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A novel molten salt reactor concept to implement the multi-step time-scheduled transmutation strategy

机译:一种新型熔盐反应堆概念,实现了多步时间调度的嬗变策略

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Nowadays the molten salt reactor (MSR) concept seems to revive as one of the most promising systems for the realization of transmutation. In the molten salt reactors and subcritical systems the fuel and material to be transmuted circulate dissolved in some molten salt. The main advantage of this reactor type is the possibility of the continuous feed and reprocessing of the fuel. In the present paper a novel molten salt reactor concept is introduced and its transmutational capabilities are studied. The goal is the development of a transmutational technique along with a device implementing it, which yield higher transmutational efficiencies than that of the known procedures and thus results in radioactive waste whose load on the environment is reduced both in magnitude and time length. The procedure is the multi-step time-scheduled transmutation, in which transformation is done in several consecutive steps of different neutron flux and spectrum. In the new MSR concept, named "multi-region" MSR (MRMSR), the primary circuit is made up of a few separate loops, in which salt-fuel mixtures of different compositions are circulated. The loop sections constituting the core region are only neutronically and thermally coupled. This new concept makes possible the utilization of the spatial dependence of spectrum as well as the advantageous features of liquid fuel such as the possibility of continuous chemical processing etc. In order to compare a "conventional" MSR and a proposed MRMSR in terms of efficiency, preliminary calculational results are shown. Further calculations in order to find the optimal implementation of this new concept and to emphasize its other advantageous features are going on.
机译:如今,熔盐反应器(MSR)概念似乎是恢复为实现嬗变的最有希望的系统之一。在熔融盐反应器和亚临界系统中,燃料和材料待透过散发在一些熔盐中。该反应器类型的主要优点是燃料连续饲料和再处理的可能性。在本文中,引入了一种新型熔盐反应器概念,并研究了其嬗变能力。该目标是发展往复技术以及实现它的设备,其产生比已知过程更高的往复效率,因此导致其在幅度和时间长度的负载减小的放射性废物。该过程是多步时间调度的嬗变,其中在不同中子通量和频谱的几个连续步骤中进行变换。在新的MSR概念中,命名为“多区域”MSR(MRMSR),主电路由几个单独的环组成,其中不同组合物的盐燃料混合物循环。构成核心区域的环部分仅是中学性的和热耦合。这种新概念可以利用频谱的空间依赖性以及液体燃料的有利特征,例如连续化学处理等的可能性等。为了比较“常规”MSR和提出的MRMSR,显示了初步计算结果。进一步的计算为了找到这种新概念的最佳实现,并强调其其他有利功能正在发生。

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