Vertical-axis wind turbine
11994103 ยท 2024-05-28
Inventors
Cpc classification
F03D3/064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/27
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The wind turbine includes a rotor 6 and a stator 1 mounted coaxially therewith and provided with lower 2 and upper 3 support structures interconnected by vertical guide vanes 4 of the stator, oriented outward. A confuser 22 with blades 23 is mounted on the lower support structure 2, and a diffuser 9 is mounted at least partially above the stator 1. A lower disc 10 of the diffuser is rigidly attached to an upper part 11 of the diffuser that serves as the upper support structure 3 of the stator. Lower 19 and upper 16 half-axles of rotation of the rotor are installed in upper 17 and lower 21 support members, respectively. A rotor body 7 is made in the general approximate form of a hollow truncated cone tapering upward having a curvilinear surface, preferably hyperbolic. Rotor blades 8 have a curvilinear surface, preferably hyperbolic, and are installed on an outer surface of the rotor body 7. Upper 13 and lower 14 impellers with curvilinear blades 15 and 20 are mounted inside the rotor body. A rotor fan 25 is additionally installed inside a cavity 24 of the lower disc 10 of the diffuser 9. The blades of the fan are wrapped around the upper part of the outer surface of the rotor body 7. Spacing of the blades of the upper impeller 13 is chosen to be greater than a blade spacing of the fan 25.
Claims
1. A wind turbine, comprising: a stator having lower and upper support structures interconnected by vertical guide vanes of the stator, a rotor comprising a rotor body having a general approximate shape of a hollow truncated cone tapering upward, and rotor blades installed on an outer surface of the rotor body, upper and lower support members, upper and lower half-axles or rotation of the rotor installed in the upper and lower support members respectively, wherein the upper and lower half-axles define a vertical axis of rotation of the rotor relative to the stator, a cross-piece, the upper support member being secured to the under support structure of the stator with the help of the cross-piece, an upper impeller secured inside an upper part of the rotor body, the upper part of the rotor body being secured to the upper half-axle for rotation of the rotor with the help of blades of the upper impeller, a lower impeller arranged in a lower part of the rotor body, wherein blades of the lower impeller connect the rotor body with the lower half-axle for rotation of the rotor, a confuser with blades, installed on the lower support structure of the stator, the lower support member being secured at a top of the confuser, a diffuser installed partially above the stator, the diffuser comprising two spaced biconvex discs, the two spaced biconvex discs including a lower disc and an upper disc, respectively, the lower disc being rigidly connected to the upper disc, while serving as the upper support member of the stator, and a rotor fan installed in a cavity of the lower disc of the diffuser, wherein blades of the rotor fan are wrapped around the outer surface of the rotor body, wherein a spacing of the blades of the upper impeller is greater than a spacing of the blades of the rotor fan, wherein: the guide vanes of the stator have a curved surface and are oriented outward, and the outer surface of the rotor body has a hyperbolic shape.
2. The wind turbine according to claim 1, wherein a respective surface of each of the rotor blades has a hyperbolic shape.
3. The wind turbine according to claim 1, wherein the guide vanes of the stator are configured to enable a change in an angle of inclination of the guide vanes relative to the vertical axis.
4. A wind turbine, comprising: a stator having lower and upper support structures interconnected by vertical guide vanes of the stator, a rotor comprising a rotor body having a general approximate shape of a hollow truncated cone tapering upward, and rotor blades installed on an outer surface of the rotor body, upper and lower support members, upper and lower half-axles for rotation of the rotor installed in the upper and lower support members respectively, wherein the upper and lower half-axles define a vertical axis of rotation of the rotor relative to the stator, a cross-piece, the upper support member being secured to the upper support structure of the stator with the help of the cross-piece, an upper impeller secured inside an upper part of the rotor body, the upper part of the rotor body being secured to the upper half-axle for rotation of the rotor with the help of blades of the upper impeller, a lower impeller arranged in a lower part of the rotor body, wherein blades of the lower impeller connect the rotor body with the lower half-axle for rotation of the rotor, a confuser with blades, installed on the lower support structure of the stator, the lower support member being secured at a top of the confuser, a diffuser installed at least partially above the stator, the diffuser comprising two spaced biconvex discs, the two spaced biconvex discs including a lower disc and an upper disc, respectively, the lower disc being rigidly connected to the upper disc, while serving as the upper support member of the stator, and a rotor fan installed in a cavity of the lower disc of the diffuser, wherein blades of the rotor fan are wrapped around the outer surface of the rotor body, wherein a spacing of the blades of the upper impeller is greater than a spacing of the blades of the rotor fan, wherein: the guide vanes of the stator have a curved surface and are oriented outward, and a respective surface of each of the rotor blades has a hyperbolic shape.
