Flexible Power System Defense Strategies in an Isolated Microgrid System with High Renewable Power Generation

This work develops an underfrequency preventive control strategy for an islanded power system with a high penetration of wind power generation. First, the preventive control strategy uses the frequency nadir forecasting module to analyze the frequency stability under largest diesel generator trippin...

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Main Authors: Yuan-Kang Wu, Kuo-Ting Tang, Zheng Kuan Lin, Wen-Shan Tan
Format: Article
Language:English
Published: MDPI AG 2020-05-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/9/3184
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spelling doaj-9f9e79cc096f4cbe83f07365b620c19d2020-11-25T02:56:36ZengMDPI AGApplied Sciences2076-34172020-05-01103184318410.3390/app10093184Flexible Power System Defense Strategies in an Isolated Microgrid System with High Renewable Power GenerationYuan-Kang Wu0Kuo-Ting Tang1Zheng Kuan Lin2Wen-Shan Tan3Department of Electrical Engineering, National Chung-Cheng University, Chiayi 62102, TaiwanDepartment of Electrical Engineering, National Chung-Cheng University, Chiayi 62102, TaiwanDepartment of Electrical Engineering, National Chung-Cheng University, Chiayi 62102, TaiwanSchool of Engineering and Advanced Engineering Platform, Monash University Malaysia, Jalan Lagoon Selatan, 47500 Bandar Sunway, Selangor, MalaysiaThis work develops an underfrequency preventive control strategy for an islanded power system with a high penetration of wind power generation. First, the preventive control strategy uses the frequency nadir forecasting module to analyze the frequency stability under largest diesel generator tripping (N-1) contingency events. If predicted frequency nadir is too low, four frequency support methods are then analyzed and used for preventing potential frequency stability problem. They include generator rescheduling (GR), the use of battery energy storage system (BESS), direct load control (DLC) and emergency demand response program (EDRP). In terms of the GR method, the optimal diesel generator dispatch is obtained, with sufficient frequency stability and minimal fuel cost and start-up cost. In the BESS method, the optimal instantaneous power output from BESS is obtained based on its frequency support capability. With the DLC or EDRP method, the optimal contract-based load-shedding or the load-reduction to provide frequency support is obtained, respectively. Then, the operating costs of each method to support frequency are analyzed. The research methods and simulation results are very useful to the low-frequency protection of actual power systems with high renewable power generation. This work proposed a complete defense strategy in a microgrid system. It combines GR, BESS, DLC and EDRP. Therefore, the system operators have many options to implement their defense strategies, based on the operating costs of various methods. In other words, the proposed defense strategy provides a more flexible solution for the protection of micro grids with a high renewable power penetration. Therefore, the solution considers the system safety and economical aspects.https://www.mdpi.com/2076-3417/10/9/3184preventive control strategyislanded power systemwind power generationgenerator reschedulingbattery energy storage systemdirect load control
collection DOAJ
language English
format Article
sources DOAJ
author Yuan-Kang Wu
Kuo-Ting Tang
Zheng Kuan Lin
Wen-Shan Tan
spellingShingle Yuan-Kang Wu
Kuo-Ting Tang
Zheng Kuan Lin
Wen-Shan Tan
Flexible Power System Defense Strategies in an Isolated Microgrid System with High Renewable Power Generation
Applied Sciences
preventive control strategy
islanded power system
wind power generation
generator rescheduling
battery energy storage system
direct load control
author_facet Yuan-Kang Wu
Kuo-Ting Tang
Zheng Kuan Lin
Wen-Shan Tan
author_sort Yuan-Kang Wu
title Flexible Power System Defense Strategies in an Isolated Microgrid System with High Renewable Power Generation
title_short Flexible Power System Defense Strategies in an Isolated Microgrid System with High Renewable Power Generation
title_full Flexible Power System Defense Strategies in an Isolated Microgrid System with High Renewable Power Generation
title_fullStr Flexible Power System Defense Strategies in an Isolated Microgrid System with High Renewable Power Generation
title_full_unstemmed Flexible Power System Defense Strategies in an Isolated Microgrid System with High Renewable Power Generation
title_sort flexible power system defense strategies in an isolated microgrid system with high renewable power generation
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-05-01
description This work develops an underfrequency preventive control strategy for an islanded power system with a high penetration of wind power generation. First, the preventive control strategy uses the frequency nadir forecasting module to analyze the frequency stability under largest diesel generator tripping (N-1) contingency events. If predicted frequency nadir is too low, four frequency support methods are then analyzed and used for preventing potential frequency stability problem. They include generator rescheduling (GR), the use of battery energy storage system (BESS), direct load control (DLC) and emergency demand response program (EDRP). In terms of the GR method, the optimal diesel generator dispatch is obtained, with sufficient frequency stability and minimal fuel cost and start-up cost. In the BESS method, the optimal instantaneous power output from BESS is obtained based on its frequency support capability. With the DLC or EDRP method, the optimal contract-based load-shedding or the load-reduction to provide frequency support is obtained, respectively. Then, the operating costs of each method to support frequency are analyzed. The research methods and simulation results are very useful to the low-frequency protection of actual power systems with high renewable power generation. This work proposed a complete defense strategy in a microgrid system. It combines GR, BESS, DLC and EDRP. Therefore, the system operators have many options to implement their defense strategies, based on the operating costs of various methods. In other words, the proposed defense strategy provides a more flexible solution for the protection of micro grids with a high renewable power penetration. Therefore, the solution considers the system safety and economical aspects.
topic preventive control strategy
islanded power system
wind power generation
generator rescheduling
battery energy storage system
direct load control
url https://www.mdpi.com/2076-3417/10/9/3184
work_keys_str_mv AT yuankangwu flexiblepowersystemdefensestrategiesinanisolatedmicrogridsystemwithhighrenewablepowergeneration
AT kuotingtang flexiblepowersystemdefensestrategiesinanisolatedmicrogridsystemwithhighrenewablepowergeneration
AT zhengkuanlin flexiblepowersystemdefensestrategiesinanisolatedmicrogridsystemwithhighrenewablepowergeneration
AT wenshantan flexiblepowersystemdefensestrategiesinanisolatedmicrogridsystemwithhighrenewablepowergeneration
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