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Monte Carlo optimization of a Compton suppression system for gamma-ray diagnosis of combustion plasma

机译:用于燃烧等离子体伽马射线诊断的康普顿抑制系统的蒙特卡洛优化

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The use of Gamma-ray spectrometers provides very important diagnostic tools in large-scale tokamak experiments. In this study, the Geant4 toolkit was used to simulate a Compton suppression system based upon a High-Purity Germanium (HPGe) primary detector in order to gain the optimal sizes for the construction of the system for 0.1 MeV-10 MeV γ-rays which are emitted from the HL-2A tokamak. BGO crystal is selected for the anti-coincidence secondary detector. Simulation results show that when the closer the HPGe primary detector is set to the beam entrance and the smaller the entrance size is, the higher the Compton Suppression Factors (CSFs) are. Moreover, adding a BGO crystal to the back of the HPGe detector can also improve the CSFs, and the CSFs increase more significantly with the higher r-ray energies. And a BGO crystal with the thickness of 25 mm in front of the HPGe detector can reach a good suppression effect. For the BGO hollow cylinder, the CSFs do not increase obviously after its thickness reaches 60-70 mm. Finally, optimal parameters for the Compton suppression system are suggested. Moreover, for the optimal Compton suppression system, γ-rays produced by neutrons which are also one of fusion products, can be well suppressed.
机译:伽玛射线光谱仪的使用为大规模托卡马克实验提供了非常重要的诊断工具。在这项研究中,使用Geant4工具包来模拟基于高纯锗(HPGe)主探测器的康普顿抑制系统,以便获得构造0.1 MeV-10 MeVγ射线的最佳尺寸。从HL-2A托卡马克发射。选择BGO晶体作为防重合次级检测器。仿真结果表明,当HPGe主探测器离光束入口越近且入口尺寸越小,康普顿抑制因子(CSF)越高。此外,在HPGe检测器的背面添加BGO晶体也可以改善CSF,并且随着较高的R射线能量,CSF的增加更为显着。 HPGe检测器前面的厚度为25 mm的BGO晶体可以达到良好的抑制效果。对于BGO空心圆筒,其CSF厚度达到60-70 mm后不会明显增加。最后,提出了康普顿抑制系统的最佳参数。而且,对于最佳的康普顿抑制系统,可以很好地抑制由中子产生的γ射线,中子也是聚变产物之一。

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