001     127104
005     20240610121249.0
024 7 _ |a 10.1103/PhysRevE.86.056711
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024 7 _ |a 1095-3787
|2 ISSN
024 7 _ |a 1539-3755
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024 7 _ |a 1063-651X
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024 7 _ |a 1550-2376
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024 7 _ |a 2128/9223
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037 _ _ |a FZJ-2012-00170
082 _ _ |a 530
100 1 _ |a Huang, Chien-Cheng
|0 P:(DE-Juel1)130724
|b 0
|e Corresponding author
245 _ _ |a Hydrodynamic correlations in multiparticle collision dynamics fluids
260 _ _ |a College Park, Md.
|c 2012
|b APS
264 _ 1 |3 online
|2 Crossref
|b American Physical Society (APS)
|c 2012-11-27
264 _ 1 |3 print
|2 Crossref
|b American Physical Society (APS)
|c 2012-11-01
336 7 _ |a Journal Article
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336 7 _ |a article
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520 _ _ |a The emergent fluctuating hydrodynamics of the multiparticle collision dynamics (MPC) approach, a particle-based mesoscale simulation technique for fluid dynamics, is analyzed theoretically and numerically. We focus on the stochastic rotation dynamics implementation of the MPC method. The fluid is characterized by its longitudinal and transverse velocity correlation functions in Fourier space and velocity autocorrelation functions in real space. Particular attention is paid to the role of sound, which leads to piecewise negative correlation functions. Moreover, finite system-size effects are addressed with an emphasis on the role of sound. Analytical expressions are provided for the transverse and longitudinal velocity correlations, which are derived from the linearized Landau-Lifshitz Navier-Stokes equation adopted for an isothermal MPC fluid. The comparison of the analytical results with simulations shows excellent agreement above a minimal length scale. The simulations indicate a breakdown in hydrodynamics on length scales smaller than this minimal length. This demonstrates that we have an excellent analytical description and understanding of the MPC method and its limitations in terms of time and length scales.
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700 1 _ |a Gompper, Gerhard
|0 P:(DE-Juel1)130665
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700 1 _ |a Winkler, Roland G.
|0 P:(DE-Juel1)131039
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773 1 8 |a 10.1103/physreve.86.056711
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