快堆中快速瞬态过程动力学的显著减速

G. Kulikov, A. Shmelev, V. Apse, E. Kulikov
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引用次数: 0

摘要

核反应堆的动力学是由中子平均寿命决定的。当插入反应性大于有效延迟中子分数时,反应器动力学变得非常快。通过增加中子寿命来减缓快堆动力学是可能的。作者考虑了在铅冷快堆中使用铅同位素208Pb作为具有特殊性能的中子反射器的可能性。为了分析这种类型反应堆中出现的效应,选择了一个点动力学模型,该模型考虑了从208Pb反射器返回反应堆堆芯的中子。208Pb的高原子量和弱中子吸收等特性使得反应堆堆芯的中子能够深入穿透208Pb反射器,并在反射器中减速,有明显的概率返回反应堆堆芯,影响链式裂变反应。从208Pb反射器返回的中子有很长的“死区时间”,即中子离开反应堆堆芯,进入208Pb反射器,然后扩散回反应堆堆芯的时间总和。在“死区”期间,这些中子不能影响链式裂变反应。在延迟时间方面,从208Pb反射器深层返回的中子接近延迟中子。此外,从208Pb反射器返回的中子数量大大超过了延迟中子的数量。因此,由提示中子寿命形成的中子寿命和来自208Pb反射器的中子的“死区时间”可以大大增加。这将导致一个较长的反应堆加速周期,这将减轻瞬态超临界的影响。因此,使用208Pb作为中子反射体可以显著提高快堆核安全性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On a significant slowing-down of the kinetics of fast transient processes in a fast reactor
The kinetics of nuclear reactors is determined by the average neutron lifetime. When the inserted reactivity is more than the effective delayed neutron fraction, the reactor kinetics becomes very rapid. It is possible to slow down the fast reactor kinetics by increasing the neutron lifetime. The authors consider the possibility of using the lead isotope, 208Pb, as a neutron reflector with specific properties in a lead-cooled fast reactor. To analyze the emerging effects in a reactor of this type, a point kinetics model was selected, which takes into account neutrons returning from the 208Pb reflector to the reactor core. Such specific properties of 208Pb as the high atomic weight and weak neutron absorption allow neutrons from the reactor core to penetrate deeply into the 208Pb reflector, slow down in it, and have a noticeable probability to return to the reactor core and affect the chain fission reaction. The neutrons coming back from the 208Pb reflector have a long ‘deadtime’, i.e., the sum of times when neutrons leave the reactor core, entering the 208Pb reflector, and then diffuse back into the reactor core. During the ‘dead-time’, these neutrons cannot affect the chain fission reaction. In terms of the delay time, the neutrons returning from the deep layers of the 208Pb reflector are close to the delayed neutrons. Moreover, the number of the neutrons coming back from the 208Pb reflector considerably exceeds the number of the delayed neutrons. As a result, the neutron lifetime formed by the prompt neutron lifetime and the ‘dead-time’ of the neutrons from the 208Pb reflector can be substantially increased. This will lead to a longer reactor acceleration period, which will mitigate the effects of prompt supercriticality. Thus, the use of 208Pb as a neutron reflector can significantly improve the fast reactor nuclear safety.
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