Vertical axis wind turbine
Abstract
A vertical axis wind turbine (VAWT) with improved and optimized wind-directing, wind-shaping, and wind-power conversion features is disclosed. The shapes of these features directly affect the ability of the VAWT to use the power of moving air, such as wind, to spin a rotor and create torque on a rotor shaft to generate electricity. The wind-power-conversion mechanical efficiency of the invention is significantly improved over previous efforts, to the point that the invention can convert wind energy into electrical power at a price-to-performance ratio that competes with or surpasses existing alternative energy technologies.
Claims
exact text as granted — not AI-modified1 . A vertical axis wind turbine, comprising:
at least one rotor blade adapted to turn a shaft; a rotationally symmetric stator skirt, wherein at least a portion of a wind-facing surface of the stator skirt is parabolic, and wherein the stator skirt has a horizontal cross-section of an ellipse; and at least one stator fin, each stator fin being attached at a bottom of the stator fin to the stator skirt and comprising a fin flip, the fin flip being disposed at an angle of β relative to a longitudinal axis of the stator fin and adapted to compress wind and direct the wind to the at least one rotor blade in a predetermined direction, wherein a height-to-width ratio of the vertical axis wind turbine is between 0.1 and 3.0.
2 . The vertical axis wind turbine of claim 1 , wherein the predetermined direction is counterclockwise.
3 . The vertical axis wind turbine of claim 1 , wherein the at least one rotor blade comprises three rotor blades.
4 . The vertical axis wind turbine of claim 1 , wherein at least one of a leading vertical face and a trailing vertical face of each rotor blade is arcuate or parabolic.
5 . The vertical axis wind turbine of claim 1 , wherein the at least one stator fin comprises three stator fins.
6 . The vertical axis wind turbine of claim 1 , wherein the wind-facing surface of the stator skirt comprises a lower conical portion and an upper parabolic portion.
7 . The vertical axis wind turbine of claim 1 , wherein an angle α between the wind-facing surface of the stator skirt and a horizontal axis, as measured by an average or at any point of the stator skirt, is less than 45° or more than 55°.
8 . The vertical axis wind turbine of claim 7 , wherein angle α is between 35° and 40° or between 55° and 65°.
9 . The vertical axis wind turbine of claim 1 , wherein the ellipse is a circle.
10 . A vertical axis wind turbine, comprising:
at least one rotor blade adapted to turn a shaft; a rotationally symmetric stator skirt, wherein at least a portion of a wind-facing surface of the stator skirt is parabolic, and wherein the stator skirt has a horizontal cross-section of an ellipse; a rotationally symmetric amplifier skirt, wherein at least a portion of a wind-facing surface of the amplifier skirt is parabolic, and wherein the amplifier skirt has a horizontal cross-section of an ellipse; and at least one stator fin, each stator fin being attached at a bottom of the stator fin to the stator skirt and comprising a fin flip, the fin flip being disposed at an angle of β relative to a longitudinal axis of the stator fin and adapted to compress wind and direct the wind to the at least one rotor blade in a predetermined direction, wherein a height-to-width ratio of the vertical axis wind turbine is between 0.1 and 3.0.
11 . The vertical axis wind turbine of claim 10 , wherein at least one of a leading vertical face and a trailing vertical face of each rotor blade is arcuate or parabolic.
12 . The vertical axis wind turbine of claim 10 , wherein the wind-facing surface of the amplifier skirt comprises an upper conical section and a lower parabolic section.
13 . The vertical axis wind turbine of claim 10 , wherein at least one of the ellipse of the stator skirt and the ellipse of the amplifier skirt is a circle.
14 . A vertical axis wind turbine, comprising:
at least one rotor blade adapted to turn a shaft; at least one rotor plate attached to the at least one rotor blade at one or both of a top and a bottom of the at least one rotor blade; a rotationally symmetric stator skirt, supporting the at least one rotor plate and comprising N identical trapezoidal panels, each trapezoidal panel forming an angle α with respect to a horizontal axis, the stator skirt having a horizontal cross-section of a regular polygon having N sides; at least one stator fin, each stator fin being attached at a bottom of the stator fin to the stator skirt and comprising a fin flip, the fin flip being disposed at an angle of β relative to a longitudinal axis of the stator fin and adapted to compress wind and direct the wind to the at least one rotor blade in a predetermined direction; and a top frame, attached to a top of each stator fin, wherein angle α is less than 45° or more than 55°.
15 . The vertical axis wind turbine of claim 14 , wherein the predetermined direction is counterclockwise.
16 . The vertical axis wind turbine of claim 14 , wherein the at least one rotor blade comprises three rotor blades.
17 . The vertical axis wind turbine of claim 14 , wherein each of a leading vertical face and a trailing vertical face of each rotor blade is semielliptical.
18 . The vertical axis wind turbine of claim 14 , wherein angle α is one of (i) more than 12° and less than 45° and (ii) more than 55° and less than 80°.Join the waitlist — get patent alerts
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