ENUBET中微子束的衰变隧道仪器
仪器与探测器
2020-06-24 v1 高能物理 - 实验
摘要
初始中微子通量的不确定性是精确确定绝对中微子截面的主要限制。ERC资助的ENUBET项目(2016-2021)正在研究一种基于窄带束的设施,以产生强度提高十倍的精度的电子中微子源。自2019年3月起,ENUBET也是CERN的中微子平台实验:NP06/ENUBET。该项目的一个关键要素是衰变隧道仪器,用于监测在K介子三体衰变()中与一起产生的大角度正电子,并将其与中性π介子和带电π介子区分开。需要在几米长度上实现高效和高纯度的e/π分离,以及恶劣束流环境所要求的快速响应和辐射硬度,这促使我们实施纵向分段铁/闪烁体量热器,其读出基于波长位移光纤和硅光电倍增管。通过CERN-PS T9束流线的多次测试束流活动,对量热器原型进行了广泛的实验计划,包括shashlik和侧向读出配置。后者中,光纤从闪烁体瓦片侧面收集光,允许将光传感器放置在远离量热器核心的位置,从而相对于shashlik设计减少可能的辐射损伤。本贡献将介绍所进行的原型制作活动的成果,以及对硅光电倍增管进行的辐照测试。迄今为止取得的成果确定了2021年将进行数据采集的3米长演示器的技术选择。
引用
@article{arxiv.2004.02532,
title = {Decay tunnel instrumentation for the ENUBET neutrino beam},
author = {F. Acerbi and A. Berra and M. Bonesini and A. Branca and C. Brizzolari and G. Brunetti and M. Calviani and S. Capelli and S. Carturan and M. G. Catanesi and S. Cecchini and N. Charitonidis and F. Cindolo and G. Collazuol and E. Conti and F. Dal Corso and C. Delogu and G. De Rosa and A. Falcone and A. Gola and C. Jollet and V. Kain and B. Klicek and Y. Kudenko and M. Laveder and A. Longhin and L. Ludovici and E. Lutsenko and L. Magaletti and G. Mandrioli and A. Margotti and V. Mascagna and N. Mauri and L. Meazza and A. Meregaglia and M. Mezzetto and M. Nessi and A. Paoloni and M. Pari and E. Parozzi and L. Pasqualini and G. Paternoster and L. Patrizii and M. Pozzato and M. Prest and F. Pupilli and E. Radicioni and C. Riccio and A. C. Ruggieri and C. Scian and G. Sirri and M. Stipcevic and M. Tenti and F. Terranova and M. Torti and E. Vallazza and F. Velotti and M. Vesco and L. Votano},
journal= {arXiv preprint arXiv:2004.02532},
year = {2020}
}
备注
Talk presented at the "15th Topical Seminar on Innovative Particle and Radiation Detectors (IPRD19)", 14-17 October 2019. Siena, Italy. 9 pages, 7 figures