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Taylor bubbles at high viscosity ratios: experiments and numerical simulations

Hasan, Abbas; Hewakandamby, Buddhika; Azzopardi, Barry; Xie, Zhihua; Pain, Chris ; Matar, Omar

Authors

Buddhika Hewakandamby

Barry Azzopardi

Zhihua Xie

Chris Pain

Omar Matar



Abstract

The Taylor bubble is a single long bubble which nearly fills the entire cross section of a liquid-filled circular tube, often occurring in gas-liquid slug flows in many industrial applications, particularly oil and gas production. The objective of this study is to investigate the fluid dynamics of three-dimensional Taylor bubble rising in highly viscous silicone oil in a vertical pipe. An adaptive unstructured mesh modelling framework is adopted here which can modify and adapt anisotropic unstructured meshes to better represent the underlying physics of bubble rising and reduce computational effort without sacrificing accuracy. The numerical framework consists of a mixed control volume and finite element formulation, a `volume of fluid'-type method for the interface-capturing based on a compressive control volume advection method, and a force-balanced algorithm for the surface tension implementation. Experimental results for the Taylor bubble shape and rise velocity are presented, together with numerical results for the dynamics of the bubbles. A comparison of the simulation predictions with experimental data available in the literature is also presented to demonstrate the capabilities of our numerical method.

Citation

Hasan, A., Hewakandamby, B., Azzopardi, B., Xie, Z., Pain, C., & Matar, O. (2015, November). Taylor bubbles at high viscosity ratios: experiments and numerical simulations. Presented at 68th Annual Meeting of the APS Division of Fluid Dynamics, USA, Boston

Presentation Conference Type Other
Conference Name 68th Annual Meeting of the APS Division of Fluid Dynamics
Start Date Nov 22, 2015
Deposit Date Sep 16, 2019
Public URL https://hull-repository.worktribe.com/output/2481475