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Reaction Rate Benchmark Experiments with Miniature Fission Chambers at the Slovenian TRIGA Mark II Reactor

机译:斯洛文尼亚赛马标记II反应器的微型裂变室的反应速率基准试验

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摘要

A series of fission rate profile measurements with miniature fission chambers, developed by the Commisariat á l’énergie atomique et auxénergies alternatives, were performed at the Jožef Stefan Institute’s TRIGA research reactor. Two types of fission chambers with different fissionable coating (235U and 238U) were used to perform axial fission rate profile measurements at various radial positions and several control rod configurations. The experimental campaign was supported by an extensive set of computations, based on a validated Monte Carlo computational model of the TRIGA reactor. The computing effort included neutron transport calculations to support the planning and design of the experiments as well as calculations to aid the evaluation of experimental and computational uncertainties and major biases. The evaluation of uncertainties was performed by employing various types of sensitivity analyses such as experimental parameter perturbation and core reaction rate gradient calculations. It has been found that the experimental uncertainty of the measurements is sufficiently low, i.e. the total relative fission rate uncertainty being approximately 5 %, in order for the experiments to serve as benchmark experiments for validation of fission rate profiles. The effect of the neutron flux redistribution due to the control rod movement was studied by performing measurements and calculations of fission rates and fission chamber responses in different axial and radial positions at different control rod configurations. It was confirmed that the control rod movement affects the position of the maximum in the axial fission rate distribution, as well as the height of the local maxima. The optimal detector position, in which the redistributions would have minimum effect on its signal, was determined.
机译:一系列的裂变率分布测量与微型裂变室,所制定的Commisariat A L'大气能源等auxénergies的替代品,在约瑟夫·斯特凡研究所的研究TRIGA反应器中进行。两种类型的裂变室具有不同的可裂变涂层(235U和238U)被用来在不同的径向位置和几个控制杆的配置进行轴向裂变率分布测量。实验运动是由一组广泛的计算的基础上,TRIGA反应器的验证蒙特卡洛计算模型的支持。计算工作包括中子输运计算支持试验的规划和设计以及计算来帮助实验和计算的不确定性和重大偏见的评价。不确定性的评价是通过使用多种类型的敏感性分析如实验参数扰动和核心反应速率梯度计算进行。已经发现的是,测量的不确定性实验足够低,即,总的相对裂变率的不确定性为大约5%,为了使实验以作为基准用于实验的裂变率分布验证。通过在不同的控制杆配置在执行不同的轴向测量和裂变率的计算和裂变室响应和径向位置所研究的中子通量再分配由于控制杆运动的影响。可以确认的是,控制杆移动影响在轴向裂变率分布的最大值的位置,以及该局部极大值的高度。最优检测器的位置,其中该再分配会对它的信号的影响最小,进行了测定。

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