We present a simple and efficient method to set up spherical structure models for N-body simulations with a multimass technique. This technique reduces by a substantial factor the computer run time needed in order to resolve a given scale as compared to single-mass models. It therefore allows to resolve smaller scales in N-body simulations for a given computer run time. Here, we present several models with an effective resolution of up to 1.68 × 109 particles within their virial radius which are stable over cosmologically relevant time-scales. As an application, we confirm the theoretical prediction by Dehnen that in mergers of collisionless structures like dark matter haloes always the cusp of the steepest progenitor is preserved. We model each merger progenitor with an effective number of particles of approximately 108 particles. We also find that in a core-core merger the central density approximately doubles whereas in the cusp-cusp case the central density only increases by approximately 50 per cent. This may suggest that the central regions of flat structures are better protected and get less energy input through the merger process.

Zemp, M., Moore, B., Stadel, J., Carollo, C., Madau, P. (2008). Multimass spherical structure models for N-body simulations. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 386(3), 1543-1556 [10.1111/j.1365-2966.2008.13126.x].

Multimass spherical structure models for N-body simulations

Madau P.
2008

Abstract

We present a simple and efficient method to set up spherical structure models for N-body simulations with a multimass technique. This technique reduces by a substantial factor the computer run time needed in order to resolve a given scale as compared to single-mass models. It therefore allows to resolve smaller scales in N-body simulations for a given computer run time. Here, we present several models with an effective resolution of up to 1.68 × 109 particles within their virial radius which are stable over cosmologically relevant time-scales. As an application, we confirm the theoretical prediction by Dehnen that in mergers of collisionless structures like dark matter haloes always the cusp of the steepest progenitor is preserved. We model each merger progenitor with an effective number of particles of approximately 108 particles. We also find that in a core-core merger the central density approximately doubles whereas in the cusp-cusp case the central density only increases by approximately 50 per cent. This may suggest that the central regions of flat structures are better protected and get less energy input through the merger process.
Articolo in rivista - Articolo scientifico
Methods: N-body simulations; Methods: numerical;
English
2008
386
3
1543
1556
none
Zemp, M., Moore, B., Stadel, J., Carollo, C., Madau, P. (2008). Multimass spherical structure models for N-body simulations. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 386(3), 1543-1556 [10.1111/j.1365-2966.2008.13126.x].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/453166
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