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Design and Simulation of Gamma Spectrometry Experiments in the CROCUS Reactor

机译:番荔枝反应器γ光谱实验的设计与仿真

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Gamma rays in nuclear reactors, arising either from fission or decay processes, significantly contribute to the heating and dose of the reactor components. Zero power research reactors offer the possibility to measure gamma rays in a purely neutronic environment, allowing for validation experiments of computed spectra, dose estimates, reactor noise and prompt to delayed gamma ratios. This data then contributes to models, code validation and photo atomic nuclear data evaluation. In order to contribute to aforementioned experimental data, gamma detection capabilities are being added to the CROCUS reactor facility. The CROCUS reactor is a two-zone, uranium-fueled light water moderated facility operated by the Laboratory for Reactor Physics and Systems Behaviour (LRS) at the Swiss Federal Institute of Technology Lausanne (EPFL). With a maximum power of 100W, it is a zero power reactor used for teaching and research, most recently for intrinsic and induced neutron noise studies. For future gamma detection applications in the CROCUS reactor, an array of four detectors - two large 5"×10" Bismuth Germanate (BGO) and two smaller Cerium Bromide (CeBr_3) scintillators - was acquired. The BGO detectors are to be arbitrarily positioned in the core reflector and out of the vessel for measurements at arbitrary distances. The CeBr3 detectors on the other hand are small enough to be set in the guide tubes of the control rods for in-core measurements. We present a study of the neutron and gamma flux in the core and reflector using the MCNP 6.2 and Serpent 2 Monte Carlo codes for coupled neutron and photon transport criticality calculations. More specifically, we investigate and compare predicted spectra as well as reactivity worth of different envisioned experimental setups. We further predict pulse height spectra as well as doses to the crystals with and without cadmium shielding to estimate allowable reactor powers with respect to detector radiation hardness. The results serve as basis for calibration and aid in the design and regulatory approval of the experiments.
机译:核反应器中的γ射线来自裂变或腐烂过程,显着促进了反应器组分的加热和剂量。零功率研究反应堆提供了测量纯净环境中的伽马射线的可能性,允许计算光谱的验证实验,剂量估计,反应堆噪声和提示延迟伽玛比。然后,该数据有助于模型,代码验证和照片原子核数据评估。为了有助于上述实验数据,正在添加伽马检测能力到番红花反应器设施。 Crocus Reactor是由瑞士联邦理工学院洛桑(EPFL)的反应堆物理和系统行为(LRS)操作的两区,由实验室运营。最大功率为100W,它是用于教学和研究的零功率反应器,最近用于内在和诱导的中子噪声研究。对于番荔枝反应器中的未来伽马检测应用,获得了四个探测器阵列 - 两种大5“×10”铋锗(BGO)和两个较小的溴化铈(CEBR_3)闪烁体。 BGO探测器应任意定位在芯反射器中并从容器中以任意距离进行测量。另一方面,CEBR3探测器足够小,以便在控制杆的引导管中设置用于核心测量。我们使用MCNP 6.2和蛇2蒙特卡罗代码来介绍核心和反射器中的中子和反射器的研究,用于耦合中子和光子传输临界计算。更具体地,我们研究并比较预测的光谱以及不同设想的实验设置的反应性。我们进一步预测脉冲高度光谱以及用镉屏蔽的晶体的剂量,以估计相对于探测器辐射硬度的允许的反应器功率。结果是校准和辅助在实验的设计和监管批准的基础上。

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