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Feedback reactivity coefficients and their coupling

机译:反馈反应系数及其耦合

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Coupled reactivity feedback coefficients which accounts for variation in fuel temperature and moderator void simultaneously, have been determined for swimming pool type research reactor namely Pakistan Research Reactor PARR-1. The state of art is core criticality calculations, employing lattice cell code WIMS-D/4 and application of Taylor series expansion for core reactivity up to third order, involving two variables, i.e. fuel temperature and coolant void. The spectral effects in one region due to change of parameter in other region have also been studied. When spectral changes in moderator region due to 20 K change in fuel temperature have been incorporated in the calculation of fuel temperature coefficient, the results seems to be improved by 4.12%. Further, the results of void coefficient of reactivity show the improvement of 0.1% when the spectral effect in fuel region due to 5% change in void in moderator region is taken into account. These differences seem to be an improvement in the results, as physically any change in one region is accompanied by change in the other region.
机译:对于游泳池型研究堆,即巴基斯坦研究堆PARR-1,已经确定了耦合反应性反馈系数,该系数同时考虑了燃料温度和调节剂空隙的变化。现有技术是堆芯关键性计算,采用晶格单元代码WIMS-D / 4,并且泰勒级数展开用于堆芯反应性直至三阶,涉及两个变量,即燃料温度和冷却剂空隙。还研究了一个区域中由于另一区域的参数变化而引起的光谱效应。在燃料温度系数的计算中考虑了由于燃料温度20 K变化引起的慢化剂区域的光谱变化时,结果似乎提高了4.12%。此外,当考虑由于慢化剂区域中的空隙的5%变化引起的燃料区域中的光谱效应时,反应性的空隙率的结果显示出0.1%的提高。这些差异似乎是结果的改善,因为实际上一个区域的任何变化都伴随着另一区域的变化。

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