Smoothed particle hydrodynamics model for Landau-Lifshitz-Navier-Stokes and advection-diffusion equations

2014 | Zeitschriftenartikel. Eine Publikation mit Affiliation zur Georg-August-Universität Göttingen.

Spring zu: Zitieren & Links | Dokumente & Medien | Details | Versionsgeschichte

Zitiervorschlag

​Smoothed particle hydrodynamics model for Landau-Lifshitz-Navier-Stokes and advection-diffusion equations​
Kordilla, J.; Pan, W. & Tartakovsky, A.​ (2014) 
The Journal of Chemical Physics141(22) art. 224112​.​ DOI: https://doi.org/10.1063/1.4902238 

Dokumente & Medien

Lizenz

GRO License GRO License

Details

Autor(en)
Kordilla, Jannes; Pan, Wenxiao; Tartakovsky, Alexandre
Zusammenfassung
We propose a novel smoothed particle hydrodynamics (SPH) discretization of the fully coupled Landau-Lifshitz-Navier-Stokes (LLNS) and stochastic advection-diffusion equations. The accuracy of the SPH solution of the LLNS equations is demonstrated by comparing the scaling of velocity variance and the self-diffusion coefficient with kinetic temperature and particle mass obtained from the SPH simulations and analytical solutions. The spatial covariance of pressure and velocity fluctuations is found to be in a good agreement with theoretical models. To validate the accuracy of the SPH method for coupled LLNS and advection-diffusion equations, we simulate the interface between two miscible fluids. We study formation of the so-called "giant fluctuations" of the front between light and heavy fluids with and without gravity, where the light fluid lies on the top of the heavy fluid. We find that the power spectra of the simulated concentration field are in good agreement with the experiments and analytical solutions. In the absence of gravity, the power spectra decay as the power -4 of the wavenumber-except for small wavenumbers that diverge from this power law behavior due to the effect of finite domain size. Gravity suppresses the fluctuations, resulting in much weaker dependence of the power spectra on the wavenumber. Finally, the model is used to study the effect of thermal fluctuation on the Rayleigh-Taylor instability, an unstable dynamics of the front between a heavy fluid overlaying a light fluid. The front dynamics is shown to agree well with the analytical solutions. (C) 2014 AIP Publishing LLC.
Erscheinungsdatum
2014
Status
published
Herausgeber
Amer Inst Physics
Zeitschrift
The Journal of Chemical Physics 
ISSN
1089-7690; 0021-9606

Export Metadaten

Referenzen

Zitationen


Social Media