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Is first-order relativistic hydrodynamics in general frame stable and causal for arbitrary interaction?

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arxiv 2202.08685 v3 pith:HMRPN4FA submitted 2022-02-17 nucl-th hep-phhep-th

classification nucl-thhep-phhep-th
keywords framegeneralrelativisticcausalfirst-orderinteractionstablearbitrary
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We derive a first-order, stable and causal, relativistic hydrodynamic theory from the microscopic kinetic equation using the gradient expansion technique in a general frame. The general frame is introduced from the arbitrary matching conditions for hydrodynamic fields. The interaction is introduced in the relativistic Boltzmann equation through the momentum-dependent relaxation time approximation (MDRTA) with the proposed collision operator that preserves the conservation laws. We demonstrate here for the first time that not only the general frame choice, but also the momentum dependence of microscopic interaction rate, captured through MDRTA, is imperative for producing the essential field corrections that give rise to a causal and stable first-order relativistic theory.

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Cited by 1 Pith paper

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  1. Thermal dilepton production within conformal viscous Gubser flow

    hep-ph 2025-06 conditional novelty 5.0 of 10

    Thermal dilepton yields and effective temperatures are computed for conformal viscous Gubser flow, showing larger yields for lower q (larger systems) and higher effective temperatures for smaller systems.

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