Nonlinear Optimal Control for a PMLSG-VSC Wave Energy Conversion Unit

G. Rigatos, Pierluigi Siano, Mohammed Numay, M. Abbaszadeh, G. Cuccurullo
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Abstract

This article aims to treat the nonlinear control problem for the complex dynamics of a wave energy unit (WEC) that consists of a Permanent Magnet Linear Synchronous Generator (PMLSG) and a Voltage Source Converter (VSC). The article has developed a globally stable nonlinear optimal control method for this wave power generation unit. The new method avoids complicated state-space model transformations and minimizes the energy dispersion by the control loop. A novel nonlinear optimal control method is proposed for the dynamic model of a wave energy conversion system, which includes a Permanent Magnet Linear Synchronous Generator (PMLSG) serially connected with an AC/DC three-phase voltage source converter (VSC). The dynamic model of this renewable energy system is formulated and differential flatness properties are proven about it. To apply the proposed nonlinear optimal control, the state-space model of the PMLSG-VSC wave energy conversion unit undergoes an approximate linearization process at each sampling instance. The linearization procedure relies on a first-order Taylor-series expansion and involves the computation of the system’s Jacobian matrices. It takes place at each sampling interval around a temporary operating point, which is defined by the present value of the wave energy conversion unit’s state vector and by the last sampled value of the control inputs vector. An H-infinity feedback controller is designed for the linearized model of the wave energy conversion unit. To compute the feedback gains of this controller, an algebraic Riccati equation is repetitively solved at each time step of the control algorithm. The global stability properties of the control scheme are proven through Lyapunov analysis.
PMLSG-VSC 波能转换装置的非线性优化控制
本文旨在处理由永磁直线同步发电机(PMLSG)和电压源转换器(VSC)组成的波浪能发电装置(WEC)复杂动力学的非线性控制问题。文章为该波浪能发电装置开发了一种全局稳定的非线性优化控制方法。新方法避免了复杂的状态空间模型转换,并通过控制环路最大限度地减少了能量分散。文章针对波浪能转换系统的动态模型提出了一种新的非线性优化控制方法,该系统包括一个串联了交直流三相电压源转换器(VSC)的永磁线性同步发电机(PMLSG)。建立了该可再生能源系统的动态模型,并证明了其差分平坦性。为了应用所提出的非线性优化控制,PMLSG-VSC 波能转换装置的状态空间模型在每个采样实例中都要经历近似线性化过程。线性化过程依赖于一阶泰勒序列展开,涉及系统雅各布矩阵的计算。线性化过程在每个采样间隔围绕临时工作点进行,临时工作点由波浪能转换装置状态向量的现值和控制输入向量的最后采样值确定。针对波浪能转换装置的线性化模型,设计了一个 H-infinity 反馈控制器。为了计算该控制器的反馈增益,在控制算法的每个时间步长上都要重复求解代数里卡提方程。通过 Lyapunov 分析证明了该控制方案的全局稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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