Numerical investigation on dynamic characteristics of oil-water annular flow-induced vibration in curved pipes

Author:

Wang Yuhan12ORCID,Wang Xiaochuan132,Huang Yuxuan132,Xu Chaoyu12,Hu Jincheng132

Affiliation:

1. School of Power and Mechanical Engineering, Wuhan University, Wuhan, China

2. Hubei Key Laboratory of Waterjet Theory and New Technology, Wuhan University, Wuhan, China

3. The Institute of Technological Sciences, Wuhan University, Wuhan, China

Abstract

To improve the stability of water-lubricated transportation and reliability of pipes in service, the fluid–structure interaction numerical model has been established to investigate the dynamic characteristics of oil-water annular flow-induced vibration in curved pipes and the effect of main parameters in this study. The results illustrate that a single vibration mode of curved pipes is excited by oil-water annular flow, and there exists no multi-modality due to the limited pulsation of pressure and interface of two-phase flow. The change of velocities and oil-water ratios leads to change of flow pattern, making the dynamic response severer. When the oil-water ratio is larger than 2.035, its effect is greater than velocity. The physical properties of oil have a significant effect on the dynamic response. The root-mean-square dimensionless displacement AY,RMS/D and maximum dimensionless displacement AY,MAX/D of fuel oil-water annular flow-induced vibration decrease to 75.6% and 76.5% respectively, which means that the increase of dynamic viscosity reduces the fluid force and suppresses the vibration. AY,RMS/D and AY,MAX/D increases by 1.62 times when the bending angle θ increases from 30° to 90°, indicating that the increase of bending angles also leads to the severer dynamic response.

Funder

National Natural Science Foundation of China

Publisher

SAGE Publications

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