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Kinetic vs. Thermal-Field-Theory Approach to Cosmological Perturbations

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arxiv gr-qc/9403032 v1 pith:SJTOYLPX submitted 1994-03-16 gr-qc astro-ph

Kinetic vs. Thermal-Field-Theory Approach to Cosmological Perturbations

classification gr-qc astro-ph
keywords approachperturbationscosmologicalkineticcollisionlessfluidperfecttheory
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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A closed set of equations for the evolution of linear perturbations of homogeneous, isotropic cosmological models can be obtained in various ways. The simplest approach is to assume a macroscopic equation of state, e.g.\ that of a perfect fluid. For a more refined description of the early universe, a microscopic treatment is required. The purpose of this paper is to compare the approach based on classical kinetic theory to the more recent thermal-field-theory approach. It is shown that in the high-temperature limit the latter describes cosmological perturbations supported by collisionless, massless matter, wherein it is equivalent to the kinetic theory approach. The dependence of the perturbations in a system of a collisionless gas and a perfect fluid on the initial data is discussed in some detail. All singular and regular solutions are found analytically.

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Cited by 3 Pith papers

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    Tensor perturbations remain conserved on super-horizon scales when radiation initial conditions during reheating are locally perturbed by existing modes, unlike global equilibrium assumptions that suppress amplitudes.

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    gr-qc 2026-06 unverdicted novelty 4.0

    Metric-affine gravity formulates equivalence principle violations via non-metricity that parallel finite-temperature mass-ratio shifts, and a generalized Fermi-Walker derivative shows no orthonormal tetrad propagates ...

  3. The Status of Gravitational Vector Perturbations with Recent CMB Data

    astro-ph.CO 2026-05 unverdicted novelty 4.0

    Recent CMB datasets tighten 95% CL upper bounds on vector-mode amplitude r_v to 1.3e-4 (neutrino isocurvature), 6.8 (octupole), and 4.2 (sourced) at k=0.05 Mpc^-1, with no significant detection.