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Status and possible prospects of an international fusion materials irradiation facility

机译:国际聚变材料辐照设施的现状和可能的前景

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摘要

Structural materials for future DT fusion power reactors will have to operate under intense neutron fields with energies up to 14 MeV and fluences in the order of 2 MW/m~2 per year. As environmental acceptability, safety considerations and economic viability will be ultimately the keys to the widespread introduction of fusion power, the development of radiation-resistant and low activation materials would contribute significantly to fusion development. For this purpose, testing of materials under irradiation conditions close to those expected in a fusion power station would require the availability, in an appropriate time framework, of an intense, high-energy neutron source. Recent advances in linear accelerator technology, in small specimens testing technology, and in the comprehension of damage phenomena, lead to the conclusion that an accelerator-based D-Li neutron source, with beam energy variability, would provide the most realistic option for a fusion materials testing facility. Under the auspices of the IEA, an international effort (EU, Japan, US, RF) to carry out the conceptual design activities (CDA) of an international fusion materials irradiation facility (IFMIF), based on the D-Li concept, have been carried out successfully. A final conceptual design report was produced at the end of 1996. A phase of conceptual design evaluation (CDE), presently underway, is extending and further refining some of the conceptual design details of IFMIF. The results indicate that an IFMIF-class installation would be technically feasible and could meet its mission objectives. Howev
机译:未来的DT聚变动力反应堆的结构材料将必须在能量高达14 MeV且能量密度每年约2 MW / m〜2的强中子场下运行。由于环境可接受性,安全考虑和经济可行性最终将成为广泛引入聚变动力的关键,因此耐辐射和低活化材料的开发将对聚变的发展做出重大贡献。为此,在接近聚变电站预期辐射条件的辐射条件下对材料进行测试将需要在适当的时间框架内提供高强度,高能量的中子源。线性加速器技术,小样本测试技术以及对破坏现象的理解方面的最新进展得出的结论是,基于加速器的D-Li中子源具有束能量可变性,将为融合提供最现实的选择材料测试设施。在国际原子能机构的主持下,国际上(欧盟,日本,美国,射频)努力进行了基于D-Li概念的国际聚变材料辐照设施(IFMIF)的概念设计活动(CDA)。进行成功。 1996年底提出了最终的概念设计报告。目前正在进行的概念设计评估(CDE)阶段正在扩展和进一步完善IFMIF的一些概念设计细节。结果表明,IFMIF级安装在技术上是可行的,并且可以实现其任务目标。豪夫

著录项

  • 来源
    《Fusion Engineering and Design》 |1999年第4期|413-421|共9页
  • 作者

    F. Cozzani;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 原子能技术;
  • 关键词

  • 入库时间 2022-08-18 00:35:49

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