论文标题
核偏离超新星发动机中的核
Nuclei in Core-Collapse Supernovae Engine
论文作者
论文摘要
本文中,我们回顾了核心偏离超新星模拟的状态核方程(EOSS)%的核方程和核心偏曲超新星(CCSNE)及其在CCSN模拟中的作用。在CCSNE的中央引擎中,各种核,例如杜特龙,铁和极中子的核。在发生核心反弹之前,塌陷核的中心由富含中子的重核主导。它们的弱相互作用显着影响中微子发射和产生的原始恒星的大小。核心弹跳后,将重核溶解在膨胀的冲击波和新形成的中子星(NS)之间的质子,中子和光核。确定外壳的冲击波动力学和超新星爆炸的一些关键组成部分是核子和光核(如杜特龙)的中微子相互作用。 EOS提供了热力学特性与核成分之间的关系,并需要模拟这一爆炸。需要对均匀和非均匀核物质进行进一步研究,以提高对CCSNE机制和超新星核的特性的理解。通过微观计算,陆地实验和NS观测值的组合,对EOS的均匀核物质知识不断提高。关于各种核实验和当前理论,应在EOS的模型中改善对重核的有限温度对重核的影响,稀核物质中的光核以及向均匀的核物质的过渡。
Herein, we review the nuclear equations of state (EOSs) %for core-collapse supernova simulations and the constituent nuclei of core-collapse supernovae (CCSNe) and their roles in CCSN simulations. Various nuclei such as deuterons, iron, and extremely neutron-rich nuclei compose in the central engines of CCSNe. The center of a collapsing core is dominated by neutron-rich heavy nuclei prior to the occurrence of core bounce. Their weak interactions significantly affect the neutrino emission and the size of the produced proto-neutron star. After a core bounce, heavy nuclei are dissolved to protons, neutrons, and light nuclei between the expanding shock wave and the newly formed neutron star (NS). Some of the key components in determining the shock-wave dynamics and supernova explosion of outer envelopes are neutrino interactions of nucleons and light nuclei such as deuterons. An EOS provides the relations between thermodynamical properties and the nuclear composition, and is needed to simulate this explosion. Further investigations on uniform and non-uniform nuclear matter are needed to improve the understanding of the mechanism of CCSNe and the properties of supernova nuclei. The knowledge of the EOS for uniform nuclear matter is being continually improved by a combination of microscopic calculations, terrestrial experiments, and NS observations. With reference to various nuclear experiments and current theories, the finite temperature effects on heavy nuclei, formation of light nuclei in dilute nuclear matter, and transition to uniform nuclear matter should be improved in the model of the EOS for non-uniform nuclear matter.