中文

相对论动力学中的随机波动建模

核理论 2024-07-24 v2

摘要

我们利用信息当前量 developing a Lorentz-covariant framework for modeling equilibrium fluctuations in relativistic kinetic theory in the grand-canonical ensemble. resulting stochastic theory is proven to be causal and covariantly stable, and its predictions do not depend on the choice of spacetime foliation used to define the grand-canonical probabilities. As expected, in a box containing N>5N>5 particles, Boltzmann's molecular chaos postulate is broken with (almost exact) probability N1/2N^{-1/2}, leading to a breakdown of the Boltzmann equation in small systems. We also verify that, in ultrarelativistic gases, transient hydrodynamics already accounts for at least 80% of the equilibrium fluctuations of the stress-energy tensor at a given time. Finally, we compute the correlators at non-equal times for two selected collision kernels: That of a chemically active diluted solution, and that of ultrarelativistic scalar particles self-interacting via a quartic potential. For the former, we compute the density-density correlators analytically in real space, and dehydrodynamization of the stochastic theory is proven to occur whenever the mean free path diverges at high energy.

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引用

@article{arxiv.2405.10878,
  title  = {Modelling stochastic fluctuations in relativistic kinetic theory},
  author = {Gabriel Soares Rocha and Lorenzo Gavassino and Nicki Mullins},
  journal= {arXiv preprint arXiv:2405.10878},
  year   = {2024}
}

备注

36 pages, 8 figures. v2: published version