Autonomous Cooperative Control for Hybrid AC/DC Microgrids Considering Multi-Energy Complementarity

Multi-energy hybrid AC/DC microgrids (MGs), considering ice storage systems (ISSs), can promote the flexible integration and efficient utilization of distributed generators (DGs) and energy storage systems (ESSs), provide a reliable power supply for local loads, and achieve multi-energy complementar...

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Main Authors: Dan Zhou, Shangren Chen, Hanyun Wang, Minyuan Guan, Lihua Zhou, Jian Wu, Yaojie Hu
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-08-01
Series:Frontiers in Energy Research
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fenrg.2021.692026/full
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author Dan Zhou
Shangren Chen
Hanyun Wang
Minyuan Guan
Lihua Zhou
Jian Wu
Yaojie Hu
author_facet Dan Zhou
Shangren Chen
Hanyun Wang
Minyuan Guan
Lihua Zhou
Jian Wu
Yaojie Hu
author_sort Dan Zhou
collection DOAJ
description Multi-energy hybrid AC/DC microgrids (MGs), considering ice storage systems (ISSs), can promote the flexible integration and efficient utilization of distributed generators (DGs) and energy storage systems (ESSs), provide a reliable power supply for local loads, and achieve multi-energy complementarity and energy savings at the same time. An autonomous cooperative control of multi-energy MGs is proposed in this paper, which can realize the following targets: 1) In the energy storage period, ice storage systems and energy storage systems can absorb energy in accordance with their rated capacity. 2) In the energy releasing period, ice storage systems are first put into operation, and the rest of the equivalent cooling loads and electrical loads are shared by the energy storage systems according to their rated capacity ratio. Besides, the complete system small signal model is constructed, which can be used to analyze the features and characteristics of the system and guide the optimal design of the control parameters. Finally, the effectiveness of the proposed control is corroborated by several case studies conducted in PSCAD/EMTDC.
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spelling doaj.art-1e341965c0e54608b578d77127f7729b2022-12-21T21:47:35ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2021-08-01910.3389/fenrg.2021.692026692026Autonomous Cooperative Control for Hybrid AC/DC Microgrids Considering Multi-Energy ComplementarityDan Zhou0Shangren Chen1Hanyun Wang2Minyuan Guan3Lihua Zhou4Jian Wu5Yaojie Hu6ollege of Information Engineering, Zhejiang University of Technology, Hangzhou, Chinaollege of Information Engineering, Zhejiang University of Technology, Hangzhou, ChinaState Grid Huzhou Power Supply Company, Huzhou, ChinaState Grid Huzhou Power Supply Company, Huzhou, ChinaState Grid Huzhou Power Supply Company, Huzhou, ChinaHuzhou Xinlun Comprehensive Energy Service Co., Ltd., Huzhou, ChinaHuzhou Xinlun Comprehensive Energy Service Co., Ltd., Huzhou, ChinaMulti-energy hybrid AC/DC microgrids (MGs), considering ice storage systems (ISSs), can promote the flexible integration and efficient utilization of distributed generators (DGs) and energy storage systems (ESSs), provide a reliable power supply for local loads, and achieve multi-energy complementarity and energy savings at the same time. An autonomous cooperative control of multi-energy MGs is proposed in this paper, which can realize the following targets: 1) In the energy storage period, ice storage systems and energy storage systems can absorb energy in accordance with their rated capacity. 2) In the energy releasing period, ice storage systems are first put into operation, and the rest of the equivalent cooling loads and electrical loads are shared by the energy storage systems according to their rated capacity ratio. Besides, the complete system small signal model is constructed, which can be used to analyze the features and characteristics of the system and guide the optimal design of the control parameters. Finally, the effectiveness of the proposed control is corroborated by several case studies conducted in PSCAD/EMTDC.https://www.frontiersin.org/articles/10.3389/fenrg.2021.692026/fullhybrid AC/DC microgridsautonomous cooperative controlmulti-energy complementarityenergy storage systemssmall signal mode
spellingShingle Dan Zhou
Shangren Chen
Hanyun Wang
Minyuan Guan
Lihua Zhou
Jian Wu
Yaojie Hu
Autonomous Cooperative Control for Hybrid AC/DC Microgrids Considering Multi-Energy Complementarity
Frontiers in Energy Research
hybrid AC/DC microgrids
autonomous cooperative control
multi-energy complementarity
energy storage systems
small signal mode
title Autonomous Cooperative Control for Hybrid AC/DC Microgrids Considering Multi-Energy Complementarity
title_full Autonomous Cooperative Control for Hybrid AC/DC Microgrids Considering Multi-Energy Complementarity
title_fullStr Autonomous Cooperative Control for Hybrid AC/DC Microgrids Considering Multi-Energy Complementarity
title_full_unstemmed Autonomous Cooperative Control for Hybrid AC/DC Microgrids Considering Multi-Energy Complementarity
title_short Autonomous Cooperative Control for Hybrid AC/DC Microgrids Considering Multi-Energy Complementarity
title_sort autonomous cooperative control for hybrid ac dc microgrids considering multi energy complementarity
topic hybrid AC/DC microgrids
autonomous cooperative control
multi-energy complementarity
energy storage systems
small signal mode
url https://www.frontiersin.org/articles/10.3389/fenrg.2021.692026/full
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AT shangrenchen autonomouscooperativecontrolforhybridacdcmicrogridsconsideringmultienergycomplementarity
AT hanyunwang autonomouscooperativecontrolforhybridacdcmicrogridsconsideringmultienergycomplementarity
AT minyuanguan autonomouscooperativecontrolforhybridacdcmicrogridsconsideringmultienergycomplementarity
AT lihuazhou autonomouscooperativecontrolforhybridacdcmicrogridsconsideringmultienergycomplementarity
AT jianwu autonomouscooperativecontrolforhybridacdcmicrogridsconsideringmultienergycomplementarity
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