一种提高单相UPS逆变器性能的新型PR控制器

Prajof Prabhakaran, S. M. Krishna, Daya J. L Febin, Thinagaran Perumal
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引用次数: 2

摘要

现代不间断电源(UPS)越来越受欢迎,因为它们可以在极端负载条件下为敏感设备(如医疗,军事和通信设备)提供清洁和高质量的电力。传统的基于比例积分(PI)的UPS系统控制可以提供高质量的输出,但存在动态响应差的问题。本文提出了一种新型的比例谐振控制器来控制单相逆变器的输出电压。所提出的控制器具有快速动态响应、低或零稳态误差和降低总谐波失真(THD)的特点。基于特定的准则(如稳态误差,超调等),给出了详细的一步一步设计新控制器的过程。由于响应速度快,所提出的PR控制器也适用于电动汽车充电应用(特别是对车辆进行负载充电)。仿真和实验结果验证了所提控制器的可行性和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel PR Controller with Improved Performance for Single-Phase UPS Inverter
Modern uninterrupted power supplies (UPS) are gaining popularity as they can deliver clean and high-quality power under extreme load condition for sensitive devices (like medical, military and communication equipment). Traditional proportional-integral (PI) based control for UPS system provides high-quality output but suffers from the poor dynamic response. In this paper, a novel proportional resonant (PR) controller is proposed for controlling the output voltage of a single-phase inverter. The proposed controller provides a fast-dynamic response, low or zero steady-state error, and reduced total harmonic distortion (THD). A detailed step by step procedure to design the novel controller is presented based on the specific criteria (like steady-state error, overshoot, etc.). Due to the fast response, the proposed PR controller is also suitable for EV charging applications (specifically to the vehicle to load charging). Simulation and experimental results are presented to validate the feasibility and efficacy of the proposed controller.
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