详细信息

Adaptive Virtual Capacitor Control Based on LADRC for Voltage Regulation in Industrial DC Microgrids  ( EI收录)  

文献类型:期刊文献

英文题名:Adaptive Virtual Capacitor Control Based on LADRC for Voltage Regulation in Industrial DC Microgrids

作者:Zheng, Zixuan[1]; Li, Shijie[1]; Huang, Chunjun[2]; Li, Zhongmei[3]; Wang, Yang[1]; Chen, Yunzhu[1]; Ma, Junhao[1]; Zhang, Mingshun[1]; Xiao, Xianyong[1]

机构:[1] Sichuan University, College of Electrical Engineering, Chengdu, 610065, China; [2] Delft University of Technology, Department of Electrical Sustainable Energy, CD, Delft, 2628, Netherlands; [3] East China University of Science and Technology, Key Laboratory of Smart Manufacturing in Energy Chemical Process, Ministry of Education, Shanghai, 200237, China

年份:2026

外文期刊名:IEEE Transactions on Energy Conversion

收录:EI(收录号:20262320863218)

语种:英文

外文关键词:Adaptive control systems - Capacitors - Disturbance rejection - Dynamic models - Electric machine control - Feedback - Microgrids - Virtual addresses - Voltage control

摘要:To address the critical voltage stability of industrial DC microgrids serving sensitive loads, virtual capacitor control is a promising technique for inertia enhancement. However, conventional virtual capacitor control, with its fixed parameters and limited disturbance rejection capability, struggles to maintain qualified voltage quality, threatening the reliable operation of industrial equipment. This paper proposes a novel adaptive virtual capacitor control strategy based on linear active disturbance rejection control (LADRC). The key contribution is a novel control architecture where the virtual capacitor is not predetermined but is adaptively modulated by real-time disturbance estimated by LADRC. This unique feedback mechanism allows the system to proactively counteract both external load changes and internal parameter uncertainties, achieving superior voltage regulation. Furthermore, an integrated sliding time window filter ensures smooth control action by mitigating oscillations from voltage ripple. The proposed strategy's effectiveness in simultaneously enhancing voltage deviation suppression, ripple mitigation, and dynamic inertia support is validated through simulation and hardware-in the-loop (HIL) experiments. ? 1986-2012 IEEE.

参考文献:

正在载入数据...

版权所有©华东理工大学 重庆维普资讯有限公司 渝B2-20050021-7 
渝公网安备 50019002500408号 违法和不良信息举报中心