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Demand driven salt clean-up in a molten salt fast reactor – Defining a priority list

机译:需求驱动的熔盐快堆中的盐清理–定义优先级列表

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摘要

The PUREX technology based on aqueous processes is currently the leading reprocessing technology in nuclear energy systems. It seems to be the most developed and established process for light water reactor fuel and the use of solid fuel. However, demand driven development of the nuclear system opens the way to liquid fuelled reactors, and disruptive technology development through the application of an integrated fuel cycle with a direct link to reactor operation. The possibilities of this new concept for innovative reprocessing technology development are analysed, the boundary conditions are discussed, and the economic as well as the neutron physical optimization parameters of the process are elucidated. Reactor physical knowledge of the influence of different elements on the neutron economy of the reactor is required. Using an innovative study approach, an element priority list for the salt clean-up is developed, which indicates that separation of Neodymium and Caesium is desirable, as they contribute almost 50% to the loss of criticality. Separating Zirconium and Samarium in addition from the fuel salt would remove nearly 80% of the loss of criticality due to fission products. The theoretical study is followed by a qualitative discussion of the different, demand driven optimization strategies which could satisfy the conflicting interests of sustainable reactor operation, efficient chemical processing for the salt clean-up, and the related economic as well as chemical engineering consequences. A new, innovative approach of balancing the throughput through salt processing based on a low number of separation process steps is developed. Next steps for the development of an economically viable salt clean-up process are identified.
机译:目前,基于水处理的PUREX技术是核能系统中领先的后处理技术。这似乎是用于轻水反应堆燃料和固体燃料使用的最先进和最成熟的工艺。然而,需求驱动的核系统发展为液体燃料反应堆开辟了道路,并通过应用直接与反应堆运行联系的集成燃料循环,为破坏性技术的发展开辟了道路。分析了这一新概念用于创新后处理技术发展的可能性,讨论了边界条件,并阐明了该过程的经济性以及中子物理优化参数。需要有关不同元素对反应堆中子经济性影响的反应堆物理知识。使用创新的研究方法,开发了盐净化的元素优先级列表,这表明钕和铯的分离是可取的,因为它们对临界损失的贡献接近50%。从燃料盐中另外分离锆和would将消除由于裂变产物而导致的近80%的临界损失。在理论研究之后,定性地讨论了不同的,需求驱动的优化策略,这些策略可以满足可持续反应堆运行,有效的盐净化化学处理以及相关的经济和化学工程后果的冲突利益。开发了一种新的创新方法,该方法基于少量分离过程步骤,通过盐处理来平衡产量。确定了开发经济可行的盐清除工艺的下一步。

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  • 期刊名称 other
  • 作者单位
  • 年(卷),期 -1(13),3
  • 年度 -1
  • 页码 e0192020
  • 总页数 20
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

  • 入库时间 2022-08-21 11:07:54

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