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Driven black holes: from Kolmogorov scaling to turbulent wakes

Published inThe journal of high energy physics, vol. 2021, 63
Publication date2021
First online date2021-07-12
Abstract

General relativity governs the nonlinear dynamics of spacetime, including black holes and their event horizons. We demonstrate that forced black hole horizons exhibit statistically steady turbulent spacetime dynamics consistent with Kolmogorov’s theory of 1941. As a proof of principle we focus on black holes in asymptotically anti-de Sitter spacetimes in a large number of dimensions, where greater analytic control is gained. We focus on cases where the effective horizon dynamics is restricted to 2+1 dimensions. We also demonstrate that tidal deformations of the horizon induce turbulent dynamics. When set in motion relative to the horizon a deformation develops a turbulent spacetime wake, indicating that turbulent spacetime dynamics may play a role in binary mergers and other strong-field phenomena.

Keywords
  • AdS-CFT Correspondence
  • Black Holes
  • Gauge-gravity correspondence
  • Holography and condensed matter physics (AdS/CMT)
  • Black hole: horizon
  • Space-time: anti-de Sitter
  • Horizon: deformation
  • Turbulence
  • General relativity
  • Strong field
  • Nonlinear
  • Scaling
  • Binary
Citation (ISO format)
ANDRADE, Tomas et al. Driven black holes: from Kolmogorov scaling to turbulent wakes. In: The journal of high energy physics, 2021, vol. 2021, p. 63. doi: 10.1007/jhep07(2021)063
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Additional URL for this publicationhttps://link.springer.com/10.1007/JHEP07(2021)063
Journal ISSN1029-8479
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20downloads

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