most citedGeneric Gravitational Wave Signals from the Collapse of Rotating Stellar Cores

136 citations · 136 across the 2 of their papers we have counts for

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astro-ph2008261 cited

The gravitational wave burst signal from core collapse of rotating stars

Harald Dimmelmeier, Christian D. Ott, Andreas Marek +1

We present results from detailed general relativistic simulations of stellar core collapse to a proto-neutron star, using two different microphysical nonzero-temperature nuclear eq…

astro-ph20087 cited

Exploring the relativistic regime with Newtonian hydrodynamics: II. An effective gravitational potential for rapid rotation

Bernhard Mueller, Harald Dimmelmeier, Ewald Mueller

We present the generalization of a recently introduced modified gravitational potential for self-gravitating fluids. The use of this potential allows for an accurate approximation…

astro-ph2007

Generic Gravitational Wave Signals from the Collapse of Rotating Stellar Cores: A Detailed Analysis

Harald Dimmelmeier, Christian D. Ott, Hans-Thomas Janka +2

We present detailed results from performing general relativistic (GR) simulations of stellar core collapse to a proto-neutron star, using a microphysical equation of state (EoS) as…

astro-ph200771 cited

General relativistic simulations of pasive-magneto-rotational core collapse with microphysics

P. Cerdá-Durán, J. A. Font, H. Dimmelmeier

This paper presents results from axisymmetric simulations of magneto-rotational stellar core collapse to neutron stars in general relativity using the passive field approximation f…

astro-ph2007136 cited

Generic Gravitational Wave Signals from the Collapse of Rotating Stellar Cores

Harald Dimmelmeier, Christian D. Ott, Hans-Thomas Janka +2

We perform general relativistic simulations of stellar core collapse to a proto-neutron star, using a microphysical equation of state as well as an approximate description of delep…

astro-ph200682 cited

Rotating Collapse of Stellar Iron Cores in General Relativity

Christian D. Ott, Harald Dimmelmeier, Andreas Marek +4

We present results from the first 2+1 and 3+1 simulations of the collapse of rotating stellar iron cores in general relativity employing a finite-temperature equation of state and…