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DOI of the published article https://doi.org/10.1063/5.0346853
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Anisotropic Thermalization in Far-from-Equilibrium Flows

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Abstract

We present a deterministic discontinuous Galerkin (DG) finite-element solution of the Boltzmann equation, without moment-closure approximations, under a class of far-from-equilibrium deformations.
Specifically, we consider affine flows which reduce the Boltzmann equation to a purely velocity-space problem for the reduced distribution function in a reduced velocity field.
We solve the reduced equation using a tensor-product Lagrange DG discretization for four representative flows: simple shear, pressure shear,
bi-directional shear, and a vortex flow.
Our principal finding is that the velocity distribution is well-approximated by an anisotropic Gaussian throughout the evolution, despite the non-equilibrium conditions.
Further, we show the evolution of the covariance tensor of the Gaussian distribution is equal to the inverse of the right Cauchy-Green tensor in the free-streaming limit without collisions.
This prediction compares very well with the numerical solution at short times; at longer times, they grow apart, reflecting the influence of particle collisions.

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2026-08-12