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DEMO design using the SYCOMORE system code: Influence of technological constraints on the reactor performances

机译:使用SYCOMORE系统代码进行DEMO设计:技术约束对反应堆性能的影响

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摘要

The next step for fusion energy after the ITER tokamak is the demonstration power plant DEMO. In this framework, system codes are used to address high-level key design issues for the DEMO pre-conceptual phase. They aim at capturing the interactions between the subsystems of a fusion reactor. SYCOMORE is a modular system code which includes physics and technology models coupled to an optimizer in order to explore a large design parameter space. In the present paper, trade-off studies focused on technology modules are reported including the influence of some design-driving assumptions on the reactor performances and size, starting from a European DEMO1-like design (more than 500 MW net electric power and 2 h burn duration). The increase of the mechanical stress limits in TF and CS magnets can help reducing the reactor size, slightly more when high temperature superconductors are used in the TF coil. The tritium breeding ratio can be improved to more than 1.10 by a moderate increase of the size, but the tritium burn-up ratio needs one additional meter of major radius for every percent increase. Divertor coolant options are also compared, showing some differences between helium, hot and cold water scenarios at various incident divertor heat fluxes.
机译:ITER托卡马克之后,聚变能的下一步是示范电厂DEMO。在此框架中,系统代码用于解决DEMO概念前阶段的高级关键设计问题。他们旨在捕获聚变反应堆子系统之间的相互作用。 SYCOMORE是一个模块化系统代码,其中包括与优化程序耦合的物理和技术模型,以便探索较大的设计参数空间。在本文中,报告了针对技术模块的权衡研究,包括一些设计驱动假设对反应堆性能和尺寸的影响,从类似欧洲DEMO1的设计开始(净功率超过500 MW,2h时燃烧持续时间)。 TF和CS磁体中机械应力极限的增加可以帮助减小电抗器的尺寸,当在TF线圈中使用高温超导体时,则可以稍微减小电抗器的尺寸。通过适度增加size的繁殖率,可以将to的繁殖率提高到1.10以上,但是每增加百分之一,the的燃烧率就需要增加一米的大半径。还比较了分流器冷却剂选项,显示了在各种入射分流器热通量下氦,热水和冷水情况之间的一些差异。

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