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Ultra-fast hadronic calorimetry

机译:超快强子量热法

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Calorimeters for particle physics experiments with integration time of a few ns will substantially improve the capability of the experiment to resolve event pileup and to reject backgrounds. In this paper the time development of hadronic showers induced by 30 and 60 GeV positive pions and 120 GeV protons is studied using Monte Carlo simulation and beam tests with a prototype of a sampling steel-scintillator hadronic calorimeter. In the beam tests, scintillator signals induced by hadronic showers in steel are sampled with a period of 0.2 ns and precisely time-aligned in order to study the average signal waveform at various locations with respect to the beam particle impact. Simulations of the same setup are performed using the MARS15 code. Both simulation and test beam results suggest that energy deposition in steel calorimeters develop over a time shorter than 2 ns providing opportunity for ultra-fast calorimetry. Simulation results for an "ideal" calorimeter consisting exclusively of bulk tungsten or copper are presented to establish the lower limit of the signal integration window.
机译:积分时间为几ns的粒子物理实验量热仪将大大提高实验解决事件堆积和拒绝背景的能力。本文使用蒙特卡罗模拟和束测试,并使用样钢-闪烁器强子量热仪的原型,研究了由30和60 GeV正离子和120 GeV质子引起的强子骤雨的时间发展。在射束测试中,以0.2 ns的周期对钢中强铁喷淋引起的闪烁体信号进行采样,并进行精确的时间对准,以研究相对于射束粒子撞击在各个位置的平均信号波形。使用MARS15代码执行相同设置的仿真。模拟和测试光束结果均表明,钢量热仪中的能量沉积时间少于2 ns,为超快速量热提供了机会。给出了仅由大量钨或铜组成的“理想”量热仪的仿真结果,以建立信号积分窗口的下限。

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