验证薄片质子反冲中子谱仪原型在高产能 DT 聚变装置中的应用

B. Marcinkevicius, E. Andersson Sunden, G. Ericsson, A. Hjalmarsson
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引用次数: 0

摘要

薄片质子反冲(TPR)光谱仪在中子光谱学中的应用与未来的聚变装置(如国际热核聚变实验堆)密切相关,中子光谱学将在燃料含量监测中发挥关键作用。现有研究基于对热核聚变实验堆 TPR 光谱仪性能的模拟,已取得积极成果。然而,对模拟的实验验证将大大提高结论的可靠性。在本研究中,我们设计并建造了一台 TPR 中子谱仪原型,并使用 DT 中子发生器作为中子源进行测量。我们将实验结果与使用 Geant4 实验模型的模拟结果进行了比较。模拟结果和实验结果在硅探测器固有能量分辨率范围内相吻合。这种方法确保了基于 Geant4 模拟的 TPR 光谱仪的实验验证。实验结果证明了利用硅探测器(特别是$^{28}$Si(n,d)和$^{28}$Si(n,$\alpha$))测量的核反应进行能量校准的可行性。实验和模拟的比较表明,平均峰值能量和半最大全宽都在 150 keV 以内。计算出的探测效率低估了实验确定的效率达 33%。总之,开发的 Geant4 仿真模型与实验测量的能谱的成功验证增强了人们对这种仿真结果在其他设备中的适用性的信心。演示的能量校准凸显了在热核实验堆运行期间对中子能谱仪进行监测的新可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Validation of Thin-foil proton recoil neutron spectrometer prototype for application in high yield DT fusion devices
The use of Thin-foil Proton Recoil (TPR) spectrometers for application in neutron spectroscopy is of high relevance for future fusion devices such as ITER, where neutron spectroscopy will play a crucial role in fuel content monitoring. Existing research based on simulations of the performance of TPR spectrometers at ITER has demonstrated positive results. However, experimental validation of the simulations would greatly benefit the reliability of conclusions. In this study, we designed and constructed a prototype TPR neutron spectrometer and employed a DT neutron generator as a neutron source to perform measurements. We compared the experimental results with the simulation results using the Geant4 model of the experiment. The simulation and experimental results match within silicon detector intrinsic energy resolution. This approach ensures the experimental validation of the Geant4 based simulations of the TPR spectrometer. The experimental results demonstrated the feasibility of utilizing nuclear reactions measured in silicon detectors, specifically $^{28}$Si(n,d) and $^{28}$Si(n,$\alpha$), for energy calibration purposes. A comparison of the experiment and the simulation shows that the mean peak energy and full width at half maximum are within 150 keV. The calculated detector efficiency underestimates the experimentally determined efficiency up to 33\%. Discrepancies in the measured energy spectrum indicate the need for a more refined model and experiment control. Overall, the successful validation of the developed Geant4 simulation model against the experimentally measured energy spectra increases confidence in the applicability of such simulation results in other devices. The demonstrated energy calibration highlights new possibilities for neutron spectrometer monitoring during operation at ITER.
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