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基于 GEM(气体电子倍增器)的气体切伦科夫探测器的概念设计,用于测量磁约束聚变等离子体中 T(D, γ)He 产生的 17 MeV 伽马射线。

Conceptual design of a GEM (gas electron multiplier) based gas Cherenkov detector for measurement of 17 MeV gamma rays from T(D, γ)He in magnetic confinement fusion plasmas.

机构信息

Dipartimento di Fisica "G. Occhialini," Università Degli Studi di Milano-Bicocca, Milano, Italy.

Istituto per la Scienza e Tecnologia dei Plasmi, CNR, Milano, Italy.

出版信息

Rev Sci Instrum. 2023 Jan 1;94(1):013501. doi: 10.1063/5.0101761.

Abstract

The only method for assessing the fusion power throughput of a deuterium-tritium (DT) reactor presently relies on determining the absolute number of 14 MeV neutrons produced in the DT plasma. An independent method, developed and investigated during the recent DT campaign at the Joint European Torus, is based on the absolute counting of 17 MeV gamma rays produced by the competing T(D, γ)He reaction that features a very weak branching ratio (about 3-6 × 10) when compared to the main T(D, n)He reaction. The state-of-the-art spectrometer used for gamma-ray measurements in magnetic confinement fusion plasmas is LaBr(Ce) scintillator detectors, although they require significant neutron shielding to extract a relatively weak gamma-ray signal from a much more abundant neutron field. A better approach relies on a gamma-ray detector that is intrinsically insensitive to neutrons. We have advanced the design of a gamma-ray counter based on the Cherenkov effect for gamma-rays whose energy exceeds 11 MeV, optimized to work in the neutron-rich environment of a steady-state, magnetically confined fusion plasma device. The gamma-rays interact with an aluminum window and extract electrons that move into the radiator emitting photons via the Cherenkov effect. Since the Cherenkov light consists of few photons (25 on average) in the far UV band (100-200 nm), a pre-amplifier is required to transport the photons to the neutron-shielded location, which may be a few meters away, where the readout elements of the detector, either a silicon or standard photomultiplier tube, are placed. The present work focuses on the development of a scintillating GEM (Gas Electron Multiplier) based pre-amplifier that acts as a Cherenkov photon pre-amplifier and wavelength shifter. This paper presents the result of a set of Garfield++ simulations developed to find the optimal GEM working parameters. A photon gain of 100 is obtained by biasing a single GEM foil to 1 kV.

摘要

目前评估氘氚(DT)反应堆聚变功率通量的唯一方法依赖于确定 DT 等离子体中产生的 14 MeV 中微子的绝对数量。在联合欧洲环流器(Joint European Torus)最近的 DT 实验中,开发并研究了一种独立的方法,该方法基于通过竞争的 T(D, γ)He 反应产生的 17 MeV 伽马射线的绝对计数,该反应的主要分支比(约 3-6×10)与主要的 T(D, n)He 反应相比非常弱。在磁约束聚变等离子体中用于伽马射线测量的最先进的光谱仪是 LaBr(Ce)闪烁体探测器,尽管它们需要大量的中子屏蔽才能从更为丰富的中子场中提取相对较弱的伽马射线信号。一种更好的方法依赖于对中子不敏感的伽马射线探测器。我们已经改进了一种基于切伦科夫效应的伽马射线计数器的设计,用于能量超过 11 MeV 的伽马射线,该计数器经过优化可在稳态、磁约束聚变等离子体装置的富含中子环境中工作。伽马射线与铝窗相互作用,提取电子,通过切伦科夫效应将电子转移到辐射体中,发出光子。由于切伦科夫光在远紫外线波段(100-200nm)中包含很少的光子(平均 25 个),因此需要前置放大器将光子传输到远离中子屏蔽的位置,该位置可能在几米之外,探测器的读出元件,如硅或标准光电倍增管,就放置在那里。本工作集中于开发基于闪烁体充气电子倍增器(GEM)的前置放大器,该前置放大器作为切伦科夫光子前置放大器和波长转换器。本文介绍了一组 Garfield++ 模拟的结果,这些模拟旨在找到最佳的 GEM 工作参数。通过将单个 GEM 箔偏置到 1kV,可以获得 100 的光子增益。

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