English

Speed of sound in dense simple liquids

Soft Condensed Matter 2025-07-24 v1 Statistical Mechanics Chemical Physics

Abstract

The speed of sound of simple dense fluids is shown to exhibit a pronounced freezing temperature scaling of the form cs/vTγ+α(Tfr/T)βc_{\rm s}/v_{\rm T}\simeq \sqrt{\gamma} +\alpha (T_{\rm fr}/T)^{\beta}, where csc_s is the speed of sound, vTv_{\rm T} is the characteristic thermal velocity, γ\gamma is the ideal gas heat capacity ratio, TT is the temperature, TfrT_{\rm fr} is the freezing temperature, and α\alpha and β\beta are dimensionless parameters. For the Lennard-Jones fluid we get γ=5/3\gamma=5/3, α7\alpha\simeq 7 with a weak temperature dependence, and β=1/3\beta = 1/3. Similar scaling works in several real liquids, such as argon, krypton, xenon, nitrogen, and methane. In this case, α\alpha and β\beta are substance-dependent fitting parameters. A comparison between the prediction of this freezing temperature scaling and a recent experimental measurement of the speed of sound in methane under conditions of planetary interiors is presented and discussed. The results provide a simple practical tool to estimate the speed of sound in regimes where no experimental data are yet available.

Keywords

Cite

@article{arxiv.2507.16967,
  title  = {Speed of sound in dense simple liquids},
  author = {Sergey Khrapak},
  journal= {arXiv preprint arXiv:2507.16967},
  year   = {2025}
}