A Semi-Analytic dynamical friction model that reproduces core stalling
James A. Petts, Alessia Gualandris, Justin I. Read

TL;DR
This paper introduces a semi-analytic dynamical friction model with radially varying impact parameters that accurately reproduces core stalling observed in N-body simulations, providing new physical insights into the phenomenon.
Contribution
The model incorporates physically motivated impact parameters and successfully matches simulations, including the core-stalling effect, without fine-tuning, and is efficiently implemented in NBODY6.
Findings
Accurately reproduces core stalling in shallow density cores.
Provides physical insight into the conditions causing core stalling.
Efficiently implemented as an analytic correction in N-body simulations.
Abstract
We present a new semi-analytic model for dynamical friction based on Chandrasekhar's formalism. The key novelty is the introduction of physically motivated, radially varying, maximum and minimum impact parameters. With these, our model gives an excellent match to full N-body simulations for isotropic background density distributions, both cuspy and shallow, without any fine-tuning of the model parameters. In particular, we are able to reproduce the dramatic core-stalling effect that occurs in shallow/constant density cores, for the first time. This gives us new physical insight into the core-stalling phenomenon. We show that core stalling occurs in the limit in which the product of the Coulomb logarithm and the local fraction of stars with velocity lower than the infalling body tends to zero. For cuspy backgrounds, this occurs when the infalling mass approaches the enclosed background…
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