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Optimized design of a tungsten-copper functionally graded material monoblock for minimal von Mises stress meeting the material operational temperature window

机译:用于最小Von Mises压力的钨 - 铜功能分级材料单块的优化设计,符合材料运行温度窗口

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摘要

Functionally graded materials (FGMs) are a means to remove discrete material interfaces which lead to high local stress concentrations, such as the tungsten-copper (W-Cu) interface of the current ITER monoblock design. This paper employs adjoint-based optimization methods to identify the highest potential reduction of stresses that could be reached with these materials, while ensuring that the local temperature does not exceed the material temperature operational window. The cheap sensitivity evaluation inherent to the adjoint approach enables the optimization of the detailed 3D material distribution. Furthermore, a novel optimization method based on an augmented Lagrangian formulation is proposed that allows accurate treatment of the material temperature window constraints. The temperature and stresses are modelled by the steady heat conduction and Navier's equation, respectively. We compare the results of different optimization formulations, with cost functions based on the von Mises stress and corresponding yield criterion and considering different values of the stress free temperature. To assess the performance under off-design conditions, two optimized designs were chosen and compared to the ITER and flat tile (FT) design, which consists of a copper block protected by a tungsten layer on top. The optimized designs lead to a factor 2-4 decrease in maximal stress near the original W-Cu interface of the FT design and a factor 10 decrease in yield criterion measure near the cooling duct. Under off-design conditions, they realized a factor 2-10 decrease in yield criterion in the upper part of the monoblock. This confirms numerically that FGMs can lead to significant design improvements. Finally, the inclusion of the material temperature operation window constraints leads to a decrease of 30-55 vol% W compared to the unconstrained cases, thus profoundly influencing the final design. The stress free temperature was found to have a comparably weaker influence on the final design with differences of 5-30 vol% W.
机译:功能梯度材料(FGM)是去除离散材料界面的方法,这导致高局部应力浓度,例如电流磨料单块设计的钨铜(W-CU)界面。本文采用基于伴随的优化方法来识别可以与这些材料达到的应力的最大电位降低,同时确保局部温度不超过材料温度操作窗口。伴随方法固有的廉价敏感性评估使得能够优化详细的3D材料分布。此外,提出了一种基于增强拉格朗日配方的新型优化方法,允许精确处理材料温度窗口约束。温度和应力分别由稳定的导热和Navier等式建模。我们比较不同优化配方的结果,基于von误判和相应的屈服标准,以及考虑应力自由温度的不同值。为了评估非设计条件下的性能,选择了两种优化的设计,并与浸泡和平铺(FT)设计进行了比较,由顶部受钨层保护的铜块组成。优化的设计导致FT设计的原始W-CU接口附近的最大应力的最大应力下降,并且在冷却管道附近的屈服标准测量的因子10降低。在非设计条件下,它们意识到单块上部的屈服标准的因子2-10。这在数字上确认FGM可以导致显着的设计改进。最后,包含材料温度操作窗口约束导致与未受控制的案例相比,减少30-55体积%W,从而深刻地影响最终设计。发现压力自由温度对最终设计具有相对较弱的影响,差异为5-30体积%W.

著录项

  • 来源
    《Nuclear fusion 》 |2021年第4期| 046050.1-046050.19| 共19页
  • 作者单位

    KU Leuven Department of Mechanical Engineering 3001 Leuven Belgium;

    KU Leuven Department of Mechanical Engineering 3001 Leuven Belgium;

    Forschungszentrum Juelich GmbH Institut fuer Energie- und Klimaforschung-Plasmaphysik Partner of the Trilateral Euregio Cluster (TEC) 52425 Juelich Germany Department of Engineering Physics University of Wisconsin-Madison Madison WI 53706 United States of America;

    KU Leuven Department of Mechanical Engineering 3001 Leuven Belgium;

  • 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

    functionally graded materials; adjoint optimization; optimal divertor design; ITER monoblock design; thermal stress minimization;

    机译:功能分级材料;伴随优化;最佳的偏移器设计;ITER MonoBlock设计;热应力最小化;

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