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Conceptual magnet design study for fusion nuclear science facility

机译:聚变核科学设施的概念磁体设计研究

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The Fusion Nuclear Science Facility (FNSF) is a nuclear confinement device to provide the integrated fusion environment with fusion reactor components. The FNSF is the stepping stone to bridge the technical gaps of burning plasma and nuclear science between the International Thermal Nuclear Experimental Reactor (ITER), currently under construction in the south of France, and the demonstration power plant (DEMO). For the next-step fusion reactors, resistive copper magnet cannot be a sustainable solution due to large power consumption in coils of large size needed. Both Low temperature superconductor (LTS) and high temperature superconductor (HTS) are considered for the FNSF magnet design based on the state-of-the-art fusion superconducting magnet technology. Input parameters to FNSF magnet design include magnetic field of 7.5T at plasma center with a major radius of 4.8m and minor radius of 1.2m, and a peak field of over 16T on the TF coils. The high magnetic field can be achieved by using the high performance ternary Restack Rod Process (RRP) Nb3Sn strands for toroidal field (TF) magnets and a high aspect ratio rectangular cable-in-conduit conductor (CICC) design. The conductor design concept and TF coil winding pack composition and dimension are discussed based on the horizontal maintenance scheme. Neutron radiation limits for the LTS and HTS conductors and electrical insulation materials are reviewed based on the available materials previously tested. The material radiation limits for FNSF magnets are defined as part of the conceptual design studies. The global structural analysis of FNSF magnets based on the radial build was performed to validate feasibility for the plant layout toward horizontal maintenance and global structural integrity of its magnet system.
机译:聚变核科学设施(FNSF)是一种核密闭装置,可为融合聚变环境提供聚变反应堆组件。 FNSF是填补目前在法国南部正在建设的国际热核实验堆(ITER)与示范电厂(DEMO)之间弥合燃烧等离子体和核科学技术差距的垫脚石。对于下一步的聚变反应堆,由于需要大尺寸的线圈消耗大量功率,因此电阻铜磁体不能成为可持续的解决方案。 FNSF磁体设计基于最新的聚变超导磁体技术,同时考虑了低温超导体(LTS)和高温超导体(HTS)。 FNSF磁体设计的输入参数包括等离子体中心的7.5T磁场,长半径为4.8m,短半径为1.2m,在TF线圈上的峰值磁场超过16T。高磁场可以通过使用用于环形磁场(TF)磁体的高性能三元Restack Rod Process(RRP)Nb3Sn股线和高纵横比矩形导管中导体(CICC)设计来实现。基于水平维护方案,讨论了导体的设计思想和TF线圈绕组的组成和尺寸。根据先前测试过的可用材料,对LTS和HTS导体以及电绝缘材料的中子辐射极限进行了评估。 FNSF磁体的材料辐射极限被定义为概念设计研究的一部分。进行了基于径向构造的FNSF磁体的整体结构分析,以验证工厂布局在水平维护和其磁体系统的整体结构完整性方面的可行性。

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