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Main Authors: Endeve, Eirik, Mewes, Vassilios, Harris, J. Austin, Laiu, M. Paul, Chu, Ran, Fromm, Steven A., Mezzacappa, Anthony, Messer, O. E. Bronson, Hix, W. Raphael, Bruenn, Stephen W., Lentz, Eric J., Weide, Klaus, Cardall, Christian Y., Almgren, Ann S., Dubey, Anshu, Couch, Sean M., Moesta, Philipp, Willcox, Donald E.
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2601.00976
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author Endeve, Eirik
Mewes, Vassilios
Harris, J. Austin
Laiu, M. Paul
Chu, Ran
Fromm, Steven A.
Mezzacappa, Anthony
Messer, O. E. Bronson
Hix, W. Raphael
Bruenn, Stephen W.
Lentz, Eric J.
Weide, Klaus
Cardall, Christian Y.
Almgren, Ann S.
Dubey, Anshu
Couch, Sean M.
Moesta, Philipp
Willcox, Donald E.
author_facet Endeve, Eirik
Mewes, Vassilios
Harris, J. Austin
Laiu, M. Paul
Chu, Ran
Fromm, Steven A.
Mezzacappa, Anthony
Messer, O. E. Bronson
Hix, W. Raphael
Bruenn, Stephen W.
Lentz, Eric J.
Weide, Klaus
Cardall, Christian Y.
Almgren, Ann S.
Dubey, Anshu
Couch, Sean M.
Moesta, Philipp
Willcox, Donald E.
contents We present neutrino-transport algorithms implemented in the toolkit for high-order neutrino-radiation hydrodynamics (thornado) and their coupling to self-gravitating hydrodynamics within the adaptive mesh refinement (AMR)-based multiphysics simulation framework Flash-X. thornado, developed primarily for simulations of core-collapse supernovae (CCSNe), employs a spectral, six-species two-moment formulation with algebraic closure and special-relativistic observer corrections accurate to $O(v/c)$, and uses discontinuous Galerkin (DG) methods for phase-space discretization combined with implicit-explicit time stepping. A key development is a nonlinear neutrino-matter coupling algorithm based on nested fixed-point iteration with Anderson acceleration, enabling fully implicit treatment of collisional processes, including energy-coupling interactions such as neutrino-electron scattering and pair production. Coupling to finite-volume (FV) hydrodynamics is achieved with a hybrid DG-FV representation of the fluid variables and operator-split evolution in Flash-X. The implementation is verified using basic transport tests with idealized opacities and relaxation and deleptonization problems with tabulated microphysics. Spherically symmetric CCSN simulations demonstrate accuracy and robustness of the coupled scheme, including close agreement with the CCSN simulation code Chimera. An axisymmetric CCSN simulation further demonstrates the viability of DG-based neutrino transport for multidimensional supernova modeling within Flash-X. thornado's neutrino-transport solver is GPU-enabled using OpenMP offloading or OpenACC, and all CCSN applications included in this work use the GPU implementation. Together, these results establish a foundation for future enhancements in physics fidelity, numerical algorithms, and computational performance, for increasingly realistic large-scale CCSN simulations.
format Preprint
id arxiv_https___arxiv_org_abs_2601_00976
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle thornado+Flash-X: A Hybrid DG-IMEX and Finite-Volume Framework for Neutrino-Radiation Hydrodynamics in Core-Collapse Supernovae
Endeve, Eirik
Mewes, Vassilios
Harris, J. Austin
Laiu, M. Paul
Chu, Ran
Fromm, Steven A.
Mezzacappa, Anthony
Messer, O. E. Bronson
Hix, W. Raphael
Bruenn, Stephen W.
Lentz, Eric J.
Weide, Klaus
Cardall, Christian Y.
Almgren, Ann S.
Dubey, Anshu
Couch, Sean M.
Moesta, Philipp
Willcox, Donald E.
Instrumentation and Methods for Astrophysics
Computational Physics
We present neutrino-transport algorithms implemented in the toolkit for high-order neutrino-radiation hydrodynamics (thornado) and their coupling to self-gravitating hydrodynamics within the adaptive mesh refinement (AMR)-based multiphysics simulation framework Flash-X. thornado, developed primarily for simulations of core-collapse supernovae (CCSNe), employs a spectral, six-species two-moment formulation with algebraic closure and special-relativistic observer corrections accurate to $O(v/c)$, and uses discontinuous Galerkin (DG) methods for phase-space discretization combined with implicit-explicit time stepping. A key development is a nonlinear neutrino-matter coupling algorithm based on nested fixed-point iteration with Anderson acceleration, enabling fully implicit treatment of collisional processes, including energy-coupling interactions such as neutrino-electron scattering and pair production. Coupling to finite-volume (FV) hydrodynamics is achieved with a hybrid DG-FV representation of the fluid variables and operator-split evolution in Flash-X. The implementation is verified using basic transport tests with idealized opacities and relaxation and deleptonization problems with tabulated microphysics. Spherically symmetric CCSN simulations demonstrate accuracy and robustness of the coupled scheme, including close agreement with the CCSN simulation code Chimera. An axisymmetric CCSN simulation further demonstrates the viability of DG-based neutrino transport for multidimensional supernova modeling within Flash-X. thornado's neutrino-transport solver is GPU-enabled using OpenMP offloading or OpenACC, and all CCSN applications included in this work use the GPU implementation. Together, these results establish a foundation for future enhancements in physics fidelity, numerical algorithms, and computational performance, for increasingly realistic large-scale CCSN simulations.
title thornado+Flash-X: A Hybrid DG-IMEX and Finite-Volume Framework for Neutrino-Radiation Hydrodynamics in Core-Collapse Supernovae
topic Instrumentation and Methods for Astrophysics
Computational Physics
url https://arxiv.org/abs/2601.00976