The present invention, belonging to the technical field of wind energy, relates to a method for controlling and braking wind turbine based on individual pitch control.
According to the direction of the rotor main shaft, the wind turbine can be divided into horizontal-axis wind turbine and vertical-axis wind turbine. Up to now, most onshore and offshore wind farms consist of horizontal-axis wind turbine. In accordance with the control methods, horizontal-axis turbines can be divided into stall-regulated wind turbines and pitch-regulated wind turbines. The stall ones have fixed pitch angles and are primarily kilowatt-sized wind turbines in early times. Megawatt-sized wind turbines have variable pitch and variable speed in order to achieve the power efficiency.
The structural design of the horizontal-axis wind turbines needs to meet the ultimate and the fatigue load check considering a set of load cases. The international design standards specify load cases related to normal operation, idling (parked) condition, and shutdown conditions. For pitch-regulated wind turbine, the shutdown condition means that three blades of the wind turbine shall be increased to its maximum pitch angle (90 degree) collectively in a short time. In this process, the rotor is stopped due to a sudden increase in the pitch angle and a reversion of the torque direction due to the aerodynamic forces on the blades.
There are several causes for wind turbine shutdown. High wind speed can be one cause. Wind turbine need to shut down to avoid overloading. Faults occurring at key parts of the wind turbine can be another cause. During the braking process, a large impact load be imposed on the main shaft by the sudden increase of the pitch angle of the blades. Moreover, because of the turbulent wind, the local inflow wind speed of the three blades are not the same, thus leading to uneven stress and imbalanced bending moment on the blades. This phenomenon often leads to structural fatigue damages of the main bearings and increased maintenance costs for wind turbine operators.
The objective of the present invention is to provide a method for reducing the imbalanced loads on the root of the blade during the braking process of the wind turbine. Thus, the reliability of the wind turbines can be improved while the maintenance costs are reduced.
A braking method based on the individual pitch control for wind turbines. The steps are as comprises the following steps: when a wind turbine adopts pitch braking, the pitch angle of each blade is increased by the pitch actuator installed on each blade. Because of individual pitch control system, the pitch angle of each blade in the wind turbine has different change rate. The pitch angle of each blade is adjusted in accordance with its change rate.
Strain sensors are installed at the root of each blade, sensors used for the blade pitch measurement are installed on the inner edge of the hubs, and the pitch actuators and controllers are installed in the nacelle of the wind turbine.
The respective magnitude of the tensile force is measured by the strain sensors lying on the roots of the three blades, and the response change rate is calculated.
As for the kth blade, the relation between the response change rate and tensile stress of its pitch angle is as follow:
In this formula, {dot over (θ)}k is the change rate of the pitch angle of blade k, k=1, 2, 3; σ1, σ2, σ3 is the tensile stress at the root of the blade 1, 2 and 3 at some moment; μ is the coefficient, which is determined by numerical simulation. From the equation, blade k should maintain a smaller pitch angle change rate when the tensile stress is too great. Conversely, a larger pitch angle response change rate should be adopted. However, the response change rate of the pitch angle should not exceed the limit—{dot over (θ)}max of the pitch actuator system. At different points of time, the pitch angle of each blade is increased to its maximum—90 degree by the pitch actuator. When the rotor speed is lower than 1 rpm, the braking process of the wind turbine is finished and the pitch angle no longer changes.
The wind turbine is a horizontal-axis pitch-regulated wind turbine, onshore or offshore.
The beneficial effects of the present invention:
(1) The component parts of the present apparatus: the stress strain gauge, the sensors and the pitch actuators are off-the-shelf industrial products.
(2) The impact load caused by the imbalanced loads during braking is reduced, which could also extend the life of the main shaft and main bearing of the wind turbine.
(3) The reliability of the wind turbine is improved while the maintenance costs can be reduced.
In the figures: 1 blade, 2 strain sensors, 3 seabed, 4 blade profile, 5 rotor plane.
Hereinafter, the present invention is further explained in combination with the drawings and specific embodiment.
A braking method for the individual pitch-controlled wind turbine comprises the steps as follows: when the wind turbine adopts pitch braking, the pitch angle of each blade is increased by the pitch actuator installed on each blade. Because of individual pitch control system, the pitch angle of each blade in the wind turbine has different change rate. The pitch angle of each blade is adjusted in accordance with its change rate;
Strain sensors are installed at the root of each blade. Sensors used for the blade pitch measurement are installed on the inner edge of the hubs, and the pitch actuators and controllers are installed in the nacelle of the wind turbine.
The respective magnitude of the tensile force is measured by the strain sensors lying on the roots of the three blades, and the response change rate is calculated.
As for the kth blade, the relation between the response change rate and tensile stress of its pitch angle is as follow:
In this formula, {dot over (θ)}k is the response change rate of the pitch angle of blade k, k=1, 2, 3; σ1, σ2, σ3 is the tensile stress at the root of the blade 1, 2 and 3 at some moment; μ is the coefficient, which is determined by numerical simulation. From the equation, blade k should maintain a smaller pitch angle response change rate when the tensile stress is too great. Conversely, a larger itch angle response change rate should be adopted. However, the response change rate of the pitch angle should not exceed the limit—{dot over (θ)}max of the pitch actuator system. At different times, the pitch angle of each blade is increased to its maximum—90 degree by the pitch actuator. When the rotor speed is lower than 1 rpm, the braking process of the wind turbine is finished and the pitch angle no longer changes.
Number | Date | Country | Kind |
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201810884863.8 | Aug 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/101650 | 8/22/2018 | WO | 00 |