Near-Hagedorn string solutions show that in five and six spacetime dimensions, the Gregory-Laflamme pinch halts at a stable stringy neck that slowly evaporates, avoiding a naked singularity.
Black Branes in a Box: Hydrodynamics, Stability, and Criticality
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abstract
We study the effective hydrodynamics of neutral black branes enclosed in a finite cylindrical cavity with Dirichlet boundary conditions. We focus on how the Gregory-Laflamme instability changes as we vary the cavity radius R. Fixing the metric at the cavity wall increases the rigidity of the black brane by hindering gradients of the redshift on the wall. In the effective fluid, this is reflected in the growth of the squared speed of sound. As a consequence, when the cavity is smaller than a critical radius the black brane becomes dynamically stable. The correlation with the change in thermodynamic stability is transparent in our approach. We compute the bulk and shear viscosities of the black brane and find that they do not run with R. We find mean-field theory critical exponents near the critical point.
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String Theory in a Pinch: Resolving the Gregory-Laflamme Singularity
Near-Hagedorn string solutions show that in five and six spacetime dimensions, the Gregory-Laflamme pinch halts at a stable stringy neck that slowly evaporates, avoiding a naked singularity.