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Paths to equilibrium in non-conformal collisions

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arxiv 1703.09681 v2 pith:BRUZTD27 submitted 2017-03-28 hep-th gr-qchep-phnucl-th

classification hep-thgr-qchep-phnucl-th
keywords collisionsequilibriumtimewhendifferenthydrodynamizationnon-conformalityvalue
verification ladder T0 review T1 audit T2 compute T3 formal
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We extend our previous analysis of holographic heavy ion collisions in non-conformal theories. We provide a detailed description of our numerical code. We study collisions at different energies in gauge theories with different degrees of non-conformality. We compare four relaxation times: the hydrodynamization time (when hydrodynamics becomes applicable), the EoSization time (when the average pressure approaches its equilibrium value), the isotropization time (when the longitudinal and transverse pressures approach each other) and the condensate relaxation time (when the expectation value of a scalar operator approaches its equilibrium value). We find that these processes can occur in several different orderings. In particular, the condensate can remain far from equilibrium even long after the plasma has hydrodynamized and EoSized. We also explore the rapidity distribution of the energy density at hydrodynamization. This is far from boost-invariant and its width decreases as the non-conformality increases. Nevertheless, the velocity field at hydrodynamization is almost exactly boost-invariant regardless of the non-conformality. This result may be used to constrain the initialization of hydrodynamic fields in heavy ion collisions.

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Cited by 2 Pith papers

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    hep-ph 2026-07 conditional novelty 6.0 of 10

    A nonzero theta angle weakens supercooling in SU(Nc) Yang-Mills confinement and makes any resulting domain-wall gravitational-wave signal invisible except under severe fine-tuning.

  2. Bubble dynamics in a QCD-like phase diagram

    hep-th 2024-12 conditional novelty 6.0 of 10

    Holographic simulations show supercooled bubble walls in a QCD-like fluid reach at most about 0.13 times light speed, while superheated walls reach only about 0.03.

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