An adaptive under-frequency optimal control strategy for power system combined pumped storage and under-frequency load shedding

With the construction and development of ultra-high voltage (UHV) power grids, large-scale, long-distance power transmission has become common. A failure of the connecting line between the sending-end power grid and the receiving-end power grid will cause a large-scale power shortage and a frequency...

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Main Authors: Wentao Huang, Jinman Yu, Zhijun Yuan, Zhongwei He, Jun He, Minghui Deng
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2021-01-01
Series:PLoS ONE
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8659638/?tool=EBI
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author Wentao Huang
Jinman Yu
Zhijun Yuan
Zhongwei He
Jun He
Minghui Deng
author_facet Wentao Huang
Jinman Yu
Zhijun Yuan
Zhongwei He
Jun He
Minghui Deng
author_sort Wentao Huang
collection DOAJ
description With the construction and development of ultra-high voltage (UHV) power grids, large-scale, long-distance power transmission has become common. A failure of the connecting line between the sending-end power grid and the receiving-end power grid will cause a large-scale power shortage and a frequency drop in the receiving-end power grid, which can result in the frequency collapse. Presently, under-frequency load shedding (UFLS) is adopted for solving the frequency control problem in emergency under-frequency conditions, which can easily cause large load losses. In this context, a frequency coordination optimal control strategy is proposed, which combines the mode transition of pumped storage units with UFLS to deal with emergency under-frequency problems. First, a mathematical model of the frequency dynamic response is established, which combines the mode transition of pumped storage units with UFLS based on a single-machine equivalent model. Then, an optimal model of the minimal area of the power system’s operation frequency trajectory is introduced, yielding the optimal frequency trajectory, and is used for obtaining the action frequency of the joint control strategy. A simulated annealing algorithm based on the perturbation analysis is proposed for solving the optimal model, and the optimal action frequency is obtained that satisfies the transient frequency offset safety constraint of the power system. Thus, the joint optimal control of the mode transition of the pumped storage units and UFLS is realized. Finally, the EPRI-36 bus system and China’s actual power grid are considered, for demonstrating the efficiency of the proposed strategy.
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spelling doaj.art-e18d2f8f50464cc992124781a8ab23642022-12-21T18:43:57ZengPublic Library of Science (PLoS)PLoS ONE1932-62032021-01-011612An adaptive under-frequency optimal control strategy for power system combined pumped storage and under-frequency load sheddingWentao HuangJinman YuZhijun YuanZhongwei HeJun HeMinghui DengWith the construction and development of ultra-high voltage (UHV) power grids, large-scale, long-distance power transmission has become common. A failure of the connecting line between the sending-end power grid and the receiving-end power grid will cause a large-scale power shortage and a frequency drop in the receiving-end power grid, which can result in the frequency collapse. Presently, under-frequency load shedding (UFLS) is adopted for solving the frequency control problem in emergency under-frequency conditions, which can easily cause large load losses. In this context, a frequency coordination optimal control strategy is proposed, which combines the mode transition of pumped storage units with UFLS to deal with emergency under-frequency problems. First, a mathematical model of the frequency dynamic response is established, which combines the mode transition of pumped storage units with UFLS based on a single-machine equivalent model. Then, an optimal model of the minimal area of the power system’s operation frequency trajectory is introduced, yielding the optimal frequency trajectory, and is used for obtaining the action frequency of the joint control strategy. A simulated annealing algorithm based on the perturbation analysis is proposed for solving the optimal model, and the optimal action frequency is obtained that satisfies the transient frequency offset safety constraint of the power system. Thus, the joint optimal control of the mode transition of the pumped storage units and UFLS is realized. Finally, the EPRI-36 bus system and China’s actual power grid are considered, for demonstrating the efficiency of the proposed strategy.https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8659638/?tool=EBI
spellingShingle Wentao Huang
Jinman Yu
Zhijun Yuan
Zhongwei He
Jun He
Minghui Deng
An adaptive under-frequency optimal control strategy for power system combined pumped storage and under-frequency load shedding
PLoS ONE
title An adaptive under-frequency optimal control strategy for power system combined pumped storage and under-frequency load shedding
title_full An adaptive under-frequency optimal control strategy for power system combined pumped storage and under-frequency load shedding
title_fullStr An adaptive under-frequency optimal control strategy for power system combined pumped storage and under-frequency load shedding
title_full_unstemmed An adaptive under-frequency optimal control strategy for power system combined pumped storage and under-frequency load shedding
title_short An adaptive under-frequency optimal control strategy for power system combined pumped storage and under-frequency load shedding
title_sort adaptive under frequency optimal control strategy for power system combined pumped storage and under frequency load shedding
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8659638/?tool=EBI
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