Numerical Simulation and Experimental Study on Internal Depressurization Flow Characteristics of a Multi-layer Sleeve Regulating Valve

The sleeve regulating valve is an important part of a pipeline system and is widely used in the fields of nuclear power and thermal power. In this study, a series of numerical and experimental studies are performed to understand the depressurized flow characteristics inside a new type of multi-layer...

Full description

Bibliographic Details
Main Authors: H. Z. Jin, K. M. Tang, X. F. Liu, C. Wang
Format: Article
Language:English
Published: Isfahan University of Technology 2023-01-01
Series:Journal of Applied Fluid Mechanics
Subjects:
Online Access:https://www.jafmonline.net/article_2187_bb8e639577f108bf7643f4683fbcfbbb.pdf
_version_ 1811170909817405440
author H. Z. Jin
K. M. Tang
X. F. Liu
C. Wang
author_facet H. Z. Jin
K. M. Tang
X. F. Liu
C. Wang
author_sort H. Z. Jin
collection DOAJ
description The sleeve regulating valve is an important part of a pipeline system and is widely used in the fields of nuclear power and thermal power. In this study, a series of numerical and experimental studies are performed to understand the depressurized flow characteristics inside a new type of multi-layer sleeve regulating valve. In the calculations, the standard k-ԑ turbulence model and the mixture model combined with the Zwart–Gerber–Belamri cavitation model are used to clarify the internal flow and cavitation characteristics in the regulating valve. With the new valve, the results show that when the valve is fully opened, the pressure drop at all levels of the valve is comparatively average (approximately 2–3 MPa for each level) and the fluid velocity in the sleeves at all levels is comparatively uniform at 90 m/s—which can prevent the valve from being eroded by highly changing fluid flow rates, and also offers ideal pressure reduction performance. To reduce the degree of cavitation, it is recommended to adjust the outlet pressure of the valve to 0.7 MPa.
first_indexed 2024-04-10T17:04:31Z
format Article
id doaj.art-d33c80237c174f3a87b5c94a20ce07dc
institution Directory Open Access Journal
issn 1735-3572
1735-3645
language English
last_indexed 2024-04-10T17:04:31Z
publishDate 2023-01-01
publisher Isfahan University of Technology
record_format Article
series Journal of Applied Fluid Mechanics
spelling doaj.art-d33c80237c174f3a87b5c94a20ce07dc2023-02-06T07:55:54ZengIsfahan University of TechnologyJournal of Applied Fluid Mechanics1735-35721735-36452023-01-0116487789010.47176/jafm.16.04.15712187Numerical Simulation and Experimental Study on Internal Depressurization Flow Characteristics of a Multi-layer Sleeve Regulating ValveH. Z. Jin0K. M. Tang1X. F. Liu2C. Wang3Faculty of Mechanical Engineering & Automation, Zhejiang Sci-Tech University, Hangzhou, Zhejiang, 310018, ChinaFaculty of Mechanical Engineering & Automation, Zhejiang Sci-Tech University, Hangzhou, Zhejiang, 310018, ChinaFaculty of Mechanical Engineering & Automation, Zhejiang Sci-Tech University, Hangzhou, Zhejiang, 310018, ChinaFaculty of Mechanical Engineering & Automation, Zhejiang Sci-Tech University, Hangzhou, Zhejiang, 310018, ChinaThe sleeve regulating valve is an important part of a pipeline system and is widely used in the fields of nuclear power and thermal power. In this study, a series of numerical and experimental studies are performed to understand the depressurized flow characteristics inside a new type of multi-layer sleeve regulating valve. In the calculations, the standard k-ԑ turbulence model and the mixture model combined with the Zwart–Gerber–Belamri cavitation model are used to clarify the internal flow and cavitation characteristics in the regulating valve. With the new valve, the results show that when the valve is fully opened, the pressure drop at all levels of the valve is comparatively average (approximately 2–3 MPa for each level) and the fluid velocity in the sleeves at all levels is comparatively uniform at 90 m/s—which can prevent the valve from being eroded by highly changing fluid flow rates, and also offers ideal pressure reduction performance. To reduce the degree of cavitation, it is recommended to adjust the outlet pressure of the valve to 0.7 MPa.https://www.jafmonline.net/article_2187_bb8e639577f108bf7643f4683fbcfbbb.pdfregulating valvenumerical simulationsexperimental verificationflow characteristicscavitation
spellingShingle H. Z. Jin
K. M. Tang
X. F. Liu
C. Wang
Numerical Simulation and Experimental Study on Internal Depressurization Flow Characteristics of a Multi-layer Sleeve Regulating Valve
Journal of Applied Fluid Mechanics
regulating valve
numerical simulations
experimental verification
flow characteristics
cavitation
title Numerical Simulation and Experimental Study on Internal Depressurization Flow Characteristics of a Multi-layer Sleeve Regulating Valve
title_full Numerical Simulation and Experimental Study on Internal Depressurization Flow Characteristics of a Multi-layer Sleeve Regulating Valve
title_fullStr Numerical Simulation and Experimental Study on Internal Depressurization Flow Characteristics of a Multi-layer Sleeve Regulating Valve
title_full_unstemmed Numerical Simulation and Experimental Study on Internal Depressurization Flow Characteristics of a Multi-layer Sleeve Regulating Valve
title_short Numerical Simulation and Experimental Study on Internal Depressurization Flow Characteristics of a Multi-layer Sleeve Regulating Valve
title_sort numerical simulation and experimental study on internal depressurization flow characteristics of a multi layer sleeve regulating valve
topic regulating valve
numerical simulations
experimental verification
flow characteristics
cavitation
url https://www.jafmonline.net/article_2187_bb8e639577f108bf7643f4683fbcfbbb.pdf
work_keys_str_mv AT hzjin numericalsimulationandexperimentalstudyoninternaldepressurizationflowcharacteristicsofamultilayersleeveregulatingvalve
AT kmtang numericalsimulationandexperimentalstudyoninternaldepressurizationflowcharacteristicsofamultilayersleeveregulatingvalve
AT xfliu numericalsimulationandexperimentalstudyoninternaldepressurizationflowcharacteristicsofamultilayersleeveregulatingvalve
AT cwang numericalsimulationandexperimentalstudyoninternaldepressurizationflowcharacteristicsofamultilayersleeveregulatingvalve