5. A wind turbine, comprising: a stator having lower and upper support structures interconnected by vertical guide vanes of the stator, a rotor comprising a rotor body having a general approximate shape of a hollow truncated cone tapering upward, and rotor blades installed on an outer surface of the rotor body, upper and lower support members, upper and lower half-axles for rotation of the rotor installed in the upper and lower support members respectively, wherein the upper and lower half-axles define a vertical axis of rotation of the rotor relative to the stator, a cross-piece, the upper support member being secured to the upper support structure of the stator with the help of the cross-piece, an upper impeller secured inside an upper part of the rotor body, the upper part of the rotor body being secured to the upper half-axle for rotation of the rotor with the help of blades of the upper impeller, a lower impeller arranged in a lower part of the rotor body, wherein blades of the lower impeller connect the rotor body with the lower half-axle for rotation of the rotor, a confuser with blades, installed on the lower support structure of the stator, the lower support member being secured at a top of the confuser, a diffuser installed at least partially above the stator, the diffuser comprising two spaced biconvex discs, the two spaced biconvex discs including a lower disc and an upper disc, respectively, the lower disc being rigidly connected to the upper disc, while serving as the upper support member of the stator, and a rotor fan installed in a cavity of the lower disc of the diffuser, wherein blades of the rotor fan are wrapped around the outer surface of the rotor body, wherein a spacing of the blades of the upper impeller is greater than a spacing of the blades of the rotor fan, wherein: the guide vanes of the stator have a curved surface and are oriented outward, and the guide vanes of the stator are configured to enable a change in an angle of inclination of the guide vanes relative to the vertical axis.
Description
EMBODIMENTS OF THE INVENTION
(1) The invention is illustrated by the drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7) A wind turbine with a vertical axis of rotation of the rotor comprises a stationary stator 1 provided with a lower support structure 2 and an upper support structure 3. The support structures 2 and 3 are interconnected by vertical guide vanes 4 of the stator, oriented outward and configured to rotate relative to an axis 5. A rotor 6 is arranged inside the stator 1 and has a common axis of symmetry therewith. A rotor body 7 is made in the general approximate form of a hollow cone tapering upward, which has a curvilinear surface. It is preferable that the curvilinear surface of the rotor body has a hyperbolic shape.
(8) Longitudinal blades 8 are installed on an outer surface of the rotor body 7 and are made in the form of curved ribs. The blades 8 are oriented at an angle to the axis of symmetry of the rotor. It is preferable that the surface of the rotor blades has a hyperbolic shape.
(9) A diffuser 9 is installed at least partially above the stator 1 and is made in the form of two spaced biconvex discs, namely, an upper disc 11 and a lower disc 10 rigidly connected to the upper disc 11, the lower disc 10 serving as the upper support structure 3 of the stator. The connection between the diffuser discs can be achieved, for example, by using studs 12. The distance between the diffuser discs is selected to provide lower air pressure above the upper impeller of the rotor.
(10) Upper 13 and lower 14 impellers of the rotor are secured inside the rotor body 7. Blades 15 of the upper impeller are used to secure the upper part of the rotor 6 to an upper half-axle of rotation 16 of the rotor, an upper support member 17 of which is attached to the upper support structure 2 by means of an upper cross-piece 18. Blades 20 of the lower impeller 14 of the rotor are used to connect the rotor 6 with a lower half-axle of rotation 19. A lower support member 21 of the rotor is secured at the top of a confuser 22 provided with blades 23.
(11) A cavity 24 of the lower disc 10 of the diffuser additionally comprises a rotor fan 25, blades 26 of which are wrapped around the upper part of the outer surface of the rotor body 7.
(12) A blade spacing of the upper impeller 13 is selected to be greater than a blade spacing of the fan 25 in order to equalize the flow velocities inside and outside the rotor body due to different angular velocities of the blades in the center of the rotor and the periphery thereof.
(13) The transmission of the rotary motion of the rotor, for example, to an electric generator or a pump, is realized by means of the lower half-axle.
(14) The wind turbine with a vertical axis of rotation of the rotor operates as follows.
(15) A horizontal air flow hits the stator vanes 4. A part of the flow impacting the outer parts of the stator vanes is deflected outward by the vanes to bypass the rotor 6. Another part of the air flow impacts the inner surfaces of the stator vanes 4, becomes accelerated by them and impacts the rotor blades 8. In this case, due to the curvilinear shape of the surface of the rotor blades, an upward flow is formed along the outer surface of the rotor concurrently with the creation of a rotation torque for the entire rotor structure. This external upward flow impacts the blades of the fan 25 of the rotor, thus creating an additional rotor torque.
(16) In the area of the stator's support structure 2, the resulting decrease in pressure causes the air flow from below to enter the confuser 22, where the vertical air flow velocity increases, the flow is swirled due to the curvilinear shape of the confuser blades 23, and an upward flow entering the rotor body 7 is formed. The internal air flow sequentially impacts the lower impeller 14 and then the upper impeller 13, therefore increasing the rotor torque.
(17) Thus, two upward vortex flows are realized in the proposed design, oneon the outer surface of the rotor, and anotherinside thereof. One vortex picks up and additionally swirls the other. This leads to an increase in the wind turbine torque in general. A series of sequentially installed blades of the confuser, as well as upper and lower impellers contributes to the creation and stage-wise amplification of the vortex flows inside the rotor body, which makes it possible to gradually enhance the effect of increasing rotor torque.
(18) The entire structure as a whole creates the motion of the enhanced air flow inside the wind turbine, including a wind shadow area, due to acceleration of the air flow by the confuser, internal impellers 13 and 14 of the rotor, rotor blades 8, as well as creation of the area of low air pressure by the fan 25 and diffuser 9.
(19) The upper disc 11 of the diffuser protects the structure from atmospheric precipitation. In addition, the proposed wind turbine with a vertical axis of rotation of the rotor is characterized by a low sound emission due to the absence of planes moving in parallel with different speeds.