The University of Southampton
University of Southampton Institutional Repository

Building neutron stars with the MUSES calculation engine

Building neutron stars with the MUSES calculation engine
Building neutron stars with the MUSES calculation engine
Exploring the equation of state of dense matter is an essential part of interpreting the observable properties of neutron stars. We present here the first results for dense matter in the zero-temperature limit generated by the MUSES Calculation Engine, a composable workflow management system that orchestrates calculation and data processing stages comprising a collection of software modules designed within the MUSES framework. The modules presented in this work calculate equations of state using algorithms spanning three different theories/models: (1) Crust Density Functional Theory, valid starting at low densities, (2) Chiral Effective Field Theory, valid around saturation density, and (3) the Chiral Mean Field model, valid beyond saturation density. Lepton contributions are added through the Lepton module to each equation of state, ensuring charge neutrality and the possibility of $\beta$-equilibrium. Using the Synthesis module, we match the three equations of state using different thermodynamic variables and different methods. We then couple the complete equation of state to a novel full-general-relativity solver (QLIMR) module that calculates neutron star properties. We find that the matching performed using different thermodynamic variables affects differently the range obtained for neutron star masses and radii (although never beyond a few percent difference). We also investigate the universality of equation of state-independent relations for our matched stars. Finally, for the first time, we use the Flavor Equilibration module to estimate bulk viscosity and flavor relaxation charge fraction and rates (at low temperature) for Chiral Effective Field Theory and the Chiral Mean Field model.
nucl-th, astro-ph.HE, gr-qc, hep-ph, physics.comp-ph
2331-8422
arXiv
Pelicer, Mateus Reinke
c02f7f30-088a-40f8-8218-5247418fcccd
Cruz-Camacho, Nikolas
2f666dd1-b973-4256-82ae-a32564881e8f
Conde, Carlos
122a4d8f-1aa7-4b34-9655-6588e53736dd
Friedenberg, David
7c31d150-a2e2-473a-97c2-326e67838624
Roy, Satyajit
bcaaeeb6-77ae-4e68-a32a-44114447e720
Zhang, Ziyuan
a4f867a0-7552-465e-a7c5-c1d3fe54bd5f
Manning, T. Andrew
184536f3-4758-4582-ade0-aa5114e762e8
Alford, Mark G.
0b1d9db1-3560-44cf-8270-e5288a2036c9
Clevinger, Alexander
93a44c4e-9e24-4052-affa-619306c29543
Grefa, Joaquin
feffb808-cb13-483a-83ea-21902fc0b94d
Haas, Roland
999a7be0-3239-4a88-a258-9bb9083f2d40
Haber, Alexander
af4c2876-25b9-4639-be69-4b0ee41ecc29
Hippert, Mauricio
b8c37748-cb79-4c05-a2d1-c4cc6aa933dd
Holt, Jeremy W.
f672d8fa-ca22-4e24-8e5f-51db645071e1
Jahan, Johannes
8cc1ce38-be02-43b9-a707-dd2e5c1388e1
Kahangirwe, Micheal
9104b5e2-657e-4fd1-b745-d15f9420527a
Kumar, Rajesh
1aa0306e-e504-414d-afee-965436aace13
Peterson, Jeffrey
2fa6befa-f3c3-4558-a19d-5451a8a28c3d
Shah, Hitansh
736b89d7-1bc6-4114-9824-7d0d7d40e628
Steiner, Andrew W.
4b4aaabf-36de-46ee-8782-14b6fffc6f69
Tan, Hung
30e1148e-f807-48d4-bbe6-d95bbd18e983
Yang, Yumu
f166e2ac-01ce-4f93-816b-2125ac7e6d01
Vovchenko, Volodymyr
0587f497-c484-4287-a970-93e5f84532d0
Dexheimer, Veronica
ae89e113-6f96-4d87-a0e7-ab0c493b9d4b
Noronha, Jorge
cd9c7cbb-cea8-44b6-b21a-0d224d3edf02
Noronha-Hostler, Jaquelyn
a5bab987-013e-4b83-8f13-a9ef149db963
Ratti, Claudia
4283ec46-a463-4ea7-bc55-456300f04dba
Yunes, Nicolás
8723699a-d812-47ba-b51c-60fa5b9917d0
et al.
Pelicer, Mateus Reinke
c02f7f30-088a-40f8-8218-5247418fcccd
Cruz-Camacho, Nikolas
2f666dd1-b973-4256-82ae-a32564881e8f
Conde, Carlos
122a4d8f-1aa7-4b34-9655-6588e53736dd
Friedenberg, David
7c31d150-a2e2-473a-97c2-326e67838624
Roy, Satyajit
bcaaeeb6-77ae-4e68-a32a-44114447e720
Zhang, Ziyuan
a4f867a0-7552-465e-a7c5-c1d3fe54bd5f
Manning, T. Andrew
184536f3-4758-4582-ade0-aa5114e762e8
Alford, Mark G.
0b1d9db1-3560-44cf-8270-e5288a2036c9
Clevinger, Alexander
93a44c4e-9e24-4052-affa-619306c29543
Grefa, Joaquin
feffb808-cb13-483a-83ea-21902fc0b94d
Haas, Roland
999a7be0-3239-4a88-a258-9bb9083f2d40
Haber, Alexander
af4c2876-25b9-4639-be69-4b0ee41ecc29
Hippert, Mauricio
b8c37748-cb79-4c05-a2d1-c4cc6aa933dd
Holt, Jeremy W.
f672d8fa-ca22-4e24-8e5f-51db645071e1
Jahan, Johannes
8cc1ce38-be02-43b9-a707-dd2e5c1388e1
Kahangirwe, Micheal
9104b5e2-657e-4fd1-b745-d15f9420527a
Kumar, Rajesh
1aa0306e-e504-414d-afee-965436aace13
Peterson, Jeffrey
2fa6befa-f3c3-4558-a19d-5451a8a28c3d
Shah, Hitansh
736b89d7-1bc6-4114-9824-7d0d7d40e628
Steiner, Andrew W.
4b4aaabf-36de-46ee-8782-14b6fffc6f69
Tan, Hung
30e1148e-f807-48d4-bbe6-d95bbd18e983
Yang, Yumu
f166e2ac-01ce-4f93-816b-2125ac7e6d01
Vovchenko, Volodymyr
0587f497-c484-4287-a970-93e5f84532d0
Dexheimer, Veronica
ae89e113-6f96-4d87-a0e7-ab0c493b9d4b
Noronha, Jorge
cd9c7cbb-cea8-44b6-b21a-0d224d3edf02
Noronha-Hostler, Jaquelyn
a5bab987-013e-4b83-8f13-a9ef149db963
Ratti, Claudia
4283ec46-a463-4ea7-bc55-456300f04dba
Yunes, Nicolás
8723699a-d812-47ba-b51c-60fa5b9917d0

