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Hydrodynamic Gradient Expansion in Gauge Theory Plasmas

Michal P. Heller, Romuald A. Janik, and Przemysław Witaszczyk
Phys. Rev. Lett. 110, 211602 – Published 22 May 2013
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Abstract

We utilize the fluid-gravity duality to investigate the large order behavior of hydrodynamic gradient expansion of the dynamics of a gauge theory plasma system. This corresponds to the inclusion of dissipative terms and transport coefficients of very high order. Using the dual gravity description, we calculate numerically the form of the stress tensor for a boost-invariant flow in a hydrodynamic expansion up to terms with 240 derivatives. We observe a factorial growth of gradient contributions at large orders, which indicates a zero radius of convergence of the hydrodynamic series. Furthermore, we identify the leading singularity in the Borel transform of the hydrodynamic energy density with the lowest nonhydrodynamic excitation corresponding to a ‘nonhydrodynamic’ quasinormal mode on the gravity side.

  • Received 26 February 2013

DOI:https://doi.org/10.1103/PhysRevLett.110.211602

© 2013 American Physical Society

Authors & Affiliations

Michal P. Heller*

  • Instituut voor Theoretische Fysica, Universiteit van Amsterdam, Science Park 904, 1090 GL Amsterdam, The Netherlands

Romuald A. Janik and Przemysław Witaszczyk

  • Institute of Physics, Jagiellonian University, Reymonta 4, 30-059 Kraków, Poland

  • *On leave from National Centre for Nuclear Research, Hoża 69, 00-681 Warsaw, Poland. m.p.heller@uva.nl
  • romuald@th.if.uj.edu.pl
  • bofh@th.if.uj.edu.pl

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Issue

Vol. 110, Iss. 21 — 24 May 2013

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