Gabbana A, Simeoni D, Succi S, Tripiccione R
Università di Ferrara and INFN-Ferrara, 44122 Ferrara, Italy.
Bergische Universität Wuppertal, 42119 Wuppertal, Germany.
Philos Trans A Math Phys Eng Sci. 2020 Jul 10;378(2175):20190409. doi: 10.1098/rsta.2019.0409. Epub 2020 Jun 22.
We derive an analytical connection between kinetic relaxation rate and bulk viscosity of a relativistic fluid in spatial dimensions, all the way from the ultra-relativistic down to the near non-relativistic regime. Our derivation is based on both Chapman-Enskog asymptotic expansion and Grad's method of moments. We validate our theoretical results against a benchmark flow, providing further evidence of the correctness of the Chapman-Enskog approach; we define the range of validity of this approach and provide evidence of mounting departures at increasing Knudsen number. Finally, we present numerical simulations of transport processes in quark-gluon plasmas, with special focus on the effects of bulk viscosity which might prove amenable to future experimental verification. This article is part of the theme issue 'Fluid dynamics, soft matter and complex systems: recent results and new methods'.
我们推导了空间维度中相对论流体的动力学弛豫率与体黏滞系数之间的解析关系,涵盖从超相对论到近非相对论的整个范围。我们的推导基于查普曼 - 恩斯考格渐近展开和格拉德矩方法。我们针对一个基准流验证了我们的理论结果,为查普曼 - 恩斯考格方法的正确性提供了进一步证据;我们定义了该方法的有效性范围,并提供了在克努森数增加时偏离程度增大的证据。最后,我们给出了夸克 - 胶子等离子体中输运过程的数值模拟,特别关注体黏滞系数的影响,这可能便于未来的实验验证。本文是主题为“流体动力学、软物质与复杂系统:最新结果与新方法”的一部分。