On the fractal dimension of turbulent black holes
arXiv:1710.04264 · doi:10.1103/PhysRevD.96.104054
Abstract
We present measurements of the fractal dimension of a turbulent asymptotically anti-deSitter black brane reconstructed from simulated boundary fluid data at the perfect fluid order using the fluid-gravity duality. We argue that the boundary fluid energy spectrum scaling as is a more natural setting for the fluid-gravity duality than the Kraichnan-Kolmogorov scaling of , but we obtain fractal dimensions for spatial sections of the horizon in both cases: and , respectively. These results are consistent with the upper bound of , thereby resolving the tension with the recent claim in Adams, Chesler, Liu (2014) that . We offer a critical examination of the calculation which led to their result, and show that their proposed definition of fractal dimension performs poorly as a fractal dimension estimator on -dimensional curves with known fractal dimension. Finally, we describe how to define and in principle calculate the fractal dimension of spatial sections of the horizon in a covariant manner, and we speculate on assigning a `bootstrapped' value of fractal dimension to the entire horizon when it is in a statistically quasi-steady turbulent state.
9 pages, 4 figures. V2: added an important acknowledgement