电压降
微电网
转换器
控制理论(社会学)
控制器(灌溉)
瞬态(计算机编程)
工程类
参数统计
计算机科学
电压
控制工程
电压调节器
控制(管理)
电气工程
人工智能
农学
操作系统
统计
生物
数学
作者
Taimur Zaman,Zhiwang Feng,S. Mitra,Mazheruddin Syed,Srinivas Bhaskar Karanki,Luiz Fernando Lavado Villa,Graeme Burt
标识
DOI:10.1109/tia.2023.3328577
摘要
Parallel operation of power converters in islanded DC microgrids exhibits significant trade-off in voltage regulation and current sharing with conventional droop control. The converters exhibit inaccuracies in proportionate sharing of current when subject to heavy and transient loading while sharing a common bus. Moreover, the inaccuracies further persist due to unmodeled dynamics, parametric uncertainties, disturbance in the system and communication reliability. Therefore, the resilient parallel operation of power converters in DC microgrids requires a robust and fast control strategy that can mitigate the effect of disturbances and maintain regulated bus voltage with proportional current sharing amongst the power converters. Consequently, this work proposes a novel ANN driven droop control for a DC microgrid to enhance the transient response and mitigate disturbance in finite time. Two controllers based on adaptive droop strategy are proposed; the primary controller is a generalized Hebb's learning law-based PI integrated controller that can adjust the gains in real time for finite-time disturbance compensation in the networks and the secondary control regulates the bus voltage using fractional order sliding mode control. The effectiveness of the proposed method is evaluated by simulation and experiment and compared with the conventional and distributed droop control methods, proving its robust and adaptive performance for resilient DC microgrid applications.
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