Experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tank
Abstract For the different types of throttled surge tanks used in hydropower systems, it is important to comprehensively know the throttle's head loss characteristics for exact surge analysis and transient control. Herein, a general and complete experimental setup was designed to steadily repro...
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Online Access: | https://doi.org/10.1002/ese3.717 |
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doaj-6b3889b513154c8ba854cd47b95006302020-11-25T03:19:26ZengWileyEnergy Science & Engineering2050-05052020-08-01882722273310.1002/ese3.717Experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tankJianxu Zhou0Sunit Palikhe1Fulin Cai2Yuefei Liu3College of Water Conservancy and Hydropower Engineering Hohai University Nanjing ChinaCollege of Water Conservancy and Hydropower Engineering Hohai University Nanjing ChinaCollege of Water Conservancy and Hydropower Engineering Hohai University Nanjing ChinaCollege of Water Conservancy and Hydropower Engineering Hohai University Nanjing ChinaAbstract For the different types of throttled surge tanks used in hydropower systems, it is important to comprehensively know the throttle's head loss characteristics for exact surge analysis and transient control. Herein, a general and complete experimental setup was designed to steadily reproduce the 12 typical flow regimes occurring at the surge tank and thus conduct comprehensive experimental research on throttle head loss coefficients. Furthermore, an extended mathematical model for the surge tank was derived by inputting experimental data on the throttle's head loss coefficients to surge analysis. Through experimental research, the throttle's head loss coefficients were determined by fitting formulae relative to the different flow regimes and discharge ratios; via a detailed case analysis, the differences in the head loss characteristics for different throttle types were accurately determined. It was demonstrated that the throttle's head loss coefficient varies with discharge ratio under different flow regimes and found that the experimentally obtained flow coefficients for different throttle types are more accurate and clearly reveal the difference of throttles’ head loss characteristics. The extended mathematical model for the throttled surge tank can provide more accurate simulation results and guidance for its engineering design and layout.https://doi.org/10.1002/ese3.717experimental researchhead loss coefficienthydropower systemsurge analysissurge tank |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jianxu Zhou Sunit Palikhe Fulin Cai Yuefei Liu |
spellingShingle |
Jianxu Zhou Sunit Palikhe Fulin Cai Yuefei Liu Experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tank Energy Science & Engineering experimental research head loss coefficient hydropower system surge analysis surge tank |
author_facet |
Jianxu Zhou Sunit Palikhe Fulin Cai Yuefei Liu |
author_sort |
Jianxu Zhou |
title |
Experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tank |
title_short |
Experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tank |
title_full |
Experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tank |
title_fullStr |
Experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tank |
title_full_unstemmed |
Experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tank |
title_sort |
experimental and simulation‐based investigations on throttle’s head loss coefficients of a surge tank |
publisher |
Wiley |
series |
Energy Science & Engineering |
issn |
2050-0505 |
publishDate |
2020-08-01 |
description |
Abstract For the different types of throttled surge tanks used in hydropower systems, it is important to comprehensively know the throttle's head loss characteristics for exact surge analysis and transient control. Herein, a general and complete experimental setup was designed to steadily reproduce the 12 typical flow regimes occurring at the surge tank and thus conduct comprehensive experimental research on throttle head loss coefficients. Furthermore, an extended mathematical model for the surge tank was derived by inputting experimental data on the throttle's head loss coefficients to surge analysis. Through experimental research, the throttle's head loss coefficients were determined by fitting formulae relative to the different flow regimes and discharge ratios; via a detailed case analysis, the differences in the head loss characteristics for different throttle types were accurately determined. It was demonstrated that the throttle's head loss coefficient varies with discharge ratio under different flow regimes and found that the experimentally obtained flow coefficients for different throttle types are more accurate and clearly reveal the difference of throttles’ head loss characteristics. The extended mathematical model for the throttled surge tank can provide more accurate simulation results and guidance for its engineering design and layout. |
topic |
experimental research head loss coefficient hydropower system surge analysis surge tank |
url |
https://doi.org/10.1002/ese3.717 |
work_keys_str_mv |
AT jianxuzhou experimentalandsimulationbasedinvestigationsonthrottlesheadlosscoefficientsofasurgetank AT sunitpalikhe experimentalandsimulationbasedinvestigationsonthrottlesheadlosscoefficientsofasurgetank AT fulincai experimentalandsimulationbasedinvestigationsonthrottlesheadlosscoefficientsofasurgetank AT yuefeiliu experimentalandsimulationbasedinvestigationsonthrottlesheadlosscoefficientsofasurgetank |
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1724622398424088576 |