Continuum-particle hybrid coupling for mass, momentum, and energy transfers in unsteady fluid flow
- 11 April 2003
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 67 (4), 046704
- https://doi.org/10.1103/physreve.67.046704
Abstract
The aim of hybrid methods in simulations is to communicate regions with disparate time and length scales. Here, a fluid described at the atomistic level within an inner region P is coupled to an outer region C described by continuum fluid dynamics. The matching of both descriptions of matter is made across an overlapping region and, in general, consists of a two-way coupling scheme and that conveys mass, momentum, and energy fluxes. The contribution of the hybrid scheme hereby presented is twofold. First, it treats unsteady flows and, more importantly, it handles energy exchange between both C and P regions. The implementation of the coupling is tested here using steady and unsteady flows with different rates of mass, momentum and energy exchange. In particular, relaxing flows described by linear hydrodynamics (transversal and longitudinal waves) are most enlightening as they comprise the whole set of hydrodynamic modes. Applying the hybrid coupling scheme after the onset of an initial perturbation, the cell-averaged Fourier components of the flow variables in the P region (velocity, density, internal energy, temperature, and pressure) evolve in excellent agreement with the hydrodynamic trends. It is also shown that the scheme preserves the correct rate of entropy production. We discuss some general requirements on the coarse-grained length and time scales arising from both the characteristic microscopic and hydrodynamic scales.
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This publication has 11 references indexed in Scilit:
- Hybrid model for combined particle and continuum dynamicsEurophysics Letters, 2000
- Adaptive Mesh and Algorithm Refinement Using Direct Simulation Monte CarloJournal of Computational Physics, 1999
- Combining atomistic and continuum simulations of contact-line motionPhysical Review E, 1999
- Coupling continuum to molecular-dynamics simulation: Reflecting particle method and the field estimatorPhysical Review E, 1998
- Heterogeneous Atomistic-Continuum Representations for Dense Fluid SystemsInternational Journal of Modern Physics C, 1997
- Molecular dynamics–continuum hybrid computations: A tool for studying complex fluid flowsPhysical Review E, 1995
- The Lennard-Jones equation of state revisitedMolecular Physics, 1993
- Exact molecular dynamics and kinetic theory results for thermal transport coefficients of the Lennard-Jones argon fluid in a wide region of statesPhysical Review A, 1990
- Simple expressions for the self-diffusion coefficient, shear viscosity and thermal conductivity of Lennard-Jones fluidsChemical Physics Letters, 1988
- Stationary nonequilibrium states by molecular dynamics. II. Newton's lawPhysical Review A, 1984