Technical Papers
May 26, 2018

Dynamic Behavior of Entrapped Air Pocket in a Water Filling Pipeline

Publication: Journal of Hydraulic Engineering
Volume 144, Issue 8

Abstract

When pipelines are rapidly filled, dynamic and sometimes dramatic air–water interactions often occur. These air–water interactions, along with their associated pressure and temperature oscillations, are explored in this paper both experimentally and numerically. A computational fluid dynamics (CFD) approach based on a volume of fluid (VOF) formulation is used to simulate the flow field in three-dimensions (3D). Thermal conduction and convection in three different media (air, liquid water, and the pipe wall) are all considered in order to account for the key thermal processes potentially influencing an entrapped air pocket during rapid filling. The simulation accounts for the compressibility of water and the roughness of the pipe wall, considerations sometimes neglected in previous studies. Simulated pressures and air–water profiles are compared to measured data and to the dynamic images obtained through a high-speed camera. The relatively good agreement between the numerical and experimental results confirms that the proposed model can accurately simulate transient flow and also reasonably represents the associated physical processes. Significantly, the observed phenomena of white mist and of a hot pipe wall are explained through the physics represented in the 3D simulations. Indeed, the model shows that extremely intense air–water interactions appear sufficient to account for the observed efficient heat exchange and the dramatic rates of energy dissipation. Overall, the proposed model provides insight into the physical mechanisms of rapid filling and particularly those thermal effects associated with entrapped air.

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Acknowledgments

The writers gratefully acknowledge the financial support for this research from the National Natural Science Foundation of China (Grant Nos. 51679066 and 51209073), the Fundamental Research Funds for the Central Universities (Grant No. 2015B15414), Fok Ying Tong Education Foundation (Grant No. 161068), Science and Technology Program of State Grid Corporation of China (Grant No. SGBXSJJS1700007), and the Natural Science Foundation of the Higher Education Institutions of Jiangsu Province (Grant No. 15KJB570003).

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Go to Journal of Hydraulic Engineering
Journal of Hydraulic Engineering
Volume 144Issue 8August 2018

History

Received: Apr 22, 2017
Accepted: Feb 20, 2018
Published online: May 26, 2018
Published in print: Aug 1, 2018
Discussion open until: Oct 26, 2018

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Professor, College of Water Conservancy and Hydropower Engineering, Hohai Univ., 1 Xikang Rd., Nanjing 210098, China (corresponding author). Email: [email protected]
Ph.D. Candidate, College of Water Conservancy and Hydropower Engineering, Hohai Univ., 1 Xikang Rd., Nanjing 210098, China. Email: [email protected]
Bryan Karney, M.ASCE [email protected]
Professor, Dept. of Civil Engineering, Univ. of Toronto, 35 St. George St., Toronto, ON, Canada M5S 1A4. Email: [email protected]
Professor, College of Water Conservancy and Hydropower Engineering, Hohai Univ., 1 Xikang Rd., Nanjing 210098, China. Email: [email protected]
Associate Professor, College of Energy and Electrical Engineering, Hohai Univ., 1 Xikang Rd., Nanjing 210098, China. Email: [email protected]
Senior Experimentalist, College of Energy and Electrical Engineering, Hohai Univ., 1 Xikang Rd., Nanjing 210098, China. Email: [email protected]

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