论文标题

重型离子碰撞的中型辐射能量损失模型的基准

Benchmark of medium-induced radiative energy loss model for heavy-ion collisions

论文作者

Karpenko, Iurii, Aichelin, Joerg, Gossiaux, Pol Bernard, Rohrmoser, Martin

论文摘要

我们报告了EPOS3-JET框架中低差异射流部分的中等内部辐射能量损失的基准计算。辐射能量损失是基于枪中弹丸和大量辐射的gluon的Gunion-Bertsch基质元件的扩展。最重要的是,连贯性(LPM效应)是通过以类似于JHEP 07(2011),118的方法的方式将岩层的构造阶段分配给辐射的振动,这是连贯性(LPM效应)。在用简化的辐射内核计算中,我们在上面的方法中重现了报道的辐射光谱。辐射光谱会产生LPM行为$ di/dΩ\proptoω^{ - 1/2} $,达到能量$ω=ω_c$,当时辐射胶的形成长度与介质的大小相当。超过$ω_c$,辐射光谱显示出特征性的抑制,因为在中间形成gluon的可能性较小。 接下来,我们将低空式喷气零部件的辐射能量损失嵌入了更现实的“ parton枪”计算中,其中,在高初始能量的硬质量流中$ e_ \ text {ini} = 100 $ gev和初始虚拟性$ q^2 = e^2 = e^2 $通过一盒QGP介质,具有恒定温度的QGP介质。在盒子演变的末尾,使用毕木蛋白8对part量进行了强调,并用快速夹软件包重建喷气机。我们发现,在这种情况下,完整的喷气能量损失接近了爱丽丝合作报告的棒球价值。但是,该计算使用耦合常数$α_s$的值稍大,以弥补低空射流部分缺失的碰撞能量损失。

We report on a benchmark calculation of the in-medium radiative energy loss of low-virtuality jet partons within the EPOS3-Jet framework. The radiative energy loss is based on an extension of the Gunion-Bertsch matrix element for a massive projectile and a massive radiated gluon. On top of that, the coherence (LPM effect) is implemented by assigning a formation phase to the trial radiated gluons in a fashion similar to the approach in JHEP 07 (2011), 118, by Zapp, Stachel and Wiedemann. In a calculation with a simplified radiation kernel, we reproduce the radiation spectrum reported in the approach above. The radiation spectrum produces the LPM behaviour $dI/dω\proptoω^{-1/2}$ up to an energy $ω=ω_c$, when the formation length of radiated gluons becomes comparable to the size of the medium. Beyond $ω_c$, the radiation spectrum shows a characteristic suppression due to a smaller probability for a gluon to be formed in-medium. Next, we embed the radiative energy loss of low-virtuality jet partons into a more realistic "parton gun" calculation, where a stream of hard partons at high initial energy $E_\text{ini}=100$ GeV and initial virtuality $Q^2=E^2$ passes through a box of QGP medium with a constant temperature. At the end of the box evolution, the partons are hadronized using Pythia 8, and the jets are reconstructed with the FASTJET package. We find that the full jet energy loss in such scenario approaches a ballpark value reported by the ALICE collaboration. However, the calculation uses a somewhat larger value of the coupling constant $α_s$ to compensate for the missing collisional energy loss of the low-virtuality jet partons.

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