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Usage of multiple fission cells for neutron flux measurements during rod-insertion method

机译:杆插入方法期间使用多裂变细胞进行中子磁通测量

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The measurements of physical parameters of the TRIGA reactor and Nuclear power plant Krako (NEK) reactor cores have been in the past performed on hand of the neutron flux signal obtained from uncompensated ionization cells and by employment of the a digital meter of reactivity (DMR). At the TRIGA reactor only one ionization cell is currently used for flux measurements. During the insertion of one control rod the neutron flux distribution is significantly altered affecting the flux measurements of inserting different control rods. The problem is presently solved by assigning a correction factor to each control rod what introduces an additional uncertainty. In the present paper the implementation of four fission cells for reactivity measurements is presented. In this way determining the correct gamma background and its subtraction, performed by DMR algorithms, becomes less important as previously by using ionization chambers. The larger number of detectors also reduces the flux redistribution effects on the signal during individual control rod movements.
机译:Triga反应器和核电站克拉诺(NEK)反应器核的物理参数的测量已经过去一直在从未证明的电离细胞获得的中子磁通信号的手上进行,并采用数字计量仪(DMR) 。在Triga反应器中,目前仅使用一个电离电池用于磁通测量。在插入一个控制杆期间,中子磁通量分布显着改变,影响插入不同控制杆的磁通测量。通过将校正因子分配给每个控制杆来提出额外的不确定性,目前解决了问题。在本文中,介绍了用于反应性测量的四个裂变细胞的实施。以这种方式确定由DMR算法执行的正确的伽马背景及其减法,通过使用电离室,变得不太重要。在各个控制杆运动期间,较大数量的探测器也降低了对信号的磁通再分布效应。

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