论文标题

在中间能量的重离子碰撞中应用微观传输模型在状态的核方程中的应用

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

论文作者

Wang, Yongjia, Li, Qingfeng

论文摘要

核物质状态(EOS)的方程,即每个核子,温度,密度以及同胞不对称性的结合能之间的热力学关系一直是核物理学和天体物理学的热门话题。核EOS的知识对于研究核的特性,中子星的结构,重离子碰撞(HIC)以及中子恒星合并至关重要。 HIC提供了一种独特的方法来创建陆地实验室中高密度和同胞不对称的核物质,但是形成的密集核物质仅在很短的时间内存在,因此无法直接在实验中测量核EOS。实际上,通常将现象学潜力作为输入的运输模型可从与实验室中测得的观察物进行比较中推断出EOS。超前量子分子动力学(URQMD)模型已被广泛用于研究从费米能量(每核40 meV)到CERN大型强子对撞机能量(TEV)的HIC。随着核平均势势项的进一步改善,碰撞项和裂缝模型的集群识别项,可以复制FOPI协作的新测量的集体流量和核停止光电粒子的数据。在本文中,我们强调了我们最近对核EOS研究和核对称能量的结果。讨论了从运输模型和HIC实验中提取核EOS的新机会和挑战。

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.

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