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Studies of the FASER Calorimeter and Searches for New Physics with LHC Run 3 Data

Studies of the FASER Calorimeter and Searches for New Physics with LHC Run 3 Data
FASER 热量计的研究以及利用 LHC Run 3 数据寻找新物理
批准号:
2573521
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2021
资助国家:
英国
项目状态:
未结题
起止时间:
2021 至 --

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中文摘要
翻译
Faser是大型强子对撞机上的一项新实验,旨在探测粒子物理标准模型的几个扩展预测的轻和弱相互作用粒子[1]。它的目标是识别属于暗部分的新粒子,称为暗光子,这可能是在ATLAS相互作用点产生的长寿命粒子(LLP)[2]。这些暗光子被认为会衰变到e+e-(45%)、(45%)或(10%)。这种轻的、弱相互作用的粒子的衰变产物高度准直,处于非常前方的区域,只需要一个小探测器。Faser探测器位于TI12,这是一条未使用过的隧道,以前用于连接超级质子同步加速器(SPS)和LEP[2]。安装将在目前的长时间停机期间完成,为第三轮数据采集做好准备,第三轮计划于2022年进行。Faser探测器的主要部件是闪烁体、跟踪站、偶极磁铁和量热计[1]。在数据采集之前,该项目的最初重点是研究和模拟Faser的采样电磁量热仪(ECAL)[3]。这是建立在以前工作的基础上的,这些工作使用Geant4[4]中的例子建立了一个简单的模拟设置,并评估了角度倾斜和执行角度扫描的影响,以调查热量计间隙中的能量损失。还开展了旨在使用更复杂的设置实现快速模拟的工作[5]。ECAL的模拟是探索新物理的数据分析发展所必需的。目前正在开展全面模拟探测器的工作,这需要仔细评估材料和几何形状对ECAL中沉积能量的影响。随后将进行额外的工作,以实现快速模拟,以减少计算时间,并使未来的分析高效。一旦完成,分析数据所需的软件将被开发出来,并用于科学结果。初步研究证实了之前使用简单的Geant4模拟显示的结果,即沉积能量的比例和行为作为注入能量的函数。使用Faser软件框架Calypso[6]的进一步模拟研究正在进行中,以更精确地评估高动量粒子的能量依赖性。目标是用第一批数据验证电磁量热计模拟。最终目标是继续分析在Faser获得的数据,以寻找暗光子或其他长寿命粒子形式的新物理。在没有这样的发现的情况下,目标是在目前尚未开发的参数空间范围内设置世界上最好的约束。参考:[1]Faser Collaboration(2019)Faser的物理达到长寿命粒子,物理。10.1103/PhysRev.D 10.1103/PhysRevD.99.095011[2]Faser协作(2018年)Faser:大型强子对撞机的前向搜索实验,技术报告arxiv:1812.09139v1[3]Fabjan,C.W.,Gianotti,F.(2003年)粒子物理量热,CERN[4]Geant4量热实例:https://geant4-userdoc.web.cern.ch/geant4-userdoc/Doxygen/examples_doc/html/ExampleB4.html[5]Fellers,D.(2020年)Faser快速量热仪模拟,FASER脱机会议25/05/2020 https://indico.cern.ch/event/918531/[6]https://gitlab.cern.ch/dcasper/calypso/-/tree/master-ecal-2020Oct28
英文摘要
FASER is a new experiment at the LHC designed to detect light and weakly-interacting particles predicted by several extensions of the Standard Model of particle physics [1]. It aims to identify new particles belonging to a dark sector, called dark photons, which are possibly long-lived particles (LLPs) produced at the ATLAS interaction point [2]. These dark photons are thought to decay to e+e- (45%), (45%) or (10%). The decay products of such light, weakly-interacting particles are highly collimated and in the very forward region, requiring only a small detector. The FASER detector is located in TI12 - an unused tunnel previously used to connect the Super Proton Synchrotron (SPS) to LEP [2]. Installation will be completed during the current long shutdown ready for data acquisition during Run 3, which is scheduled for 2022. The main components of the FASER detector are the scintillators, the tracking stations, the dipole magnets, and the calorimeter [1]. The initial focus of this project, prior to data acquisition, is the study and simulation of FASER's sampling electromagnetic calorimeter (ECAL) [3]. This is building on previous work that used examples in Geant4 [4] to build a simple simulation setup and evaluated the impact of angular tilt and performing angular scans to investigate the loss of energy in the gap in the calorimeter. Work was also carried out which aimed to implement fast simulations using a more complex setup [5]. Simulation of the ECAL is required for the development of data analysis in the search for new physics. Current work is being performed towards the implementation of a full simulation of the detector, which requires careful evaluation of the impact of materials and geometry on the deposited energies in the ECAL. Additional work will subsequently be carried out to realise a fast simulation to reduce the computational times and make future analysis efficient. Once this is completed, the software needed to analyse the data will be developed and used for scientific results.Initial studies confirm the results previously shown using simple Geant4 simulations in terms of the fraction of deposited energy and behaviour as a function of injected energy. Further simulation studies using FASER's software framework, Calypso [6], are on-going to evaluate the energy dependence more precisely for high momentum particles. The goal is to validate the electromagnetic calorimeter simulation with first data. The ultimate aim is to go on to analyse data taken at FASER in the search for new physics in the form of dark photons or other long-lived particles. In the event that no such discoveries are made, the goal moves towards setting world-best constraints over a range of parameter space that is currently unexplored.References:[1] FASER Collaboration (2019) FASER's Physics Reach for Long-Lived Particles, Phys. Rev. D 10.1103/PhysRevD.99.095011[2] FASER Collaboration (2018) FASER: FORWARD SEARCH EXPERIMENT AT THE LHC, Technical Report arXiv:1812.09139v1[3] Fabjan, C. W., Gianotti, F. (2003) Calorimetry for Particle Physics, CERN[4] Geant4 Calorimetry Example: https://geant4-userdoc.web.cern.ch/geant4-userdoc/Doxygen/examples_doc/html/ExampleB4.html[5] Fellers, D. (2020) FASER Fast Calorimeter Simulation, FASER Offline Meeting 25/05/2020 https://indico.cern.ch/event/918531/ [6] https://gitlab.cern.ch/dcasper/calypso/-/tree/master-ecal-2020Oct28
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