一种提高直流微电网母线电压稳定性的新型自适应POL变换器控制器设计

IF 2.1 Q3 COMPUTER SCIENCE, HARDWARE & ARCHITECTURE
Rohit Kumar Rastogi;Manoj Tripathy
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引用次数: 0

摘要

本文介绍了一种基于自适应谐振频率提取的直流-直流变换器控制器,用于稳定直流微电网。由于恒功率负载(cpl)的过度应用及其变化,直流MG容易出现不稳定。在这种情况下,用于稳定直流MG系统的源侧控制技术失效。因此,为了稳定直流永磁系统,负载侧控制方法是提高直流永磁稳定性的可选方法。本文提出了一种新的前馈控制技术,以提高直流永磁电机的稳定性。该方法在不实现总幅值分离$(Z_{\text {os}}$和$y_{\text {iL}}=1/Z_{\text {iL}}) $的情况下,通过相位补偿法对负载侧dc - dc变换器的输入阻抗进行修正,以稳定直流MG系统。调查分析了整个工作频谱不稳定的可能性。在此基础上,推导出一种新的前馈补偿器,该补偿器是中心频率的函数,使其能够适应负载的变化。在此基础上,实现了buck变换器的电压模式控制。它在不增加系统复杂性和耗散的情况下减少了直流MG母线电压振荡。MATLAB®仿真结果与建议的控制方法和现有的控制方法进行了比较。此外,还发现母线电压纹波从5.28%降低到0.7%。直流母线电压和电流的沉降时间分别从0.5 s和0.25 s降低到0.25 s和0.16 s。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A New Adaptive POL Converter Controller Design to Improve Bus Voltage Stability for DC Microgrid Application
This article describes an adaptive resonance frequency extraction-based dc–dc converter controller to stabilize the dc microgrid (dc MG). The dc MG becomes prone to instability due to the excessive application of constant power loads (CPLs) and their variations. Under such conditions, the source-side control techniques for the stabilization of dc MG systems fail. Therefore, to stabilize dc MG systems, the load-side control methods are alternate approaches to improve the stability of dc MG. In this article, a new feed-forward control technique is proposed to improve the stability of the dc MG. In the proposed method, the input impedance of the load-side dc–dc converter is modified by the phase compensation method without realizing a total magnitude separation $(Z_{\text {os}}$ and $y_{\text {iL}}=1/Z_{\text {iL}}) $ to stabilize the dc MG system. The investigation analyzes the possibility of instability across the operational frequency spectrum. Based on that, a new feed-forward loop compensator is derived, which is a function of the center frequency to make it adaptive to load variations. After that, the derived compensator is realized for voltage mode control of the buck converter. It reduces the dc MG bus voltage oscillations without increasing system complexity and dissipation. The results of the MATLAB® simulation are compared with suggested and existing control methods. Moreover, it was discovered that the ripple in bus voltage decreased from 5.28% to 0.7%. And the settling durations of dc bus voltage and current were lowered from 0.5 and 0.25 s to 0.25 and 0.16 s, respectively.
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CiteScore
3.70
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