An enhanced exponential reaching law based sliding mode control strategy for a three phase ups system

Q3 Engineering
Venkatesh Nayak, Shylendra Kumar
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引用次数: 1

Abstract

UPS is used to deliver a high quality sinusoidal waveform to consumers without any interruptions. This work proposes an Enhanced Exponential Reaching Law (EERL) based Sliding Mode Control (SMC) for a three- phase UPS 30 kVA system used in industrial Applications. The work presents the application of proposed controller on the rectifier side as well as on the inverter side feeding a linear and/or a nonlinear load. Mathematical models of the three phase rectifier (AC/DC) and three phase inverter (DC/AC) are derived. Frequency response characteristics are plotted to observe the system stability using state feedback approach. A DC/DC buck/boost converter is utilised for charging and discharging of battery which acts as a secondary power source for the UPS to feed critical loads. It also maintains power balance. The design of SMC, HOSMC and EERL-SMC are presented. The EERL based SMC is used in this work to obtain a pure sinusoidal waveform with less settling time compared to a conventional SMC. It is robust against sudden changes in load and is more efficient compared to SMC and higher order sliding mode controller (HOSMC). Using EERL, chattering phenomenon can be very much reduced with less steady state error. Chattering is observed through phase plane plots in this paper. The system is presented with both linear and nonlinear loads. A comparison is brought with respect to a classical SMC and a higher order SMC (super twisting algorithm) for a UPS system. EERL-SMC performs better in terms of pure sinusoidal waveform, good tracking, less settling time (4ms) and less steady state error (1.74%) with low THD (0.12%). It can be an alternative to a HOSMC. Simulation studies are presented in PSCAD/EMTDC version 4.6. The system stability conditions are analysed from frequency response plots obtained through MATLR2012b platform.
基于增强指数趋近律的三相ups系统滑模控制策略
UPS用于向消费者提供高质量的正弦波形,而不会有任何中断。本文提出了一种基于增强指数逼近律(EERL)的滑模控制(SMC),用于工业应用中的三相UPS 30kva系统。该工作介绍了所提出的控制器在整流器侧以及在逆变器侧馈送线性和/或非线性负载的应用。推导了三相整流器(AC/DC)和三相逆变器(DC/AC)的数学模型。利用状态反馈的方法绘制频率响应特性,观察系统的稳定性。DC/DC降压/升压变换器用于电池的充电和放电,电池作为UPS的二次电源,为关键负载供电。它还能维持权力平衡。介绍了SMC、HOSMC和EERL-SMC的设计。与传统SMC相比,基于EERL的SMC在更短的稳定时间内获得了纯正弦波形。与SMC和高阶滑模控制器(HOSMC)相比,它对负载的突然变化具有鲁棒性,并且效率更高。使用EERL可以大大减少抖振现象,同时减小稳态误差。本文通过相平面图观察了系统的抖振。该系统同时具有线性和非线性载荷。对UPS系统的经典SMC和高阶SMC(超扭转算法)进行了比较。EERL-SMC在纯正弦波形方面表现更好,跟踪性能好,稳定时间短(4ms),稳态误差小(1.74%),THD低(0.12%)。它可以替代HOSMC。仿真研究在PSCAD/EMTDC 4.6版中给出。利用MATLR2012b平台获得的频率响应图分析了系统的稳定性条件。
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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来源期刊
Serbian Journal of Electrical Engineering
Serbian Journal of Electrical Engineering Energy-Energy Engineering and Power Technology
CiteScore
1.30
自引率
0.00%
发文量
16
审稿时长
25 weeks
期刊介绍: The main aims of the Journal are to publish peer review papers giving results of the fundamental and applied research in the field of electrical engineering. The Journal covers a wide scope of problems in the following scientific fields: Applied and Theoretical Electromagnetics, Instrumentation and Measurement, Power Engineering, Power Systems, Electrical Machines, Electrical Drives, Electronics, Telecommunications, Computer Engineering, Automatic Control and Systems, Mechatronics, Electrical Materials, Information Technologies, Engineering Mathematics, etc.
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