Small-Signal Stability and Dynamic Behaviors of a Hydropower Plant With an Upstream Surge Tank Using Different PID Parameters

This paper used the state space method to establish a stability analysis model of a hydroturbine governing system (HTGS) coupled with a water diversion system. The stability characteristics of different regulating regions (RRs) were studied according to the eigenvalues of the system, and they were v...

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Main Authors: Gaohui Li, Jian Zhang, Xumin Wu, Xiaodong Yu
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9486907/
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spelling doaj-8fb3e9057fea493cbca69dd7870db5f72021-07-30T23:00:17ZengIEEEIEEE Access2169-35362021-01-01910483710484510.1109/ACCESS.2021.30975009486907Small-Signal Stability and Dynamic Behaviors of a Hydropower Plant With an Upstream Surge Tank Using Different PID ParametersGaohui Li0https://orcid.org/0000-0003-1827-3261Jian Zhang1Xumin Wu2Xiaodong Yu3College of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing, Jiangsu, ChinaCollege of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing, Jiangsu, ChinaPOWERCHINA Huadong Engineering Corporation Ltd., Hangzhou, Zhejiang, ChinaCollege of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing, Jiangsu, ChinaThis paper used the state space method to establish a stability analysis model of a hydroturbine governing system (HTGS) coupled with a water diversion system. The stability characteristics of different regulating regions (RRs) were studied according to the eigenvalues of the system, and they were verified by numerical simulations in the time domain. The dynamic system responses and dominating factors were analyzed for governor parameters selected in different domains of the RRs. In addition, an intermediate unstable RR was discovered and its influencing factors were investigated. The results show that the unstable RR occurs because of the interaction between the oscillations in the HTGS and surge tanks and indicate that the system performance varies in different domains of the RR, with better performance observed in domain II. Then, a comprehensive critical stable area is observed in the surge tank based on the effect of the turbine, governor and water inertia, and a specific instance of the traditional Thoma stable area is observed in the proposed area. Either reducing the cross-sectional area of the surge tank and head loss coefficients of the headrace tunnel or increasing the water inertia of the water diversion system can increase the unstable RRs.https://ieeexplore.ieee.org/document/9486907/Hydropower plantshydroturbine governing systemstability analysissurge tanksunstable regulating region
collection DOAJ
language English
format Article
sources DOAJ
author Gaohui Li
Jian Zhang
Xumin Wu
Xiaodong Yu
spellingShingle Gaohui Li
Jian Zhang
Xumin Wu
Xiaodong Yu
Small-Signal Stability and Dynamic Behaviors of a Hydropower Plant With an Upstream Surge Tank Using Different PID Parameters
IEEE Access
Hydropower plants
hydroturbine governing system
stability analysis
surge tanks
unstable regulating region
author_facet Gaohui Li
Jian Zhang
Xumin Wu
Xiaodong Yu
author_sort Gaohui Li
title Small-Signal Stability and Dynamic Behaviors of a Hydropower Plant With an Upstream Surge Tank Using Different PID Parameters
title_short Small-Signal Stability and Dynamic Behaviors of a Hydropower Plant With an Upstream Surge Tank Using Different PID Parameters
title_full Small-Signal Stability and Dynamic Behaviors of a Hydropower Plant With an Upstream Surge Tank Using Different PID Parameters
title_fullStr Small-Signal Stability and Dynamic Behaviors of a Hydropower Plant With an Upstream Surge Tank Using Different PID Parameters
title_full_unstemmed Small-Signal Stability and Dynamic Behaviors of a Hydropower Plant With an Upstream Surge Tank Using Different PID Parameters
title_sort small-signal stability and dynamic behaviors of a hydropower plant with an upstream surge tank using different pid parameters
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2021-01-01
description This paper used the state space method to establish a stability analysis model of a hydroturbine governing system (HTGS) coupled with a water diversion system. The stability characteristics of different regulating regions (RRs) were studied according to the eigenvalues of the system, and they were verified by numerical simulations in the time domain. The dynamic system responses and dominating factors were analyzed for governor parameters selected in different domains of the RRs. In addition, an intermediate unstable RR was discovered and its influencing factors were investigated. The results show that the unstable RR occurs because of the interaction between the oscillations in the HTGS and surge tanks and indicate that the system performance varies in different domains of the RR, with better performance observed in domain II. Then, a comprehensive critical stable area is observed in the surge tank based on the effect of the turbine, governor and water inertia, and a specific instance of the traditional Thoma stable area is observed in the proposed area. Either reducing the cross-sectional area of the surge tank and head loss coefficients of the headrace tunnel or increasing the water inertia of the water diversion system can increase the unstable RRs.
topic Hydropower plants
hydroturbine governing system
stability analysis
surge tanks
unstable regulating region
url https://ieeexplore.ieee.org/document/9486907/
work_keys_str_mv AT gaohuili smallsignalstabilityanddynamicbehaviorsofahydropowerplantwithanupstreamsurgetankusingdifferentpidparameters
AT jianzhang smallsignalstabilityanddynamicbehaviorsofahydropowerplantwithanupstreamsurgetankusingdifferentpidparameters
AT xuminwu smallsignalstabilityanddynamicbehaviorsofahydropowerplantwithanupstreamsurgetankusingdifferentpidparameters
AT xiaodongyu smallsignalstabilityanddynamicbehaviorsofahydropowerplantwithanupstreamsurgetankusingdifferentpidparameters
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