WIND TURBINE BLADE FLOW REGULATION
20220403816 · 2022-12-22
Inventors
Cpc classification
F03D1/0633
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/3062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/506
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D1/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/604
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A wind turbine is provided including: a pressure supply system for providing a pressurized fluid for operating an aerodynamic device on a blade between a first protruded configuration and a second retracted configuration, the pressure supply system including a pressure line and a suction line and at least one distribution valve for connecting the pressure line and the suction line to the aerodynamic device. The distribution valve includes: a port connected with the aerodynamic device for sending the pressurized fluid to the aerodynamic device and receiving the pressurized fluid from the aerodynamic device, a first cavity connected with the pressure line and a second cavity connected with the suction line, the first cavity and the second cavity being connectable to the port, a distribution element having a passage connected to the first and second cavity and the port.
Claims
1. A wind turbine comprising: a rotor blade comprising an aerodynamic device for influencing an airflow flowing from a leading-edge section of the rotor blade to a trailing edge section of the rotor blade, wherein the aerodynamic device is mounted at a surface the rotor blade; a pressure supply system for providing a pressurized fluid for operating the aerodynamic device between a first protruded configuration and a second retracted configuration, the pressure supply system including a pressure line and a suction line and at least one distribution valve for connecting the pressure line and the suction line the aerodynamic device; wherein the distribution valve includes: a port reconnected with the aerodynamic dev ice for sending the pressurized fluid to the aerodynamic device and receiving the pressurized fluid from the aerodynamic device; a first cavity un connected with the pressure line and a second cavity connected with the suction line, the first cavity and the second cavity having respectively a first opening and a second opening connectable to the port; and a distribution element having a passage U n connected to the port, the distribution element being movable between a first operating position in which the passage is in communication with the first cavity through the first opening and a second operating position in which the passage is in communication with the second cavity through the second opening.
2. The wind turbine according to claim 1, wherein the distribution element includes a third cavity connected to the port, the third cavity having a third opening in communication with the first opening when the distribution element is in the first operating position or in communication with the second opening when the distribution element is in the second operating position.
3. The wind turbine according to claim 1, wherein the distribution element is interposed between the first cavity and the second cavity.
4. The wind turbine according to claim 3, wherein the distribution element is rotatable between the first operating position and the second operating position.
5. The wind turbine according to claim 4, wherein the first cavity and the second cavity are through holes provided in a valve body of the distribution valve.
6. The wind turbine according to claim 5, wherein the first cavity and the second cavity are parallel to each other.
7. The wind turbine according to claim 5, wherein the distribution element is rotatable about an operation axis inclined with respect to a first axis of the first cavity or a second axis of the second cavity.
8. The wind turbine according to claim 4, wherein the first operating position and the second operating position are distanced from one another of an angle between 90 and 270 degrees.
9. The wind turbine according claim 5, wherein the pressure supply system comprises a plurality of distribution valves having a plurality of respective first cavities connected to each other to form a pressure passage connected to the pressure line and a plurality of respective second cavities connected to each other to form a suction passage connected to the suction line.
10. The wind turbine according to claim 1, wherein the distribution valve comprises two stepper motors connected in series for operating the the distribution element between the the first operating position and the second operating position.
Description
BRIEF DESCRIPTION
[0024] Some of the embodiments will be described in detail, with reference to the following figures, wherein like designations denote like members, wherein:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION
[0031]
[0032] The wind turbine 1 further comprises at least one blade 20 (in the embodiment of
[0033]
[0034] The aerodynamic device 30 is arranged on the suction side 25 between the leading edge 41 and the trailing edge 31.
[0035] The aerodynamic device 30 in
[0036] The actuating hose 53 is comprised in a pressure supply system 52, controlled by a control unit 51 and monitored by a monitor unit 54. The pressure supply system 52 provides a pressurized fluid, for example pressurized air or other pressurized gasses. In this context, the term “pressurized fluid” not only implies positive pressure but also negative pressure, wherein fluid is sucked (or “drawn”) out of the actuating hose 53 of the aerodynamic device 30. For respectively providing a positive and a negative pressure to the actuating hose 53, the pressure supply system 52 respectively comprises a pressure line and a suction line. Finally, the control unit 51 is responsible for setting a specific pressure at the pressure supply system 52 which subsequently leads to a certain predetermined pressure at the aerodynamic device 30.
[0037] In the example shown in
[0038] The rotor blade 20 additionally comprises a flow regulating unit 40 comprising multiple pairs of vortex generators. The flow regulating unit 40 are arranged on the suction side 25 of the blade 20 between the aerodynamic device 30 and the the trailing edge 31. According to other embodiments of the present invention (not shown in the attached figures), the flow regulating unit 40 are arranged on the suction side 25 of the blade 20 between the leading edge 41 and the aerodynamic device 30. According to other embodiments of the present invention (not shown in the attached figures), the flow regulating unit 40 are not present and only the aerodynamic device 30 is used to regulate the flow on the surface of the blade 20. According to other embodiments of the present invention (not shown in the attached figures), the blade 20 comprises a plurality of aerodynamic devices 30.
[0039]
[0040]
[0041]
[0042] The first cavity 61 and the second cavity 62 may be provided in the valve body 68 as two respective through holes having a respective first axis X1 and a second axis X2. The axes X1, X2 of the first cavity 61 and the second cavity 62 may be parallel to each other. The distribution element 70 is interposed between the first cavity 61 and the second cavity 62. The distribution element 70 is rotatable between the first operating position and the second operating position. The distribution element 70 may be rotatable about an operation axis X3 inclined with respect to the first axis X1 of the first cavity 61 and the second axis X2 of the second cavity 62. The operation axis X3 may be orthogonal with respect to the plane identified by the first axis X1 and the second axis X2. The first operating position and the second operating position may be angularly distanced from one another of an angle comprised between 90 and 270 degrees. The first operating position and the second operating position may be angularly distanced from one another of an angle of 180 degrees. The distribution element 70 and the third cavity 73 may be cylindrical and co-axial with the operation axis X3. According to other embodiments of the present invention (not shown), the distribution element is translatable between the first operating position and the second operating position. The distribution valve 60 further comprises two stepper motors 69 co-axial with the operation axis X3 and connected in series for operating the the distribution element 70 between the the first operating position and the second operating position. The stepper motors ensure that the distribution element 70 can switch very fast between the the first operating position and the second operating position. The presence of two stepper motors 69 provides a convenient level of redundancy. The distribution valve 60 further comprises an inductive sensor 67 used for zero-point adjustment of the stepper motors 69. According to other embodiments of the present invention (not shown), the distribution valve 60 has a pneumatic activation or a solenoid activation.
[0043]
[0044] Accordingly, the rotor plane of the wind turbine can be divided into portions extending along the blades and comprised between the blade root 21 and the blade tip 20, each portion comprising one or more aerodynamic devices 30 and one distribution valve 60 being provided for operating all the aerodynamic devices 30 in corresponding portions of all the blades, for example one distribution valve 60 for operating all the aerodynamic devices 30 in all the portions closer to the blade roots 21 and one distribution valve 60 for operating all the aerodynamic devices 30 in all the portions closer to the blade tips 22.
[0045] Although the present invention has been disclosed in the form of preferred embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the invention.
[0046] For the sake of clarity, it is to be understood that the use of “a” or “an” throughout this application does not exclude a plurality, and “comprising” does not exclude other steps or elements. The mention of a “unit” or a “device” does not preclude the use of more than one unit or device.