Numerical simulation of transient pipe flow with entrapped air and wet bed effects

Author:

Wang Chunling1ORCID,Xu Tibing2ORCID,Wang Yin34ORCID,Li Jiajia1,Zhang Chenhui4ORCID

Affiliation:

1. School of Civil Engineering and Architecture, Taizhou University 1 , Taizhou 318000, Zhejiang, China

2. School of Civil and Environmental Engineering, Ningbo University 2 , Ningbo 315211, Zhejiang, China

3. Institute of Disaster Prevention and Mitigation and Water Engineering Safety, Jiangxi Academy of Water Science and Engineering 3 , Nanchang 330029, Jiangxi, China

4. School of Hydraulic and Ecological Engineering, Nanchang Institute of Technology 4 , Nanchang 330099, Jiangxi, China

Abstract

In this study, the evolution of transient pipe flow along the wet bed is numerically investigated. In the investigation, the shear stress transport k-ω model is used and the volume of fluid method is employed to track the surface of air and water. Two key parameters in the flow as upstream head H and initial water depth h in the pipe are examined. It is found that the bottom stress is significantly affected by the two parameters. The upstream head H determines the magnitude of the shear force, and the downstream water depth in the pipe affects the stability of the shear force. The boundary layer separation and flow pattern are the essential causes of shear instability. By analyzing the simulation results, an empirical equation with the average flow velocity is obtained to estimate the overflow capacity of the pipe by just the upstream water level and the depth of the wet bed.

Funder

National Nature Science Foundation of China

China Postdoctoral Science Foundation Funded Project

Zhejiang Provincial Nature Science Foundation of China

Taizhou Science and Technology Bureau Projects

Publisher

AIP Publishing

Subject

General Physics and Astronomy

Reference24 articles.

1. Andrews, J. S., “Water hammer generated during pipeline filling,” Master’s thesis, Colorado State University, Fort Collins, Colo, 1970.

2. Measurements of mixed transient flows;J. Hydraul. Eng.,1989

3. Kelvin–Helmholtz instability of finite amplitude;J. Fluid Mech.,1970

4. Pressure surges caused by air release in water pipelines;J. Hydraul. Res.,2016

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