Current error space phasor based hystersis controller applied to Bi-directional front-end boost-converter for unity power factor and low THD

M. Shah, P. N. Tekwani
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引用次数: 3

Abstract

Three-phase pulse width modulated (PWM) front-end converter (FEC) has now become an essential part of many power electronic systems such as uninterruptible power supplies (UPS), battery chargers, and motor drives, etc. This paper presents simulation analysis of two-level front-end boost-converter which employs current error space phasor based hysteresis controller. The proposed controller is an effort towards overcoming the limitations of conventional hysteresis controller; like, limit cycle oscillation, overshoot in current error, generation of subharmonics in the input current, and random switching of voltage vectors. The proposed controller ensures switching of only adjacent voltage vectors for position of reference voltage vector in a given sector of voltage space phasor structure of FEC. The controller is self-adaptive in nature and keeps the current error space phasor within the prescribed hexagonal boundary. Unity power factor and low total harmonic distortion (THD) in line current under various steady state conditions with bi-directional power flow capability are quite evident from the presented studies for the proposed controller based FEC. The transient performance of the proposed controller is also studied and results are presented depicting good dynamic response and effectiveness of the controller. Performance of FEC with conventional hysteresis controller is verified by hardware implementation and results are also discussed in presented work.
基于电流误差空间相量的滞回控制器应用于双向前端升压变换器,实现了单位功率因数和低THD
三相脉宽调制(PWM)前端变换器(FEC)已成为不间断电源(UPS)、电池充电器、电机驱动等电力电子系统的重要组成部分。本文对采用基于电流误差空间相量的滞环控制器的两电平前端升压变换器进行了仿真分析。所提出的控制器是克服传统迟滞控制器局限性的一种努力;例如,极限环振荡,电流误差超调,输入电流次谐波的产生,电压矢量的随机切换。该控制器保证参考电压矢量在FEC电压空间相量结构的给定扇区中的位置只进行相邻电压矢量的切换。该控制器具有自适应特性,使电流误差空间相量保持在规定的六边形边界内。从本文提出的基于FEC的控制器的研究中可以明显看出,在各种稳态条件下,具有双向潮流能力的线路电流具有统一的功率因数和低的总谐波失真(THD)。研究了该控制器的瞬态性能,结果表明该控制器具有良好的动态响应和有效性。通过硬件实现验证了采用传统迟滞控制器的FEC的性能,并对结果进行了讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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