[Unknown type: UNSPECIFIED]

Record type: UNSPECIFIED

Abstract

Exploring the equation of state of dense matter is an essential part of interpreting the observable properties of neutron stars. We present here the first results for dense matter in the zero-temperature limit generated by the MUSES Calculation Engine, a composable workflow management system that orchestrates calculation and data processing stages comprising a collection of software modules designed within the MUSES framework. The modules presented in this work calculate equations of state using algorithms spanning three different theories/models: (1) Crust Density Functional Theory, valid starting at low densities, (2) Chiral Effective Field Theory, valid around saturation density, and (3) the Chiral Mean Field model, valid beyond saturation density. Lepton contributions are added through the Lepton module to each equation of state, ensuring charge neutrality and the possibility of $\beta$-equilibrium. Using the Synthesis module, we match the three equations of state using different thermodynamic variables and different methods. We then couple the complete equation of state to a novel full-general-relativity solver (QLIMR) module that calculates neutron star properties. We find that the matching performed using different thermodynamic variables affects differently the range obtained for neutron star masses and radii (although never beyond a few percent difference). We also investigate the universality of equation of state-independent relations for our matched stars. Finally, for the first time, we use the Flavor Equilibration module to estimate bulk viscosity and flavor relaxation charge fraction and rates (at low temperature) for Chiral Effective Field Theory and the Chiral Mean Field model.

Text
2502.07902v1 - Author's Original
Available under License Creative Commons Attribution.
Download (7MB)

More information

Accepted/In Press date: 11 February 2025
Published date: 11 February 2025
Additional Information: 38 pages, 17 figures, 6 tables
Keywords: nucl-th, astro-ph.HE, gr-qc, hep-ph, physics.comp-ph

Identifiers

Local EPrints ID: 502472
URI: http://eprints.soton.ac.uk/id/eprint/502472
ISSN: 2331-8422
PURE UUID: 163ea9eb-c452-4d78-b2aa-e01412795421
ORCID for Alexander Haber: ORCID iD orcid.org/0000-0002-5511-9565

Catalogue record

Date deposited: 26 Jun 2025 17:11
Last modified: 20 Sep 2025 02:28

Export record

Altmetrics

Contributors

Author: Mateus Reinke Pelicer
Author: Nikolas Cruz-Camacho
Author: Carlos Conde
Author: David Friedenberg
Author: Satyajit Roy
Author: Ziyuan Zhang
Author: T. Andrew Manning
Author: Mark G. Alford
Author: Alexander Clevinger
Author: Joaquin Grefa
Author: Roland Haas
Author: Alexander Haber ORCID iD
Author: Mauricio Hippert
Author: Jeremy W. Holt
Author: Johannes Jahan
Author: Micheal Kahangirwe
Author: Rajesh Kumar
Author: Jeffrey Peterson
Author: Hitansh Shah
Author: Andrew W. Steiner
Author: Hung Tan
Author: Yumu Yang
Author: Volodymyr Vovchenko
Author: Veronica Dexheimer
Author: Jorge Noronha
Author: Jaquelyn Noronha-Hostler
Author: Claudia Ratti
Author: Nicolás Yunes
Corporate Author: et al.

Download statistics

Downloads from ePrints over the past year. Other digital versions may also be available to download e.g. from the publisher's website.

View more statistics

Atom RSS 1.0 RSS 2.0

Contact ePrints Soton: eprints@soton.ac.uk

ePrints Soton supports OAI 2.0 with a base URL of http://eprints.soton.ac.uk/cgi/oai2

This repository has been built using EPrints software, developed at the University of Southampton, but available to everyone to use.

We use cookies to ensure that we give you the best experience on our website. If you continue without changing your settings, we will assume that you are happy to receive cookies on the University of Southampton website.

×