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Online Optimal Control of Wave Energy Converters via Adaptive Dynamic Programming

机译:自适应动态规划的波能转换器在线最优控制

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The control objective of wave energy converters (WECs) is to maximize energy conversion from sea waves and guarantee their safe operation. This can be expressed as a constrained optimal control problem subject to a disturbance input (the incoming wave excitation) for energy maximization. A novel energy maximization control strategy is proposed based on the idea of approximate dynamic programming (ADP), where a critic neural network (NN) is used to approximate the time-dependant optimal cost value (due to the finite-horizon cost function), whose inputs are the current system states and the time-to-go. A recently proposed adaptation based on the parameter estimation error is used to online update the weight of critic NN, where the estimation error convergence can be proved. Hence, the network output, e.g. the costate, is used to compute the optimal feedback control. The proposed WEC control strategy does not need the non-causal information of wave prediction, which makes its implementation more economically viable without significantly reducing energy output. The efficacy of the proposed WEC control approach is demonstrated using numerical simulations.
机译:波浪能转换器(WEC)的控制目标是最大程度地利用海浪进行能量转换并确保其安全运行。这可以表示为受约束的最优控制问题,该问题受扰动输入(输入波激励)的影响而达到能量最大化。基于近似动态规划(ADP)的思想,提出了一种新的能量最大化控制策略,其中使用了评论神经网络(NN)来估计时间相关的最优成本值(由于水平有限的成本函数),其输入是当前系统状态和运行时间。基于参数估计误差的最近提出的自适应被用于在线更新评论者NN的权重,从而可以证明估计误差的收敛性。因此,网络输出例如Costate用于计算最佳反馈控制。提出的WEC控制策略不需要波浪预测的非因果信息,这使得它的实施在经济上更可行,而不会显着降低能量输出。使用数值模拟证明了所提出的WEC控制方法的有效性。

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