Data Entry: Please note that the research database will be replaced by UNIverse by the end of October 2023. Please enter your data into the system https://universe-intern.unibas.ch. Thanks

Login for users with Unibas email account...

Login for registered users without Unibas email account...

 
Constraining supernova equations of state with equilibrium constants from heavy-ion collisions
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 3400338
Author(s) Hempel, Matthias; Hagel, Kris; Natowitz, Joseph; Roepke, Gerd; Typel, Stefan
Author(s) at UniBasel Hempel, Matthias
Year 2015
Title Constraining supernova equations of state with equilibrium constants from heavy-ion collisions
Journal Physical Review C (PRC)
Volume 91
Number 4
Pages / Article-Number 045805
Keywords Equations of state of nuclear matter, Nuclear physics aspects of novae supernovae and other explosive environments, Forces in hadronic systems and effective interactions, Multifragment emission and correlations
Abstract Cluster formation is a fundamental aspect of the equation of state (EOS) of warm and dense nuclear matter such as can be found in supernovae (SNe). Similar matter can be studied in heavy-ion collisions (HICs). We use the experimental data of Qin et al. [Phys. Rev. Lett. 108, 172701 (2012)] to test calculations of cluster formation and the role of in-medium modifications of cluster properties in SN EOSs. For the comparison between theory and experiment we use chemical equilibrium constants as the main observables. This reduces some of the systematic uncertainties and allows deviations from ideal gas behavior to be identified clearly. In the analysis, we carefully account for the differences between matter in SNe and HICs. We find that, at the lowest densities, the experiment and all theoretical models are consistent with the ideal gas behavior. At higher densities ideal behavior is clearly ruled out and interaction effects have to be considered. The contributions of continuum correlations are of relevance in the virial expansion and remain a difficult problem to solve at higher densities. We conclude that at the densities and temperatures discussed mean-field interactions of nucleons, inclusion of all relevant light clusters, and a suppression mechanism of clusters at high densities have to be incorporated in the SN EOS.
Publisher American Physical Society
ISSN/ISBN 2469-9993
edoc-URL http://edoc.unibas.ch/41647/
Full Text on edoc No
Digital Object Identifier DOI 10.1103/PhysRevC.91.045805
ISI-Number WOS:000353682800013
Document type (ISI) Article
 
   

MCSS v5.8 PRO. 0.353 sec, queries - 0.000 sec ©Universität Basel  |  Impressum   |    
13/05/2024