Abstract

To optimize the energy capture from the wind, wind turbine (WT) should operate at variable speed. Based on the wind speed, the operating regions of the WT are divided into two parts: below and above the rated wind speed. The main aim at below rated wind speed is to maximize the energy capture from the wind with reduced oscillation on the drive train. At above rated wind speed, the aim is to maintain the rated power by using pitch control. This paper presents the control of WT at below rated wind speed by using backstepping sliding mode control (BSMC). In BSMC, generator torque is considered as the control input that depends on the optimal rotor speed. Usually, this optimal rotor speed is derived from effective wind speed. In this paper, effective wind speed is estimated from aerodynamic torque and rotor speed by using the modified Newton Rapshon (MNR) algorithm. Initially, a conventional sliding mode controller (SMC) is applied to the WT, but the performance of the controller was found to be less robust with respect to disturbances. Generally, WT external disturbance is not predictable. To overcome the above drawback, BSMC is proposed and both the controllers are tested with mathematical model and finally validated with the fatigue, aerodynamics, structures, and turbulence (FAST) WT simulator in the presence of disturbances. From the results, it is concluded that the proposed BSMC is more robust than conventional SMC in the presence of disturbances.

Highlights

  • Due to the environment and global climate change, renewable energy sources play a vital role in energy market

  • The wind turbine (WT) dynamics is considered as the single mass model, and estimation of effective wind speed is done by modified Newton Rapshon (MNR) based estimator

  • The proposed backstepping sliding mode control (BSMC) and conventional sliding mode controller (SMC) are initially tested with different magnitude of disturbance for the mathematical model

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Summary

Introduction

Due to the environment and global climate change, renewable energy sources play a vital role in energy market. Several papers reported for extracting maximum power at below rated wind speed. Fuzzy logic controller (FLC) is developed for maximum power extraction at below rated wind speed [7]. To extract the optimal power at below rated wind speed, using adaptive fuzzy integral sliding mode control (AFISMC) with the different types of input disturbance (maximum 10 kNm) for variable speed wind turbine is presented in [11]. In [12], fuzzy sliding mode controller (FSMC) based maximum power extraction for VSWT is proposed. Some of the controllers are not robust with respect to disturbances so that they may go for adaptive controller, but the proposed controller in this work is enough to accommodate the additive disturbance of 10 kNm. The controller is validated using FAST wind turbine model with different mean wind speed.

WT model
Control objective
Wind speed estimation
Result and discussion
Mathematical model with proposed and conventional controller
FAST model with proposed and conventional controller
Conclusion
Full Text
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