VNS Tokamak OpenMC-Serpent Validation for Medical Isotope Studies

Fuente: arXiv
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Auteurs principaux: Ehrich, Christopher, Bachmann, Christian, Pereslavtsev, Pavel, Reiter, Christian
Format: Preprint
Publié: 2025
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author Ehrich, Christopher
Bachmann, Christian
Pereslavtsev, Pavel
Reiter, Christian
author_facet Ehrich, Christopher
Bachmann, Christian
Pereslavtsev, Pavel
Reiter, Christian
contents The Volumetric Neutron Source (VNS) tokamak is a proposed fusion reactor for testing and qualification of reactor components for future use in a fusion power facility, and has potential use for radioisotope production. The VNS geometry is modeled in the Serpent and OpenMC neutronics codes. Analog neutron-photon coupled simulations are carried out to compare the model's vacuum vessel and blanket components across codes. In the vacuum vessel, neutron and photon flux maps are calculated, while in the blanket region, neutron and photon spectra, (n,T), and (n,2n) reaction rates are calculated and compared between models. The detector response comparisons found the following: neutron flux and (n,T) reactions achieved excellent agreement, the (n,2n) detector response had good agreement, and photon flux had regional discrepancies depending on Serpent tracking used. Hybrid tracking lead to a relative difference of about 20% in the outboard side blanket, where as employment of delta tracking resulted in less than 1% relative difference. On an HPC cluster, Serpent was found to have shorter computation time than OpenMC in neutron photon coupled simulations using both hybrid tracking and delta tracking, but longer in neutron only simulations. An exemplary radioisotope production case is presented for the demonstration of additional VNS capabilities.
format Preprint
id arxiv_https___arxiv_org_abs_2512_04873
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle VNS Tokamak OpenMC-Serpent Validation for Medical Isotope Studies
Ehrich, Christopher
Bachmann, Christian
Pereslavtsev, Pavel
Reiter, Christian
Computational Physics
Computational Engineering, Finance, and Science
The Volumetric Neutron Source (VNS) tokamak is a proposed fusion reactor for testing and qualification of reactor components for future use in a fusion power facility, and has potential use for radioisotope production. The VNS geometry is modeled in the Serpent and OpenMC neutronics codes. Analog neutron-photon coupled simulations are carried out to compare the model's vacuum vessel and blanket components across codes. In the vacuum vessel, neutron and photon flux maps are calculated, while in the blanket region, neutron and photon spectra, (n,T), and (n,2n) reaction rates are calculated and compared between models. The detector response comparisons found the following: neutron flux and (n,T) reactions achieved excellent agreement, the (n,2n) detector response had good agreement, and photon flux had regional discrepancies depending on Serpent tracking used. Hybrid tracking lead to a relative difference of about 20% in the outboard side blanket, where as employment of delta tracking resulted in less than 1% relative difference. On an HPC cluster, Serpent was found to have shorter computation time than OpenMC in neutron photon coupled simulations using both hybrid tracking and delta tracking, but longer in neutron only simulations. An exemplary radioisotope production case is presented for the demonstration of additional VNS capabilities.
title VNS Tokamak OpenMC-Serpent Validation for Medical Isotope Studies
topic Computational Physics
Computational Engineering, Finance, and Science
url https://arxiv.org/abs/2512.04873