Singularity resolution and dynamical black holes

We study the effects of loop quantum gravity motivated corrections in classical systems. Computational methods are used to simulate black hole formation from the gravitational collapse of a massless scalar field in Painleve-Gullstrand coordinates. Singularities present in the classical case are reso...

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Main Author: Ziprick, Jonathan
Other Authors: Kunstatter, Gabor (Physics and Astronomy)
Language:en_US
Published: 2009
Subjects:
Online Access:http://hdl.handle.net/1993/3150
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spelling ndltd-MANITOBA-oai-mspace.lib.umanitoba.ca-1993-31502014-01-31T03:31:38Z Singularity resolution and dynamical black holes Ziprick, Jonathan Kunstatter, Gabor (Physics and Astronomy) Osborn, Thomas (Physics and Astronomy) Kocay, William (Computer Science) polymer quantization black holes singularity avoidance numerical methods We study the effects of loop quantum gravity motivated corrections in classical systems. Computational methods are used to simulate black hole formation from the gravitational collapse of a massless scalar field in Painleve-Gullstrand coordinates. Singularities present in the classical case are resolved by a radiation-like phase in the quantum collapse. The evaporation is not complete but leaves behind an outward moving shell of mass that disperses to infinity. We reproduce Choptuik scaling showing the usual behaviour for the curvature scaling, while observing previously unseen behaviour in the mass scaling. The quantum corrections are found to impose a lower limit on black hole mass and generate a new universal power law scaling relationship. In a parallel study, we quantize the Hamiltonian for a particle in the singular $1/r^2$ potential, a form that appears frequently in black hole physics. In addition to conventional Schrodinger methods, the quantization is performed using full and semiclassical polymerization. The various quantization schemes are in excellent agreement for the highly excited states but differ for the low-lying states, and the polymer spectrum is bounded below even when the Schrodinger spectrum is not. 2009-04-23T13:13:53Z 2009-04-23T13:13:53Z 2009-04-23T13:13:53Z G. Kunstatter, J. Louko and J. Ziprick, ``Polymer quantization, singularity resolution and the $1/r^2$ potential'', Phys. Rev. A 79, 032104 (2009). http://hdl.handle.net/1993/3150 en_US
collection NDLTD
language en_US
sources NDLTD
topic polymer quantization
black holes
singularity avoidance
numerical methods
spellingShingle polymer quantization
black holes
singularity avoidance
numerical methods
Ziprick, Jonathan
Singularity resolution and dynamical black holes
description We study the effects of loop quantum gravity motivated corrections in classical systems. Computational methods are used to simulate black hole formation from the gravitational collapse of a massless scalar field in Painleve-Gullstrand coordinates. Singularities present in the classical case are resolved by a radiation-like phase in the quantum collapse. The evaporation is not complete but leaves behind an outward moving shell of mass that disperses to infinity. We reproduce Choptuik scaling showing the usual behaviour for the curvature scaling, while observing previously unseen behaviour in the mass scaling. The quantum corrections are found to impose a lower limit on black hole mass and generate a new universal power law scaling relationship. In a parallel study, we quantize the Hamiltonian for a particle in the singular $1/r^2$ potential, a form that appears frequently in black hole physics. In addition to conventional Schrodinger methods, the quantization is performed using full and semiclassical polymerization. The various quantization schemes are in excellent agreement for the highly excited states but differ for the low-lying states, and the polymer spectrum is bounded below even when the Schrodinger spectrum is not.
author2 Kunstatter, Gabor (Physics and Astronomy)
author_facet Kunstatter, Gabor (Physics and Astronomy)
Ziprick, Jonathan
author Ziprick, Jonathan
author_sort Ziprick, Jonathan
title Singularity resolution and dynamical black holes
title_short Singularity resolution and dynamical black holes
title_full Singularity resolution and dynamical black holes
title_fullStr Singularity resolution and dynamical black holes
title_full_unstemmed Singularity resolution and dynamical black holes
title_sort singularity resolution and dynamical black holes
publishDate 2009
url http://hdl.handle.net/1993/3150
work_keys_str_mv AT ziprickjonathan singularityresolutionanddynamicalblackholes
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