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Influence Of The Processing And Salt Composition On The Thorium Molten Salt Reactor

机译:工艺和盐组成对The熔盐反应器的影响

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Molten salt reactors (MSRs) are one of the six systems retained by Generation IV as a candidate for the next generation of nuclear reactors. The MSR is a very attractive concept especially for the thorium fuel cycle, which allows nuclear energy production with a very low production of radiotoxic minor actinides, so it has been selected by the Generation-IV International Forum. Its main characteristic is a strong coupling between neu-tronics and salt processing. Such nuclear reactors use a liquid fuel that is also the coolant. Elements produced during the reactor's operation, like fission products or transuranic elements, modify the neutronic balance of the reactor by capturing neutrons. As the fuel is liquid, partial processing of a limited amount taken from circulating salt is possible, in order to remove the poisoning elements, without stopping reactor operation. In this paper, we present a configuration that we consider to be a reference one for a thorium molten salt reactor (TMSR), and we study the influence of efficacy of different types of processing on the neutronic behavior of this reactor. By considering both the possibilities in chemistry and the neutronic effects, our aim is to work out an efficient, reliable, and realistic processing scheme.rnThe processing includes in fact two components: an in-line bubbling system within the reactor that extracts the gaseous and metallic fission products quickly and a slower external processing unit that extracts the other fission products. A salt volume equal to the core volume is thus cleaned in several months. We have studied the influence of different processing rates on the reactor's behavior. This mainly affects the breeding ratio.rnProperties of the salt are also crucial. We choose in our simulations of the TMSR a 78 mol% LiF-22 mol% [heavy nuclei (HN)] F_4 salt for the fuel, but lower HN proportions in the fuel salt are also examined in order to minimize the ~(233)U inventory in the reactor. The neutron spectrum is largely modified by the HN proportion and has a deep impact on the reactor behavior. Our simulations evaluate the degradation of the breeding ratio from >1 for the reference configuration down to 0.86 due to a decrease of the HN proportion in the fuel salt.rnWe conclude that the simplification of the salt processing that is addressed in this work improves the feasibility of the TMSR system.
机译:熔融盐反应堆(MSR)是第四代保留的六个系统之一,可作为下一代核反应堆的候选系统。 MSR是一个非常吸引人的概念,尤其是对于fuel燃料循环而言,它允许以极低的放射毒性次act系元素产生核能,因此被第四代国际论坛选中。其主要特征是中子学与盐处理之间的强耦合。这样的核反应堆使用也是冷却剂的液体燃料。反应堆运行过程中产生的元素,例如裂变产物或超铀元素,通过捕获中子来改变反应堆的中子平衡。由于燃料是液体,因此可以在不停止反应堆运行的情况下,从循环盐中进行有限量的部分处理,以去除中毒元素。在本文中,我们提出了一种配置,我们认为该配置可作为for熔融盐反应堆(TMSR)的参考,并且我们研究了不同类型的处理效率对该反应堆中子性能的影响。通过考虑化学作用和中子效应的可能性,我们的目标是制定出有效,可靠和现实的处理方案。该处理实际上包括两个组件:反应器内的在线鼓泡系统,用于提取气态和气态。金属裂变产物很快,而提取其他裂变产物的外部处理单元则变慢。因此,几个月后就可以清除等于核心体积的盐体积。我们研究了不同处理速率对反应堆行为的影响。这主要影响繁殖率。盐的性质也很关键。我们在TMSR的模拟中选择燃料的78 mol%LiF-22 mol%[重核(HN)] F_4盐,但是还检查了燃料盐中较低的HN比例,以最大程度地减少〜(233) U反应堆中的库存。 HN比例对中子光谱有很大的影响,并且对反应堆的行为有深远的影响。我们的仿真评估了由于燃料盐中HN比例的降低,导致育种率从参考配置的> 1下降到0.86.rn我们得出结论,这项工作中解决的盐处理的简化提高了可行性TMSR系统。

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