基于升压变换器的最优闭环线性二次型稳压器在电流光伏中的应用

Moussa Attia, M. Bechouat, M. Sedraoui, Zoubir Aoulmi
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引用次数: 0

摘要

本文采用基于扰动与观测(P&O)的间接控制实现算法克服了稳态输出功率振荡问题。这可以通过使用所提出的线性二次调节器(LQR)控制器控制DC-DC升压转换器的占空比输入来确保。它们的参数使用蚱蜢优化算法(GOA)进行优化,其中可以保证对天气条件(如绝对温度和太阳辐照度)的各种突然变化进行所需的最大功率点(MPP)的良好跟踪行为。通过以下两个阶段可以达到闭环系统所期望的性能和鲁棒性。在第一阶段,基于标准P&O算法的直接控制模式使用现有功率和测量的PV电流产生参考电流扰动。因此,通过参考电流和测量电流之间的差异提供了电流误差摄动。在第二阶段,使用稳定的LQR控制器尽可能地减轻内部控制回路中先前提供的电流误差。电流控制环问题通过平均和线性化的详细分析技术来解决,其中实际PV-boost转换器系统在期望MPP周围的线性化可以确定相应的线性植物模型。这样可以很好地优化LQR控制器参数。基于P&O算法的间接占空比控制在太阳辐照度和绝对温度的突然变化以及电阻性负载的大变化情况下具有良好的性能和鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Optimal Linear Quadratic Regulator in Closed Loop with Boost Converter for Current Photovoltaic Application
In this paper, a steady-state output power oscillation problem is overcome using the indirect control mode based-Perturb and Observe (P&O) implementation algorithm. This can be ensured through controlling the duty cycle input of the DC-DC boost converter using the proposed Linear Quadratic Regulator (LQR) controller. Their parameters are optimized using the Grasshopper Optimization Algorithm (GOA) where a good tracking behavior of a desired Maximum Power Point (MPP) can be guaranteed for various sudden changes in weather conditions such as absolute temperature and solar irradiance. The desired performances and robustness of the closed-loop system can be achieved by the two following stages. In the first stage, the standard P&O algorithm based-direct control mode generates a reference current perturbation using both existing electrical power and measured PV current. Accordingly, a current error perturbation is provided through the discrepancy between reference and measured currents. In the second stage, the previous current error provided in the inner control-loop is mitigated as much as possible using the stabilized LQR controller. The current control-loop problem is addressed with a detailed analysis technique of averaging and linearization, in which the linearization of actual PV-boost converter system around the desired MPP allows determining the corresponding linear plant-model. This leads to well optimize the LQR controller parameters. The performance and robustness provided by the P&O algorithm based-indirect duty cycle control are shown for sudden changes in solar irradiance and absolute temperature as well as in a wide variation of the resistive load.
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