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Nuclear heat storage and recovery for the APR1400

机译:APR1400的核热存储和回收

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Detailed here is the proposed design of the tertiary side of a Thermal Energy Storage (TES) System to be interfaced with the steam cycle of a Light Water Reactor (LWR) plant. This study extends the understanding provided by many previous investigations (i.e., beyond thermodynamic considerations) by specifically addressing real world constraints associated with the backfit of such a system to an operating LWR. These constraints relate to the feasibility of design modifications during an extended refueling outage, and to licensing, operational, and maintenance considerations. The Korean designed and built APR1400 plant is selected for integration with the TES tertiary system, resulting in a design which can be readily be adapted to most LWR plant. Heat transfer and transport from and to the nuclear steam cycle is by synthetic oil with high temperature capabilities. Heat storage is in the form of packed beds consisting of crushed rock. While the rates of storage and recovery are constrained by the design of the nuclear reactor and steam plant (i.e., 20% of reactor thermal power during storage, and similar to 11% during recovery) the total stored energy component of the system can be readily and economically scaled to any desired capacity (at the marginal cost of carbon steel vessels filled with rock). Finally, it is proposed that any nuclear installation with water access could employ bulk thermal energy storage built into an Ultra Large Barge for turnkey delivery with a concomitant reduction in installed cost and risk.
机译:此处详细介绍了与轻水反应堆(LWR)装置的蒸汽循环对接的热能存储(TES)系统第三侧的拟议设计。这项研究通过专门解决与此类系统向运行中的轻水堆的改装相关的现实世界的限制,扩展了许多先前研究(即,超出热力学考虑)提供的理解。这些限制条件涉及在长期加油中断期间进行设计更改的可行性,以及许可,操作和维护方面的考虑。选择韩国设计和建造的APR1400工厂与TES第三系统集成,因此可以轻松适用于大多数轻水堆工厂。热量与核蒸汽循环之间的热传递是通过具有高温能力的合成油进行的。储热形式是由碎石组成的填充床。虽然储存和回收的速度受到核反应堆和蒸汽装置设计的限制(即,在储存期间为反应堆热功率的20%,在回收期间为11%),但系统的总储存能量成分仍可轻松实现。并在经济上扩展到任何所需的容量(以充满岩石的碳钢容器的边际成本为代价)。最后,有人建议,任何有水通道的核设施都可以利用内置在超大型驳船中的大量热能存储装置进行交钥匙交付,同时降低安装成本和风险。

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