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Power-Law Wrinkling Turbulence-Flame Interaction Model for Astrophysical Flames

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arxiv 1402.4527 v1 pith:ADVRRZAQ submitted 2014-02-18 astro-ph.SR

classification astro-ph.SR
keywords turbulentmodelastrophysicalflameflamesvelocityconsiderextend
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We extend a model for turbulence-flame interactions (TFI) to consider astrophysical flames with a particular focus on combustion in type Ia supernovae. The inertial range of the turbulent cascade is nearly always under-resolved in simulations of astrophysical flows, requiring the use of a model in order to quantify the effects of subgrid-scale wrinkling of the flame surface. We provide implementation details to extend a well-tested TFI model to low-Prandtl number flames for use in the compressible hydrodynamics code FLASH. A local, instantaneous measure of the turbulent velocity is calibrated for FLASH and verification tests are performed. Particular care is taken to consider the relation between the subgrid rms turbulent velocity and the turbulent flame speed, especially for high-intensity turbulence where the turbulent flame speed is not expected to scale with the turbulent velocity. Finally, we explore the impact of different TFI models in full-star, three-dimensional simulations of type Ia supernovae.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 20 citations worldwide. Full citation record

  1. Observational signatures of thermonuclear electron-capture supernovae -- Ne II line strengthening and color evolution as traces of the explosion mechanism

    astro-ph.SR 2026-06 unverdicted novelty 7.0 of 10

    Synthetic observables from tECSN models show slower early red-color decline due to higher Ti/Cr and a late-time 12.8 μm Ne II line that strengthens over time, unlike comparable CO deflagration models.

  2. Modeling subgrid combustion processes in simulations of thermonuclear supernovae

    astro-ph.SR 2019-08 unverdicted novelty 1.0 of 10

    This is a review of subgrid combustion modeling for type Ia supernova simulations, covering deflagration-detonation transition and double detonation scenarios, with no new quantitative results.

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