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Simulation of phase separation in a Van der Waals fluid under gravitational force with Lattice Boltzmann method

Fogliatto, Ezequiel Oscar et al · Emerald · 2019

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Purpose – This paper aims to assess the accuracy of Lattice Boltzmann method (LBM) for numerical simulation of the stratification of a Van der Waals (VdW) fluid subjected to a gravity field and non-uniform temperature distribution. A sensitivity analysis of the influence of the pseudopotential parameters and the grid resolution is presented. The effect of gravity force on interface densities, density profiles and liquid volume fraction is studied. Design/methodology/approach – The D2Q9 multiple-relaxation-time pseudopotential LBM for two-phase flow is proposed to simulate the phase separation. The analytical solution for density profiles in a one-dimensional problem is derived and used as a benchmark case to validate the numerical results. Findings – The numerical results reproduce the analytical density profiles with great accuracy over a wide range of simulation conditions, including variations of the gravity and temperature fields. Particularly, the numerical simulations are able to represent the effect of gravity on the existence and position of the liquid– vapor boundary of an ideal pure substance in thermodynamic equilibrium. The sensitivity of the results to variations of the calibration parameters of the VdW pseudopotential was assessed. Research limitations/implications – The numerical simulations were performed assuming a VdW fluid in a 2-D cavity with one periodic direction for which analytical solutions for benchmarking purposes are possible to obtain. Originality/value – The following fundamental question is addressed: Is the pseudopotential LBM capable of simulating accurately the liquid–vapor equilibrium under gravity forces and temperature gradients? Moreover, regarding that the pseudopotential model requires the calibration of several internal parameters to achieve thermodynamic consistency, the sensitivity of the results to variations of these parameters is assessed. Fil: Fogliatto, Ezequiel Oscar. Comisión Nacional de Energía Atómica. Gerencia del Área de Energía Nuclear. Instituto Balseiro; Argentina Fil: Clausse, Alejandro. Comisión Nacional de Energía Atómica; Argentina. Universidad Nacional del Centro de la Provincia de Buenos Aires. Facultad de Ciencias Exactas. Grupo de Plasmas Densos Magnetizados. Provincia de Buenos Aires. Gobernación. Comision de Investigaciones Científicas. Grupo de Plasmas Densos Magnetizados; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Tandil; Argentina

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APA 7

Fogliatto, E. O. E. A. (2019). Simulation of phase separation in a Van der Waals fluid under gravitational force with Lattice Boltzmann method. http://hdl.handle.net/11336/128774

MLA

Fogliatto, Ezequiel Oscar et al. "Simulation of phase separation in a Van der Waals fluid under gravitational force with Lattice Boltzmann method." 2019. http://hdl.handle.net/11336/128774.

Chicago

Fogliatto, Ezequiel Oscar et al. 2019. "Simulation of phase separation in a Van der Waals fluid under gravitational force with Lattice Boltzmann method.". http://hdl.handle.net/11336/128774.

Harvard

Fogliatto, E. O. E. A. 2019, Simulation of phase separation in a Van der Waals fluid under gravitational force with Lattice Boltzmann method, Emerald, available at: http://hdl.handle.net/11336/128774 [Accessed 9 Aug. 2026].

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Title
Simulation of phase separation in a Van der Waals fluid under gravitational force with Lattice Boltzmann method
Author / contributors
Fogliatto, Ezequiel Oscar et al
Publisher
Emerald
Publication year
2019
ISSN
3095-3109
ISSN
3095-3109
Language
English

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