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Intelligent Optimal Control of Wind Power Generating System by a Complemented Linear Quadratic Gaussian Approach

机译:通过补充线性二次高斯方法对风力发电系统智能最佳控制

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As wind turbines continue to grow in size and flexibility and are deployed in more hostile environments, the need to develop advanced control schemes will be essential to deliver the lowest possible energy costs. A sophisticated control strategy is presented to compensate for the complicated effects of a stochastic operating environment and nonlinearities inherent in wind turbine generator (WTG) dynamics that cause parametric uncertainties. In low to medium winds the objective is to follow wind speed variations with the target of optimizing aerodynamic efficiency. At above-rated wind speeds, the controller's purpose is to add damping to the drive train while the pitch control mechanism ensures the maximum power constraint is respected, thereby preventing rotor overspeed. Simulations based on modeling the wind speed as a stochastic process, and the WTG as a multimass model with a soft shaft linking the turbine with the asynchronous generator, show the efficacy of the proposed paradigm in meeting the control objectives.
机译:风力涡轮机继续在规模和灵活性,以发展和部署在更恶劣的环境中,开发先进的控制方案的需求将是至关重要的,以提供尽可能低的能源成本。一个复杂的控制策略被呈现给补偿随机操作环境和在风力涡轮发电机(WTG)导致参数不确定性动力学固有非线性的复杂影响。在低到中等卷绕目标是要注意风速变化以优化空气动力效率的目标。在高于额定风速,控制器的目的是为了增加阻尼到传动系,而桨距控制机构保证了最大功率约束尊重,从而防止转子超速。模拟基于建模风速作为随机过程,并且作为WTG用软轴连接与所述异步发电机的涡轮机的模型multimass,显示在满足控制目标所提出的范例的功效。

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