论文标题

电子 - 哈德隆散射在LHC的实验

An Experiment for Electron-Hadron Scattering at the LHC

论文作者

André, K. D. J., Bella, L. Aperio, Armesto, N., Bogacz, S. A., Britzger, D., Brüning, O. S., D'Onofrio, M., Ferreiro, E. G., Fischer, O., Gwenlan, C., Holzer, B. J., Klein, M., Klein, U., Kocak, F., Kostka, P., Kumar, M., Mellado, B., Milhano, J. G., Newman, P. R., Piotrzkowski, K., Polini, A., Ruan, X., Russenschuk, S., Schwanenberger, C., Vilella-Figueras, E., Yamazaki, Y.

论文摘要

关于未来,发光的,能量边界电子 - hadron($ eh $)在LHC的散射实验的物理,设备和加速器设计的新考虑,在三十年代讨论了关键物理主题及其与Hadron-HADRON HL-LHC物理学计划的关系。这些物理主题对LHEC检测器的设计设定了需求,该主题描述了LHEC检测器的设计。提出了对加速器设计的优化,尤其是相互作用区域(IR)。最初的加速器注意事项表明,可以构建一个常见的IR,可以交替使用$ EH $和$ HH $碰撞,而其他实验将在任何一种情况下都保持在$ HH $上。绘制了LHEC检测器的前向后对称选项,该选项将允许扩展LHEC物理学计划,还包括强子 - 摩托马物理学的各个方面。证明了联合$ EH $和$ HH $物理实验的愿景为解决高能量重型离子物理学的基本问题开放,包括核的党结构和量子场理论中流体动力学的出现,而真正的TEV量表dis Physics则是前所未有的。

Novel considerations are presented on the physics, apparatus and accelerator designs for a future, luminous, energy frontier electron-hadron ($eh$) scattering experiment at the LHC in the thirties for which key physics topics and their relation to the hadron-hadron HL-LHC physics programme are discussed. Demands are derived set by these physics topics on the design of the LHeC detector, a corresponding update of which is described. Optimisations on the accelerator design, especially the interaction region (IR), are presented. Initial accelerator considerations indicate that a common IR is possible to be built which alternately could serve $eh$ and $hh$ collisions while other experiments would stay on $hh$ in either condition. A forward-backward symmetrised option of the LHeC detector is sketched which would permit extending the LHeC physics programme to also include aspects of hadron-hadron physics. The vision of a joint $eh$ and $hh$ physics experiment is shown to open new prospects for solving fundamental problems of high energy heavy-ion physics including the partonic structure of nuclei and the emergence of hydrodynamics in quantum field theory while the genuine TeV scale DIS physics is of unprecedented rank.

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