论文标题

光核簇的第二个病毒系数及其在核碰撞中的化学冻结

Second virial coefficients of light nuclear clusters and their chemical freeze-out in nuclear collisions

论文作者

Bugaev, K. A., Vitiuk, O. V., Grinyuk, B. E., Sagun, V. V., Yakovenko, N. S., Ivanytskyi, O. I., Zinovjev, G. M., Blaschke, D. B., Nikonov, E. G., Bravina, L. V., Zabrodin, E. E., Kabana, S., Kuleshov, S. V., Farrar, G. R., Zherebtsova, E. S., Taranenko, A. V.

论文摘要

在这里,我们制定了一种新的策略,以分析重原子核在强产物共振气体模型的高能量原子核中产生的光(抗)核的化学冻结。它基于两种不同的,但互补的方法来建模光核和黑龙之间的硬核排斥。第一种方法是基于对宽敞的核簇和培养的等效硬核半径的近似处理,而第二种方法是使用对经典的排除光(反)核和黑龙的自洽处理的第二种方法来得出的。通过构造,在以乳腺为主导的耐药介质中,两种方法都应给出相同的结果。 Employing this strategy to the analysis of hadronic and light (anti)nuclei multiplicities measured by ALICE at $\sqrt{s_{NN}} =2.76$ TeV and by STAR at $\sqrt{s_{NN}} =200$ GeV, we got rid of the existing ambiguity in the description of light (anti)nuclei data and determined the chemical freeze-out parameters of核具有高精度和信心。在Alice Energy处,在温度下的Hadron $ T = 175.1^{+2.3} _ { - 3.9} $ MEV之前,将核冷冻,而在Star Energy处,在温度下有单个Hadrons和Nuclei在温度下$ T = 167.2 \ pm 3.9 $ 3.9 $ 3.9 $ 3.9 $ 3.9 $ 3.9 $ 3.9 $ 3.9 $ 3.9 $ 3.9 $。我们认为,发现的化学冻结核体积可以被视为在强调时产生细胞核的夸克 - 胶状袋的体积。

Here we develop a new strategy to analyze the chemical freeze-out of light (anti)nuclei produced in high energy collisions of heavy atomic nuclei within an advanced version of the hadron resonance gas model. It is based on two different, but complementary approaches to model the hard-core repulsion between the light nuclei and hadrons. The first approach is based on an approximate treatment of the equivalent hard-core radius of a roomy nuclear cluster and pions, while the second approach is rigorously derived here using a self-consistent treatment of classical excluded volumes of light (anti)nuclei and hadrons. By construction, in a hadronic medium dominated by pions, both approaches should give the same results. Employing this strategy to the analysis of hadronic and light (anti)nuclei multiplicities measured by ALICE at $\sqrt{s_{NN}} =2.76$ TeV and by STAR at $\sqrt{s_{NN}} =200$ GeV, we got rid of the existing ambiguity in the description of light (anti)nuclei data and determined the chemical freeze-out parameters of nuclei with high accuracy and confidence. At ALICE energy the nuclei are frozen prior to the hadrons at the temperature $T = 175.1^{+2.3}_{-3.9}$ MeV, while at STAR energy there is a single freeze-out of hadrons and nuclei at the temperature $T = 167.2 \pm 3.9$ MeV. We argue that the found chemical freeze-out volumes of nuclei can be considered as the volumes of quark-gluon bags that produce the nuclei at the moment of hadronization.

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