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Comparison between finite element and experimental evidences of innovative W lattice materials for sacrificial limiter applications

机译:牺牲限制器应用创新W晶格材料有限元与实验证据的比较

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摘要

Power exhaust is a key mission for the realization of fusion electricity. Engineering challenges may arise from the extreme heat fluxes developed during plasma transients, above the limit offered by existing materials. These can reduce the lifetime of plasma-facing components (PFCs), imposing extraordinary maintenance, reactor safety issues and ultimately delayed return to normal operation. Concerning the EU DEMO reactor, discrete sacrificial limiters are being investigated as the last safety resource of the reactor & rsquo;s wall in case of unmitigated events. Within this context, micro-engineered tungsten (W) lattices are proposed to cope with unmitigated plasma disruptions. Unlike bulk W, lattices can be tailored to meet the operational requirements of the limiter, compromise between steady-state and off-design performances while avoiding overloading of the heat sink and delay the need for extraordinary maintenance. By calibrating an equivalent solid model originally developed and validated for open-cell aluminum (Al) foams, tailored lattices have been modelled and samples fabricated through additive manufacturing for characterization and testing, currently ongoing. In the present work, the thermal response of lattice samples during thermal shock high heat flux (HHF) tests performed at the linear facility QSPA Kh-50 facility is simulated using ANSYS and compared with available results. Enthalpy changes of W were imposed to simulate phase change. Good agreement with experiments and SDC-IC reference up to melting point was observed. Ultimately, a thermal quench of an unmitigated DEMO disruption was simulated involving an original MAPDL routine that removes mesh elements at the melting or vaporization point.
机译:电力排气是实现融合电力的关键任务。从等离子体瞬变开发的极端热量助焊剂可能出现工程挑战,以上现有材料提供的极限。这些可以减少面向等离子体的组件(PFC)的寿命,造成非凡的维护,反应堆安全问题,最终延迟恢复正常操作。关于欧盟演示反应堆,正在调查离散牺牲限制器作为反应堆和rsquo的最后一个安全资源;在未经触及的事件的情况下。在这种情况下,提出了微工程钨(W)格子以应对未发生的血浆中断。与散装W不同,格子可以定制,以满足限制器的操作要求,稳态和非设计性能之间妥协,同时避免散热器的过载并延迟需要非凡的维护。通过校准最初开发和验证的等效实体模型,用于开放式铝制铝(Al)泡沫,已经模拟了定制的格子和通过添加剂制造制造的样品,用于目前正在进行的表征和测试。在本作工作中,使用ANSYS模拟在线性设施QSPA KH-50设施的热冲击高热通量(HHF)测试期间的晶格样品的热响应并与可用的结果进行比较。施加W的焓变化以模拟相变。观察到与实验和SDC-IC参考的良好协议,达到熔点。最终,模拟了未经触发的演示中断的热淬火涉及原始MAPDL例程,其在熔化或蒸发点处去除网状元素。

著录项

  • 来源
    《Fusion Engineering and Design》 |2021年第8期|112493.1-112493.6|共6页
  • 作者单位

    Univ Tuscia DEIm Dept Via Paradiso 47 I-01100 Viterbo Italy;

    Univ Tuscia DEIm Dept Via Paradiso 47 I-01100 Viterbo Italy;

    Max Planck Inst Plasma Phys Boltzmann Str 2 D-85748 Garching Germany;

    Univ Roma Tor Vergata Enterprise Engn Dept Via Politecn 1 I-00133 Rome Italy;

    Max Planck Inst Plasma Phys Boltzmann Str 2 D-85748 Garching Germany;

    Max Planck Inst Plasma Phys Boltzmann Str 2 D-85748 Garching Germany;

    Univ Tuscia DEIm Dept Via Paradiso 47 I-01100 Viterbo Italy;

    EUROfus Consortium PPPT Dept Boltzmannstr 2 Garching Germany;

    Max Planck Inst Plasma Phys Boltzmann Str 2 D-85748 Garching Germany;

  • 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
  • 关键词

    DEMO; Limiter; Disruption; Lattice; QSPA-Kh50; FEA; Enthalpy; Phase change;

    机译:演示;限制器;破坏;晶格;QSPA-KH50;FEA;焓;相变;

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