论文标题

电子山利亚山脉的核阴影

Nuclear shadowing in DIS at electron-ion colliders

论文作者

Krelina, Michal, Nemchik, Jan

论文摘要

我们介绍了对小bjorken的深弹性散射中核阴影的预测的修订,$ x_ {bj} $对应于电子离子界面的未来实验可访问的运动区域。基于严格的绿色功能技术,在颜色偶极式形式主义中处理核阴影。这允许融合自然的颜色透明度和连贯性长度效应,这些效应并非一致且正确地包括在当前计算中。对于最低的$ | q \ bar q \ rangle $ fock组件,我们的计算基于绿色函数的进化方程的精确数值解决方案。在这里,使用核密度函数的现实形式以及偶极子横截面的各种现象学模型对阴影的大小进行了测试。 $ q \ bar q $光子波动的相应变化对于$ x_ {bj} \ gtrsim 10^{ - 4} $很重要,与其他大多数型号相反,这些模型通常仅使用eikonal近似值,而“ frozen frozen”横向尺寸。在$ x_ {bj} \ Lessim 0.01 $中,我们在同一形式主义中计算出来,也对含有胶子的光子的较高fock组件进行阴影校正。比较了Gluon阴影校正的相应幅度采用不同的现象学偶极模型。我们的结果通过E665和NMC协作的可用数据进行了测试。最后,预测各种运动区域的核阴影幅度应由电子离子山脉的未来实验扫描。

We present a revision of predictions for nuclear shadowing in deep-inelastic scattering at small Bjorken $x_{Bj}$ corresponding to kinematic regions accessible by the future experiments at electron-ion colliders. The nuclear shadowing is treated within the color dipole formalism based on the rigorous Green function technique. This allows incorporating naturally color transparency and coherence length effects, which are not consistently and properly included in present calculations. For the lowest $|q\bar q\rangle$ Fock component of the photon, our calculations are based on an exact numerical solution of the evolution equation for the Green function. Here the magnitude of shadowing is tested using a realistic form for the nuclear density function, as well as various phenomenological models for the dipole cross section. The corresponding variation of the transverse size of the $q\bar q$ photon fluctuations is important for $x_{Bj}\gtrsim 10^{-4}$, on the contrary with the most of other models, which use frequently only the eikonal approximation with the "frozen" transverse size. At $x_{Bj}\lesssim 0.01$ we calculate within the same formalism also a shadowing correction for the higher Fock component of the photon containing gluons. The corresponding magnitudes of gluon shadowing correction are compared adopting different phenomenological dipole models. Our results are tested by available data from the E665 and NMC collaborations. Finally, the magnitude of nuclear shadowing is predicted for various kinematic regions that should be scanned by the future experiments at electron-ion colliders.

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