Real-Time Optimal Control Strategy for Multienergy Complementary Microgrid System Based on Double-Layer Nondominated Sorting Genetic Algorithm

Because of the problems of low operation efficiency and poor energy management of multienergy input and output system with complex load demand and energy supply, this paper uses the double-layer nondominated sorting genetic algorithm to optimize the multienergy complementary microgrid system in real...

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Main Authors: Min Mou, Yuhao Zhou, Wenguang Zheng, Zhongping Zhang, Da Lin, Dongdong Ke
Format: Article
Language:English
Published: Wiley 2020-01-01
Series:Complexity
Online Access:http://dx.doi.org/10.1155/2020/8852186
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author Min Mou
Yuhao Zhou
Wenguang Zheng
Zhongping Zhang
Da Lin
Dongdong Ke
author_facet Min Mou
Yuhao Zhou
Wenguang Zheng
Zhongping Zhang
Da Lin
Dongdong Ke
author_sort Min Mou
collection DOAJ
description Because of the problems of low operation efficiency and poor energy management of multienergy input and output system with complex load demand and energy supply, this paper uses the double-layer nondominated sorting genetic algorithm to optimize the multienergy complementary microgrid system in real-time, allocating reasonably the output of each energy supply end and reducing the energy consumption of the system on the premise of meeting the demand of cooling, thermal and power load, so as to improve the economy of the whole system. According to the system load demand and operation mode, the first layer of this double-layer operation strategy calculates the power required by each node of the microgrid system to reduce the system loss. The second layer calculates the output of each equipment by using nondominated sorting genetic algorithm with various energy values calculated in the first layer as constraint conditions, considering the operation characteristics of various equipment and aiming at economy and environmental protection. In this paper, a typical model of energy input-output is established. This model combines with the operation control strategy suitable for multienergy complementary microgrid system, considers the operation mode and equipment characteristics of the system, and uses a double-layer nondominated sorting genetic algorithm to optimize the operation of each equipment in the multienergy complementary system in real time, so as to reduce the operation cost of the system.
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institution OA Journals
issn 1076-2787
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language English
publishDate 2020-01-01
publisher Wiley
record_format Article
series Complexity
spelling doaj-art-c49302c43d214db9bcbd4210d30aea7f2025-08-20T02:18:46ZengWileyComplexity1076-27871099-05262020-01-01202010.1155/2020/88521868852186Real-Time Optimal Control Strategy for Multienergy Complementary Microgrid System Based on Double-Layer Nondominated Sorting Genetic AlgorithmMin Mou0Yuhao Zhou1Wenguang Zheng2Zhongping Zhang3Da Lin4Dongdong Ke5Huadian Electric Power Research Institute Co. Ltd, Hangzhou, Zhejiang 310013, ChinaHuadian Electric Power Research Institute Co. Ltd, Hangzhou, Zhejiang 310013, ChinaHuadian Electric Power Research Institute Co. Ltd, Hangzhou, Zhejiang 310013, ChinaHuadian Electric Power Research Institute Co. Ltd, Hangzhou, Zhejiang 310013, ChinaHuadian Electric Power Research Institute Co. Ltd, Hangzhou, Zhejiang 310013, ChinaHuadian Electric Power Research Institute Co. Ltd, Hangzhou, Zhejiang 310013, ChinaBecause of the problems of low operation efficiency and poor energy management of multienergy input and output system with complex load demand and energy supply, this paper uses the double-layer nondominated sorting genetic algorithm to optimize the multienergy complementary microgrid system in real-time, allocating reasonably the output of each energy supply end and reducing the energy consumption of the system on the premise of meeting the demand of cooling, thermal and power load, so as to improve the economy of the whole system. According to the system load demand and operation mode, the first layer of this double-layer operation strategy calculates the power required by each node of the microgrid system to reduce the system loss. The second layer calculates the output of each equipment by using nondominated sorting genetic algorithm with various energy values calculated in the first layer as constraint conditions, considering the operation characteristics of various equipment and aiming at economy and environmental protection. In this paper, a typical model of energy input-output is established. This model combines with the operation control strategy suitable for multienergy complementary microgrid system, considers the operation mode and equipment characteristics of the system, and uses a double-layer nondominated sorting genetic algorithm to optimize the operation of each equipment in the multienergy complementary system in real time, so as to reduce the operation cost of the system.http://dx.doi.org/10.1155/2020/8852186
spellingShingle Min Mou
Yuhao Zhou
Wenguang Zheng
Zhongping Zhang
Da Lin
Dongdong Ke
Real-Time Optimal Control Strategy for Multienergy Complementary Microgrid System Based on Double-Layer Nondominated Sorting Genetic Algorithm
Complexity
title Real-Time Optimal Control Strategy for Multienergy Complementary Microgrid System Based on Double-Layer Nondominated Sorting Genetic Algorithm
title_full Real-Time Optimal Control Strategy for Multienergy Complementary Microgrid System Based on Double-Layer Nondominated Sorting Genetic Algorithm
title_fullStr Real-Time Optimal Control Strategy for Multienergy Complementary Microgrid System Based on Double-Layer Nondominated Sorting Genetic Algorithm
title_full_unstemmed Real-Time Optimal Control Strategy for Multienergy Complementary Microgrid System Based on Double-Layer Nondominated Sorting Genetic Algorithm
title_short Real-Time Optimal Control Strategy for Multienergy Complementary Microgrid System Based on Double-Layer Nondominated Sorting Genetic Algorithm
title_sort real time optimal control strategy for multienergy complementary microgrid system based on double layer nondominated sorting genetic algorithm
url http://dx.doi.org/10.1155/2020/8852186
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