional crossflow turbine.
- 16. The crossflow turbine of claim 9 wherein symmetrically placing said plurality of rotor blades in said rotor that form a gap comprises symmetrically placing said plurality of rotor blades in said rotor to form a gap so that said wind flows across said rotor blades in said drive portion, through said gap, and into said return portion of said rotor space.
- 17. A crossflow wind turbine that generates mechanical energy from wind comprising:
a rotor having a plurality of rotor blades that are symmetrically disposed around an axis, said rotor blades disposed in said rotor so that a gap is not formed between leading edges of said rotor blades; a rotor space formed in a volume that is swept out by said rotor blades, said rotor space having a drive portion in which said rotors are driven by said wind and a return portion in which said rotors return to said drive portion; a plurality of airfoils that direct wind into said drive portion and direct wind away from said return portion to cause said rotor to turn and generate said mechanical energy.
- 18. The crossflow turbine of claim 17 wherein said axis is vertical and said airfoils extend at least partially over a base so that said base and said airfoils capture wind along lower portions of said crossflow turbine and direct winds from said lower portion of said crossflow turbine.
- 19. The crossflow turbine of claim 17 wherein said airfoils are placed non-symmetrically around said rotor to provide a substantially bidirectional crossflow turbine.
- 20. The crossflow turbine of claim 17 wherein said airfoils are placed non-symmetrically around said rotor to provide a substantially bidirectional crossflow turbine.
- 21. A method of generating mechanical energy from wind comprising:
providing a crossflow wind turbine having airfoils and a rotor that sweeps out a rotor space, said rotor space having a drive portion and a return portion; symmetrically placing a plurality of rotor blades in said rotor that do not form a gap between leading edges of said rotor blades; placing said airfoils around said rotor to substantially direct said wind into said drive portion of said rotor space so that said wind drives said rotor blades in said drive portion, and to substantially block said wind from entering said return portion of said rotor space so that said rotor blades return to said drive portion to generate said mechanical energy.
- 22. The method of claim 21 wherein:
providing a crossflow turbine comprises providing a vertical crossflow turbine; and, placing said airfoils comprises placing said airfoils so that said airfoils at least partially extend over a base to form a ground airfoil so that said utility enclosure and said airfoils direct wind from lower portions of said crossflow turbine into said crossflow turbine.
- 23. The method of claim 21 wherein placing said airfoils around said rotors further comprises placing said airfoils symmetrically around said rotor to provide a substantially omnidirectional crossflow turbine.
- 24. The method of claim 21 wherein placing said airfoils around said rotors further comprises placing said airfoils non-symmetrically around said rotor to provide a substantially bidirectional crossflow turbine.
CROSS REFERENCE TO RELATED CASES
[0001] The present patent application is based upon and claims the benefit of U.S. Provisional Patent Application Ser. No. 60/467,773, filed on Apr. 30, 2003, entitled “Wind Turbine” by Ronald J. Taylor and Scott J. Taylor, which is hereby specifically incorporated herein by reference for all that it discloses and teaches.
Provisional Applications (1)
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Number |
Date |
Country |
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60467773 |
Apr 2003 |
US |