静态AMD中核液气相变的研究

Weiping Lin, P. Ren, Xing-Quan Liu, Hua Zheng, Meirong Huang, G. Qu, Wada Roy
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摘要

在静态反对称分子动力学(static AMD)模型的框架下,研究了核液-气在定容和定压条件下的相变。应用氘核四极动量波动温度计提取了Ar和Sn破碎体系的温度。对于密度ρ≤0.03 fm−3的体系,在定容条件下,热曲线呈平台结构。在所研究的所有压力下,在恒压下观察到热量曲线明显的后弯,这表明一阶相变。Ar和Sn体系热曲线的相似行为表明,在定容和定压条件下,体系尺寸效应不强。在静态AMD模拟中,在低激发能下,质量分布和光粒子多态均表现出强烈的α聚类。采用了多重导数(dM/dT)和Zmax归一化方差(NVZ)的液气相变测度。在恒容和恒压条件下,将实验所得的热曲线与静态AMD模拟所得的Sn的热曲线进行了比较。讨论了现有的实验结果和静态AMD仿真结果。实验温度测量和原始破碎源重建技术存在较大误差,这对确定相变是在定容条件下发生还是在定压条件下发生造成了很大的阻碍。这一研究表明,为了得出结论,除了热曲线外,还需要对液气相变进行不同的测量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of the nuclear liquid-gas phase transition in the static AMD
Nuclear liquid-gas phase transitions are investigated in the framework of static antisymmetrized molecular dynamics (static AMD) model under either a constant volume or a constant pressure. A deuteron quadrupole momentum fluctuation thermometer is applied to extract the temperature of fragmenting systems of Ar and Sn. A plateau structure of caloric curves is observed under a constant volume for those system with a density ρ ≤ 0.03 fm−3. A clear backbending in the caloric curves, which indicates a first order phase transition, is observed under a constant pressure with all pressures studied. The similar behavior of caloric curves of Ar and Sn systems indicates that there is no strong system size effect under a constant volume or a constant pressure. Both the mass distributions and the light particle multiplicities show a strong α clusterization at low excitation energies in the static AMD simulations. The liquid-gas phase transition measures of the multiplicity derivative (dM/dT) and the normalized variance of Zmax (NVZ) are applied. The experimental caloric curves are also compared with those of Sn of the static AMD simulations under both the constant volume and the constant pressure conditions. Discussions are presented with the available experimental results and those from the static AMD simulations. Large errors in the experimental temperature measurements and those in the reconstruction technique for the primary fragmenting source hinder to draw a conclusion whether the phase transition occurs under either a constant volume or a constant pressure. This study suggests that different measures for the liquid-gas phase transitions should be examined besides the caloric curves in order to draw a conclusion.
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