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Variable Torque Control of Offshore Wind Turbine on Spar Floating Platform Using Advanced RBF Neural Network

机译:基于高级RBF神经网络的晶石浮动平台海上风力发电机的可变转矩控制

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Offshore floating wind turbine (OFWT) has been a challenging research spot because of the high-quality wind power and complex load environment. This paper focuses on the research of variable torque control of offshore wind turbine on Spar floating platform. The control objective in below-rated wind speed region is to optimize the output power by tracking the optimal tip-speed ratio and ideal power curve. Aiming at the external disturbances and nonlinear uncertain dynamic systems of OFWT because of the proximity to load centers and strong wave coupling, this paper proposes an advanced radial basis function (RBF) neural network approach for torque control of OFWT system at speeds lower than rated wind speed. The robust RBF neural network weight adaptive rules are acquired based on the Lyapunov stability analysis. The proposed control approach is tested and compared with the NREL baseline controller using the “NREL offshore 5 MW wind turbine” model mounted on a Spar floating platform run on FAST and Matlab/Simulink, operating in the below-rated wind speed condition. The simulation results show a better performance in tracking the optimal output power curve, therefore, completing the maximum wind energy utilization.
机译:由于高质量的风力发电和复杂的负荷环境,海上浮动式风力涡轮机(OFWT)一直是一个具有挑战性的研究热点。本文着重研究了基于Spar浮动平台的海上风力发电机的变转矩控制。低于额定风速区域的控制目标是通过跟踪最佳叶尖速比和理想功率曲线来优化输出功率。针对靠近载荷中心和强波耦合的OFWT的外部扰动和非线性不确定动力系统,本文提出了一种先进的径向基函数(RBF)神经网络方法,用于OFWT系统在低于额定风速时的转矩控制。速度。基于Lyapunov稳定性分析,获得了鲁棒的RBF神经网络权重自适应规则。使用“ NREL海上5 andMW风力发电机”模型对建议的控制方法进行了测试,并与NREL基准控制器进行了比较,该模型安装在FAST和Matlab / Simulink上运行的Spar浮动平台上,并在低于额定风速的条件下运行。仿真结果表明,在跟踪最佳输出功率曲线时具有更好的性能,因此可以最大程度地利用风能。

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