Application of microscopic transport model in the study of nuclear equation of state from heavy ion collisions at intermediate energies

被引:0
作者
Yong-Jia Wang
Qing-Feng Li
机构
[1] Huzhou University,School of Science
[2] Chinese Academy of Sciences,Institute of Modern Physics
来源
Frontiers of Physics | 2020年 / 15卷
关键词
nuclear equation of state; symmetry energy; heavy ion collision; transport model;
D O I
暂无
中图分类号
学科分类号
摘要
The equation of state (EOS) of nuclear matter, i.e., the thermodynamic relationship between the binding energy per nucleon, temperature, density, as well as the isospin asymmetry, has been a hot topic in nuclear physics and astrophysics for a long time. The knowledge of the nuclear EOS is essential for studying the properties of nuclei, the structure of neutron stars, the dynamics of heavy ion collision (HIC), as well as neutron star mergers. HIC offers a unique way to create nuclear matter with high density and isospin asymmetry in terrestrial laboratory, but the formed dense nuclear matter exists only for a very short period, one cannot measure the nuclear EOS directly in experiments. Practically, transport models which often incorporate phenomenological potentials as an input are utilized to deduce the EOS from the comparison with the observables measured in laboratory. The ultrarelativistic quantum molecular dynamics (UrQMD) model has been widely employed for investigating HIC from the Fermi energy (40 MeV per nucleon) up to the CERN Large Hadron Collider energies (TeV). With further improvement in the nuclear mean-field potential term, the collision term, and the cluster recognition term of the UrQMD model, the newly measured collective flow and nuclear stopping data of light charged particles by the FOPI Collaboration can be reproduced. In this article we highlight our recent results on the studies of the nuclear EOS and the nuclear symmetry energy with the UrQMD model. New opportunities and challenges in the extraction of the nuclear EOS from transport models and HIC experiments are discussed.
引用
收藏
相关论文
共 633 条
[1]  
Li B A(2008)Recent progress and new challenges in isospin physics with heavy-ion reactions Phys. Rep. 464 113-undefined
[2]  
Chen L W(2012)Constraints on the symmetry energy and neutron skins from experiments and theory Phys. Rev. C 86 015803-undefined
[3]  
Ko C M(2016)The nuclear symmetry energy Prog. Part. Nucl. Phys. 91 203-undefined
[4]  
Tsang M B(2017)Equations of state for supernovae and compact stars Rev. Mod. Phys. 89 015007-undefined
[5]  
Stone J R(2018)Nucleon effective masses in neutron-rich matter Prog. Part. Nucl. Rhys 99 29-undefined
[6]  
Camera F(2018)Nuclear equation of state from ground and collective excited state properties of nuclei Prog. Part. Nucl. Phys. 101 96-undefined
[7]  
Danielewicz P(2019)The symmetry energy of the nuclear EoS: A study of collective motion and low-energy reaction dynamics in semiclassical approaches Front. Phys. 7 53-undefined
[8]  
Gandolfi S(2014)The many facets of the (non-relativistic) nuclear equation of state Prog. Part. Nucl. Phys. 76 116-undefined
[9]  
Hebeler K(2018)Shannon information entropy in heavy-ion collisions Prog. Part. Nucl. Phys. 99 120-undefined
[10]  
Horowitz C J(2019)Dynamics of clusters and fragments in heavy-ion collisions Prog. Part. Nucl. Phys. 105 139-undefined