Numerical analysis of fluid estimation for source terms in neutral particles simulation

Fuente: arXiv
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Main Authors: Tang, Zhirui, Løvbak, Emil, Koellermeier, Julian, Samaey, Giovanni
Format: Preprint
Published: 2025
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author Tang, Zhirui
Løvbak, Emil
Koellermeier, Julian
Samaey, Giovanni
author_facet Tang, Zhirui
Løvbak, Emil
Koellermeier, Julian
Samaey, Giovanni
contents In plasma edge simulations, kinetic Monte Carlo (MC) is often used to simulate neutral particles and estimate source terms. For large-sized reactors, like ITER and DEMO, high particle collision rates lead to a substantial computational cost for such schemes. To address this challenge, an asymptotic-preserving kinetic-diffusion Monte Carlo (KDMC) simulation method and a corresponding fluid estimation technique have been proposed in the literature. In this work, we perform numerical analysis on the convergence of KDMC with the fluid estimation. To do so, we compare the accuracy of the analyzed algorithm with the accuracy of an approximate fluid method using the kinetic MC method as a reference. In a one-dimensional test case, KDMC with the fluid estimation achieves at least one order of magnitude lower errors than the fluid method for both high- and low-collisional regimes. Moreover, KDMC with the fluid estimation outperforms the kinetic MC method with a clear speed-up. Overall, our analysis confirms the effectiveness of the discussed algorithm.
format Preprint
id arxiv_https___arxiv_org_abs_2509_11883
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Numerical analysis of fluid estimation for source terms in neutral particles simulation
Tang, Zhirui
Løvbak, Emil
Koellermeier, Julian
Samaey, Giovanni
Computational Engineering, Finance, and Science
Numerical Analysis
In plasma edge simulations, kinetic Monte Carlo (MC) is often used to simulate neutral particles and estimate source terms. For large-sized reactors, like ITER and DEMO, high particle collision rates lead to a substantial computational cost for such schemes. To address this challenge, an asymptotic-preserving kinetic-diffusion Monte Carlo (KDMC) simulation method and a corresponding fluid estimation technique have been proposed in the literature. In this work, we perform numerical analysis on the convergence of KDMC with the fluid estimation. To do so, we compare the accuracy of the analyzed algorithm with the accuracy of an approximate fluid method using the kinetic MC method as a reference. In a one-dimensional test case, KDMC with the fluid estimation achieves at least one order of magnitude lower errors than the fluid method for both high- and low-collisional regimes. Moreover, KDMC with the fluid estimation outperforms the kinetic MC method with a clear speed-up. Overall, our analysis confirms the effectiveness of the discussed algorithm.
title Numerical analysis of fluid estimation for source terms in neutral particles simulation
topic Computational Engineering, Finance, and Science
Numerical Analysis
url https://arxiv.org/abs/2509.11883