Investigations of hydraulic transient flows in pressurized pipeline based on 1D traditional and 3D weakly compressible models

Transient flow characteristics and dissipation mechanism in pressurized pipeline were investigated based on 1D friction models and 3D turbulence models, where the pressure–density model was combined into the 3D continuity equation allowing for the elasticity of the fluid and the pipes. The applicabi...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autores principales: Guohong Wu, Xiangyu Duan, Jianghui Zhu, Xiaoqin Li, Xuelin Tang, Hui Gao
Formato: article
Lenguaje:EN
Publicado: IWA Publishing 2021
Materias:
Acceso en línea:https://doaj.org/article/817b5c13c7674e359dab343989ea48c8
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
id oai:doaj.org-article:817b5c13c7674e359dab343989ea48c8
record_format dspace
spelling oai:doaj.org-article:817b5c13c7674e359dab343989ea48c82021-11-05T17:42:47ZInvestigations of hydraulic transient flows in pressurized pipeline based on 1D traditional and 3D weakly compressible models1464-71411465-173410.2166/hydro.2021.134https://doaj.org/article/817b5c13c7674e359dab343989ea48c82021-03-01T00:00:00Zhttp://jh.iwaponline.com/content/23/2/231https://doaj.org/toc/1464-7141https://doaj.org/toc/1465-1734Transient flow characteristics and dissipation mechanism in pressurized pipeline were investigated based on 1D friction models and 3D turbulence models, where the pressure–density model was combined into the 3D continuity equation allowing for the elasticity of the fluid and the pipes. The applicability of 3D realizable k–ε and 3D SST (shear stress transport) k–ω turbulence models was verified with comparison to 1D traditional water hammer models and the experimental data for fast closing of the valve in the reservoir–pipe–valve system. The valve closure rule was instantaneously carried out using the grid slip CFD (computational fluid dynamics) technique. The SST k–ω turbulence model has the highest accuracy in predicting the pressure attenuation of transient flows. The 3D detailed flow field confirms that the asymmetric flows induced by the change of valve opening within approximately three-fourths of the pipe inner diameter before the valve are captured. In the pressure wave cycles, the unsteady inertia, axial pressure gradient, viscous shear stress and turbulent shear stress mainly influence the velocity variations. During the pressure wave propagation, the viscous and turbulent dissipation are critical in the pressure attenuation in the wall region; the viscous dissipation is mainly concentrated in the viscous sublayer, while the turbulent dissipation increases to the maximum values at y+ = 13–23. HIGHLIGHTS The 3D weakly compressible and dissipation mechanism models are introduced to investigate transient flow characteristics.; The asymmetric flows induced by the change of valve opening are captured well within approximately three-fourths of the pipe inner diameter before the valve.; The viscous dissipation is mainly concentrated in the viscous sublayer, while the turbulent dissipation has maximum influence at y+ = 13–23.;Guohong WuXiangyu DuanJianghui ZhuXiaoqin LiXuelin TangHui GaoIWA Publishingarticle3d cfddissipation mechanismtransient flowsvelocity reverse distributionweakly compressibleInformation technologyT58.5-58.64Environmental technology. Sanitary engineeringTD1-1066ENJournal of Hydroinformatics, Vol 23, Iss 2, Pp 231-248 (2021)
institution DOAJ
collection DOAJ
language EN
topic 3d cfd
dissipation mechanism
transient flows
velocity reverse distribution
weakly compressible
Information technology
T58.5-58.64
Environmental technology. Sanitary engineering
TD1-1066
spellingShingle 3d cfd
dissipation mechanism
transient flows
velocity reverse distribution
weakly compressible
Information technology
T58.5-58.64
Environmental technology. Sanitary engineering
TD1-1066
Guohong Wu
Xiangyu Duan
Jianghui Zhu
Xiaoqin Li
Xuelin Tang
Hui Gao
Investigations of hydraulic transient flows in pressurized pipeline based on 1D traditional and 3D weakly compressible models
description Transient flow characteristics and dissipation mechanism in pressurized pipeline were investigated based on 1D friction models and 3D turbulence models, where the pressure–density model was combined into the 3D continuity equation allowing for the elasticity of the fluid and the pipes. The applicability of 3D realizable k–ε and 3D SST (shear stress transport) k–ω turbulence models was verified with comparison to 1D traditional water hammer models and the experimental data for fast closing of the valve in the reservoir–pipe–valve system. The valve closure rule was instantaneously carried out using the grid slip CFD (computational fluid dynamics) technique. The SST k–ω turbulence model has the highest accuracy in predicting the pressure attenuation of transient flows. The 3D detailed flow field confirms that the asymmetric flows induced by the change of valve opening within approximately three-fourths of the pipe inner diameter before the valve are captured. In the pressure wave cycles, the unsteady inertia, axial pressure gradient, viscous shear stress and turbulent shear stress mainly influence the velocity variations. During the pressure wave propagation, the viscous and turbulent dissipation are critical in the pressure attenuation in the wall region; the viscous dissipation is mainly concentrated in the viscous sublayer, while the turbulent dissipation increases to the maximum values at y+ = 13–23. HIGHLIGHTS The 3D weakly compressible and dissipation mechanism models are introduced to investigate transient flow characteristics.; The asymmetric flows induced by the change of valve opening are captured well within approximately three-fourths of the pipe inner diameter before the valve.; The viscous dissipation is mainly concentrated in the viscous sublayer, while the turbulent dissipation has maximum influence at y+ = 13–23.;
format article
author Guohong Wu
Xiangyu Duan
Jianghui Zhu
Xiaoqin Li
Xuelin Tang
Hui Gao
author_facet Guohong Wu
Xiangyu Duan
Jianghui Zhu
Xiaoqin Li
Xuelin Tang
Hui Gao
author_sort Guohong Wu
title Investigations of hydraulic transient flows in pressurized pipeline based on 1D traditional and 3D weakly compressible models
title_short Investigations of hydraulic transient flows in pressurized pipeline based on 1D traditional and 3D weakly compressible models
title_full Investigations of hydraulic transient flows in pressurized pipeline based on 1D traditional and 3D weakly compressible models
title_fullStr Investigations of hydraulic transient flows in pressurized pipeline based on 1D traditional and 3D weakly compressible models
title_full_unstemmed Investigations of hydraulic transient flows in pressurized pipeline based on 1D traditional and 3D weakly compressible models
title_sort investigations of hydraulic transient flows in pressurized pipeline based on 1d traditional and 3d weakly compressible models
publisher IWA Publishing
publishDate 2021
url https://doaj.org/article/817b5c13c7674e359dab343989ea48c8
work_keys_str_mv AT guohongwu investigationsofhydraulictransientflowsinpressurizedpipelinebasedon1dtraditionaland3dweaklycompressiblemodels
AT xiangyuduan investigationsofhydraulictransientflowsinpressurizedpipelinebasedon1dtraditionaland3dweaklycompressiblemodels
AT jianghuizhu investigationsofhydraulictransientflowsinpressurizedpipelinebasedon1dtraditionaland3dweaklycompressiblemodels
AT xiaoqinli investigationsofhydraulictransientflowsinpressurizedpipelinebasedon1dtraditionaland3dweaklycompressiblemodels
AT xuelintang investigationsofhydraulictransientflowsinpressurizedpipelinebasedon1dtraditionaland3dweaklycompressiblemodels
AT huigao investigationsofhydraulictransientflowsinpressurizedpipelinebasedon1dtraditionaland3dweaklycompressiblemodels
_version_ 1718444108651954176