高效高增益DC-DC升压变换器分数阶PID控制器的元启发式优化整定

D. Patel, Srishti, P. Padhy
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引用次数: 0

摘要

本文讨论了一种用于光伏电池与负载间功率调节的高效高增益DC-DC升压变换器的设计与控制。DC-DC变换器提供有限的增益,并且由于非常高的占空比,它们的效率随着增益的增加而降低,这会导致开关上的高电压应力。通过使用耦合电感和箝位电路,可以在不降低效率的情况下获得更高的增益。建议采用分数阶PID (FOPID)控制器来保持负载端的恒压。与PID控制器相比,FOPID控制器具有优势,并提供更好的性能。为了调整FOPID控制器,使用了不同的优化算法。以系统的综合时间加权绝对误差(ITAE)为性能指标,通过优化算法使其最小化,从而获得FOPID控制器的参数值。即使用了四种不同的算法,即遗传算法(GA)、粒子群优化算法(PSO)、鲸鱼优化算法(WOA)和灰狼优化算法(GWO)。利用MATLAB Simulink对升压变换器和控制器进行了设计和仿真,并对采用不同优化算法的FOPID控制器和PID控制器的结果进行了比较和讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Tuning of Fractional Order PID Controller with Metaheuristic Algorithms for High Efficiency High Gain DC-DC Boost Converter
This paper discusses the design and control of a high-efficiency and high-gain DC-DC Boost Converter which is used for power conditioning between Photovoltaic cells and load. DC-DC converter offers limited gain, and their efficiency decreases with an increasing gain due to very high duty cycles, which causes high voltage stress on switches. By using a coupled inductor and a clamped circuit, higher gains are achieved without loss in efficiency. A fractional-order PID (FOPID) controller is suggested for maintaining the constant voltage at the load end. A FOPID controller has advantages over a PID controller and offers better performance. For tuning the FOPID controller, different optimization algorithms have been used. Integrated Time Weighted Absolute Error (ITAE) of the system has been taken as performance criteria and has been minimized by optimization algorithms to obtain parameter values for the FOPID controller. Namely, four different algorithms have been used, i.e., Genetic Algorithm (GA), Particle Swarm optimization Algorithm (PSO), Whale optimization Algorithm (WOA), and Grey Wolf optimization Algorithm (GWO). MATLAB Simulink has been used for design and simulation of the boost converter and controller, and the results obtained for the FOPID controller by different optimization algorithms along with a PID controller have been compared and discussed.
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