Bubble dynamics of a pressure-driven cavitating flow in a micro-scale channel using a high density pseudo-potential Lattice Boltzmann method

Gaddam, Saritha and Banerjee, Raja (2020) Bubble dynamics of a pressure-driven cavitating flow in a micro-scale channel using a high density pseudo-potential Lattice Boltzmann method. Heat Transfer Engineering, 41 (6-7). pp. 1-15. ISSN 0145-7632

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Abstract

A single-component multiphase solver based on Lattice Boltzmann method has been developed and was used to study dynamics of a single cavitating bubble subjected to pressure-driven flow in a two-dimensional channel. Simulations were performed with and without contact to the wall. A pseudopotential model coupled with Peng-Robinson equation of state was implemented to incorporate inter-particle force interaction. The solver was validated by comparing the simulated densities with the theoretical co-existence curves at different temperatures for water. Additionally, the contact angle obtained at various adhesive parameters is also validated at 583 K for water. The dynamics of a single cavitating bubble in a two-dimensional channel subjected to a pressure gradient is studied. Displacement of this bubble at different aspect ratios (5,10) and Reynolds numbers (1–30) when placed along the channel centerline and at off-center positions were studied. Moreover, bubble growth is computed at various contact angles for different aspect ratios and Reynolds number. Dynamic contact angles and contact lengths during the flow are estimated. As the aspect ratio increases, the bubble appears to be more elongated with lower contact angles.

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IITH Creators:
IITH CreatorsORCiD
Banerjee, Rajahttp://orcid.org/0000-0002-7163-1470
Item Type: Article
Uncontrolled Keywords: Cavitating bubbles; Dynamic contact angle; Interparticle force; Lattice Boltzmann method; Peng-Robinson equation of state; Pressure-driven flows; Pseudopotential models; Two dimensional channels
Subjects: Physics > Mechanical and aerospace
Others > Mechanics
Divisions: Department of Mechanical & Aerospace Engineering
Depositing User: Team Library
Date Deposited: 11 Jun 2019 04:10
Last Modified: 26 Oct 2022 14:56
URI: http://raiithold.iith.ac.in/id/eprint/5455
Publisher URL: http://doi.org/10.1080/01457632.2018.1546964
OA policy: http://sherpa.ac.uk/romeo/issn/0145-7632/
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