Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power

This paper proposes a new coordinated method for preventive generation rescheduling and corrective load shedding to maintain power system transient stability under uncertain wind power variation. A two-step bi-level optimization model is proposed where generation rescheduling and load shedding are c...

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Main Authors: Yuan, Heling, Xu, Yan
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2022
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Online Access:https://hdl.handle.net/10356/160553
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1605532022-07-26T08:04:52Z Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power Yuan, Heling Xu, Yan School of Electrical and Electronic Engineering Engineering::Electrical and electronic engineering Transient Stability Control Load Shedding This paper proposes a new coordinated method for preventive generation rescheduling and corrective load shedding to maintain power system transient stability under uncertain wind power variation. A two-step bi-level optimization model is proposed where generation rescheduling and load shedding are coordinated by a risk coordination parameter, which adjusts the total coordination cost in the upper level. Then, based on Extended Equal Area Criterion (EEAC) and trajectory sensitivities, the non-linear risk and stability constraints are converted into the linear form for generation rescheduling cost and load shedding cost optimization in the lower level, respectively. Uncertain wind power output is modeled as a small number of robust test scenarios. Finally, the golden section search is applied to solve the bi-level problem. The proposed method is validated on the New-England 39-bus system by using commercial grade software. The computational efficiency, economic optimality, and stability robustness under random wind power of the method are demonstrated. Ministry of Education (MOE) Nanyang Technological University This work was supported in part by the Ministry of Education, Republic of Singapore under Grants AcRF TIER 1 2017-T1- 001-228 (RG92/17) and 2019-T1-001-069 (RG75/19). The work of Y. Xu was supported by the Nanyang Assistant Professorship from Nanyang Technological University, Singapore. Paper no. TPWRS-00861-2019. 2022-07-26T08:04:51Z 2022-07-26T08:04:51Z 2020 Journal Article Yuan, H. & Xu, Y. (2020). Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power. IEEE Transactions On Power Systems, 35(5), 3616-3626. https://dx.doi.org/10.1109/TPWRS.2020.2972003 0885-8950 https://hdl.handle.net/10356/160553 10.1109/TPWRS.2020.2972003 2-s2.0-85090401742 5 35 3616 3626 en 2017-T1-001-228 (RG92/17) 2019-T1-001-069 (RG75/19) IEEE Transactions on Power Systems © 2020 IEEE. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
Transient Stability Control
Load Shedding
spellingShingle Engineering::Electrical and electronic engineering
Transient Stability Control
Load Shedding
Yuan, Heling
Xu, Yan
Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power
description This paper proposes a new coordinated method for preventive generation rescheduling and corrective load shedding to maintain power system transient stability under uncertain wind power variation. A two-step bi-level optimization model is proposed where generation rescheduling and load shedding are coordinated by a risk coordination parameter, which adjusts the total coordination cost in the upper level. Then, based on Extended Equal Area Criterion (EEAC) and trajectory sensitivities, the non-linear risk and stability constraints are converted into the linear form for generation rescheduling cost and load shedding cost optimization in the lower level, respectively. Uncertain wind power output is modeled as a small number of robust test scenarios. Finally, the golden section search is applied to solve the bi-level problem. The proposed method is validated on the New-England 39-bus system by using commercial grade software. The computational efficiency, economic optimality, and stability robustness under random wind power of the method are demonstrated.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Yuan, Heling
Xu, Yan
format Article
author Yuan, Heling
Xu, Yan
author_sort Yuan, Heling
title Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power
title_short Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power
title_full Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power
title_fullStr Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power
title_full_unstemmed Preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power
title_sort preventive-corrective coordinated transient stability dispatch of power systems with uncertain wind power
publishDate 2022
url https://hdl.handle.net/10356/160553
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