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Control Strategy of an Impulse Turbine for an Oscillating Water Column-Wave Energy Converter in Time-Domain Using Lyapunov Stability Method

机译:基于Lyapunov稳定性方法的时域振荡水柱波能量变换器脉冲涡轮控制策略

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We present two control strategies for an oscillating water column-wave energy converter (OWC-WEC) in the time domain. We consider a fixed OWC-WEC on the open sea with an impulse turbine module. This system mainly consists of a chamber, turbine and electric generator. For the time domain analysis, all of the conversion stages considering mutualities among them should be analyzed based on the Newtonian mechanics. According to the analysis of Newtonian mechanics, the hydrodynamics of wave energy absorption in the chamber and the turbine aerodynamic performance are directly coupled and share the internal air pressure term via the incompressible air assumption. The turbine aerodynamics and the dynamics of the electric generator are connected by torque load through the rotor shaft, which depends on an electric terminal load that acts as a control input. The proposed control strategies are an instant maximum turbine efficiency tracking control and a constant angular velocity of the turbine rotor control methods. Both are derived by Lyapunov stability analysis. Numerical simulations are carried out under irregular waves with various heights and periods in the time domain, and the results with the controllers are analyzed. We then compare these results with simulations carried out in the absence of the control strategy in order to prove the performance of the controllers.
机译:我们提出了时域中振荡水柱波能量转换器(OWC-WEC)的两种控制策略。我们考虑在海上使用脉冲涡轮模块的固定OWC-WEC。该系统主要由腔室,涡轮机和发电机组成。对于时域分析,应基于牛顿力学来分析所有考虑相互之间转换的转换阶段。根据牛顿力学的分析,腔室中吸收波能的流体力学与涡轮的空气动力学性能直接耦合,并通过不可压缩的空气假设来共享内部空气压力项。涡轮的空气动力学特性与发电机的动力学特性之间通过转子轴通过扭矩负载连接,该扭矩负载取决于作为控制输入的电气终端负载。所提出的控制策略是瞬时最大涡轮效率跟踪控制和恒定角速度的涡轮转子控制方法。两者都是通过Lyapunov稳定性分析得出的。在时域内具有不同高度和周期的不规则波下进行了数值模拟,并分析了控制器的结果。然后,我们将这些结果与在没有控制策略的情况下进行的仿真进行比较,以证明控制器的性能。

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