The study of coherent Rayleigh-Brillouin scattering in multiple flow regimes using unified gas-kinetic scheme
Xiaozhe Xi, Junzhe Cao, Kun Xu

TL;DR
This paper extends the unified gas-kinetic scheme to simulate coherent Rayleigh-Brillouin scattering across multiple flow regimes, validating the model with experiments and analyzing the effects of incident signal intensity on spectra.
Contribution
It introduces a novel UGKS-based model for CRBS, capable of handling multiscale gas-kinetic phenomena and validated against experimental data.
Findings
Excellent agreement between simulations and experiments.
Impact of incident signal intensity on CRBS spectra analyzed.
Model extends CFD capabilities for high-intensity, multiscale gas phenomena.
Abstract
Coherent Rayleigh-Brillouin scattering (CRBS) holds great promise for the characterization of gas properties and the investigation of gas kinetic processes. The CRBS spectrum exhibits a strong dependence on the Knudsen number (Kn), revealing its inherently multiscale nature. In the unified gas-kinetic scheme (UGKS), collisions are intrinsically coupled with free transport during flux construction, endowing the method with distinct multiscale capabilities. Specifically, the UGKS reduces to a Boltzmann solver when the relaxation time is greater than or equal to the time step, and to the gas-kinetic scheme (GKS)-a Navier-Stokes solver-when the relaxation time is much smaller than the time step, thereby accommodating flow regimes without constraints on the molecular mean free path or collision time. In this study, the UGKS is extended to simulate CRBS phenomena, with the governing equation…
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Taxonomy
TopicsGas Dynamics and Kinetic Theory · Combustion and flame dynamics · Spectroscopy and Laser Applications
