arXiv · 2201.04586
Multiparticle collision simulations of dense stellar systems and plasmas
Abstract
We summarize a series of numerical experiments of collisional dynamics in dense stellar systems such as globular clusters (GCs) and in weakly collisional plasmas using a novel simulation technique, the so-called Multi-particle collision (MPC) method, alternative to Fokker-Planck and Monte Carlo approaches. MPC is related to particle-mesh approaches for the computation of self consistent long-range fields, ensuring that simulation time scales with $N\log N$ in the number of particles, as opposed to $N^2$ for direct $N$-body. The collisional relaxation effects are modelled by computing particle interactions based on a collision operator approach that ensures rigorous conservation of energy and momenta and depends only on particles velocities and cell-based integrated quantities.
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P. Di Cintio, M. Pasquato, L. Barbieri, H. Bufferand, L. Casetti, G. Ciraolo, U. N. Di Carlo, P. Ghendrih, J. P. Gunn, S. Gupta, H. Kim, S. Lepri, R. Livi, A. Simon-Petit, A. A. Trani, S. -J. Yoon. 2022-01-12. Multiparticle collision simulations of dense stellar systems and plasmas. https://doi.org/10.1017/s174392132200117x
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