首页> 外文期刊>Nuclear instruments and methods in physics research >Measurements of miniature ionization chamber currents in the JSI TRIGA Mark Ⅱ reactor demonstrate the importance of the delayed contribution to the photon field in nuclear reactors
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Measurements of miniature ionization chamber currents in the JSI TRIGA Mark Ⅱ reactor demonstrate the importance of the delayed contribution to the photon field in nuclear reactors

机译:对JSI TRIGA MarkⅡ反应堆中微型电离室电流的测量证明了延迟对核反应堆中光子场贡献的重要性。

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The characterization of experimental locations of a research nuclear reactor implies the determination of neutron and photon flux levels within, with the best achievable accuracy. In nuclear reactors, photon fluxes are commonly calculated by Monte Carlo simulations but rarely measured on-line. In this context, experiments were conducted with a miniature gas ionization chamber (MIC) based on miniature fission chamber mechanical parts, recently developed by the CEA (French Atomic Energy and Alternative Energies Commission) irradiated in the core of the Jozef Stefan Institute TRIGA Mark II reactor in Ljubljana, Slovenia. The aim of the study was to compare the measured MIC currents with calculated currents based on simulations with the MCNP6 code. A discrepancy of around 50% was observed between the measured and the calculated currents; in the latter taking into consideration only the prompt photon field. Further experimental measurements of MIC currents following reactor SCRAMs (reactor shutdown with rapid insertions of control rods) provide evidence that over 30% of the total measured signal is due to the delayed photon field, originating from fission and activation products, which are untreated in the calculations. In the comparison between the measured and calculated values, these findings imply an overall discrepancy of less than 20% of the total signal which is still unexplained.
机译:研究型核反应堆实验位置的表征意味着确定其中的中子和光子通量水平,并以最佳的精度实现。在核反应堆中,光子通量通常通过蒙特卡洛模拟计算得出,但很少在线测量。在这种情况下,基于微型裂变室机械零件的微型气体电离室(MIC)进行了实验,该零件是由CEA(法国原子能和替代能源委员会)最近在约瑟夫·斯特凡研究所TRIGA Mark II的中心辐照过的斯洛文尼亚卢布尔雅那的核反应堆。这项研究的目的是根据MCNP6代码的仿真结果,将测得的MIC电流与计算出的电流进行比较。在测量电流和计算电流之间观察到大约50%的差异;在后者中,仅考虑提示光子场。反应堆SCRAM之后的MIC电流的进一步实验测量(反应堆关闭,控制杆快速插入)提供了证据,表明总测量信号的30%以上是由于裂变和活化产物引起的光子场延迟所致,在裂变和活化产物中未进行处理。计算。在测量值和计算值之间的比较中,这些发现意味着总体差异小于总信号的20%,而目前尚无法解释。

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