论文标题
SN+SN系统产生乳头的对称能量调查
Symmetry energy investigation with pion production from Sn+Sn systems
论文作者
论文摘要
在过去的二十年中,预计在重离子碰撞的高密度区域中产生的pions被预计在高密度下对状态核方程的对称能量术语是敏感的,这是我们对中子星的理解的关键。 In a new experiment designed to study the symmetry energy, the multiplicities of negatively and positively charged pions have been measured with high accuracy for central $^{132}$Sn+$^{124}$Sn, $^{112}$Sn+$^{124}$Sn, and $^{108}$Sn+$^{112}$Sn collisions at $ e/a = 270〜 \ mathrm {mev} $带有s $π$ rit时间投影室。虽然单个Pion多重性的不确定性被测量为4 \%,但带电的Pion多重性比的不确定性测量为2 \%。我们将这些数据与来自七个主要传输模型的预测进行了比较。这些计算在质量上重现了乘数的依赖性及其对碰撞系统中质子数量的比率。但是,来自不同代码的传输模型的预测太大,无法从数据中提取对称能量的可靠约束。这一发现可能解释了先前关于从AU+AU系统中PION数据获得的对称能量约束的矛盾结论。这些新结果要求更好地理解运输代码之间的差异,以及对对称能量的密度依赖性更敏感的新可观察物。
In the past two decades, pions created in the high density regions of heavy ion collisions have been predicted to be sensitive at high densities to the symmetry energy term in the nuclear equation of state, a property that is key to our understanding of neutron stars. In a new experiment designed to study the symmetry energy, the multiplicities of negatively and positively charged pions have been measured with high accuracy for central $^{132}$Sn+$^{124}$Sn, $^{112}$Sn+$^{124}$Sn, and $^{108}$Sn+$^{112}$Sn collisions at $E/A=270~\mathrm{MeV}$ with the S$π$RIT Time Projection Chamber. While the uncertainties of individual pion multiplicities are measured to 4\%, those of the charged pion multiplicity ratios are measured to 2\%. We compare these data to predictions from seven major transport models. The calculations reproduce qualitatively the dependence of the multiplicities and their ratios on the total neutron to proton number in the colliding systems. However, the predictions of the transport models from different codes differ too much to allow extraction of reliable constraints on the symmetry energy from the data. This finding may explain previous contradictory conclusions on symmetry energy constraints obtained from pion data in Au+Au system. These new results call for better understanding of the differences among transport codes, and new observables that are more sensitive to the density dependence of the symmetry energy.