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Trigger and readout electronics for the phase-I upgrade of the ATLAS forward muon spectrometer

机译:触发和读出电子设备,用于ATLAS前向μ子光谱仪的第一阶段升级

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The upgrades of the LHC accelerator and the experiments in 2019/20 and 2023/24 will increase the instantaneous and integrated luminosity, but also will drastically increase the data and trigger rates. To cope with the huge data flow while maintaining high muon detection efficiency and reducing fake muons found at Level-1, the present ATLAS small wheel muon detector will be replaced with a New Small Wheel (NSW) detector for high luminosity LHC runs. The NSW will feature two new detector technologies: resistive micromegas (MM) and small strip Thin Gap Chambers (sTGC) conforming a system of ~2.4 million readout channels. Both detector technologies will provide trigger and tracking primitives. A common readout path and a separate trigger path are developed for each detector technology. The electronics design of such a system will be implemented in about 8000 front-end boards, including the design of a number of custom radiation tolerant Application Specific Integrated Circuits (ASICs), capable of driving trigger and tracking primitives to the backend trigger processor and readout system. The large number of readout channels, the short period of time available to prepare and transmit trigger data, the high-speed output data rate, the harsh radiation environment, and the low power consumption, all impose great challenges to the system design. The overall design, development and performance of various prototypes and integration efforts will be presented.
机译:LHC加速器的升级以及2019/20和2023/24的实验将提高瞬时和综合光度,但也将大大增加数据和触发率。为了处理巨大的数据流,同时保持较高的μ子检测效率,并减少Level-1处的假μ子,目前的ATLAS小型轮μ子检测器将被新型小轮(NSW)检测器取代,以实现高亮度LHC运行。新南威尔士州将采用两项新的检测器技术:电阻微兆(MM)和小条薄间隙腔(sTGC),符合约240万个读出通道的系统。两种检测器技术都将提供触发和跟踪原语。为每种检测器技术开发了一个公共的读取路径和一个单独的触发路径。这种系统的电子设计将在大约8000个前端板上实现,其中包括许多定制的耐辐射专用集成电路(ASIC)的设计,它们能够将触发和跟踪原语驱动到后端触发处理器并进行读出。系统。大量的读取通道,可用于准备和发送触发数据的较短时间,高速输出数据速率,恶劣的辐射环境以及低功耗,所有这些都对系统设计提出了巨大挑战。将介绍各种原型的总体设计,开发和性能以及集成工作。

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