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Synthesis, Characterization and FEM-simulation of W/CuCrZr-Composites for Extreme Thermal Applications

机译:用于极端热应用的W / CUCRZR复合材料的合成,表征和FEM模拟

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Plasma facing components in fusion devices have to withstand extreme thermal loads. To fulfil the desired requirements we investigate tungsten as a plasma facing and CuCrZr as a heat sink material. However, the challenge is the big difference in their coefficients of thermal expansion (CTE). To reduce the thermally induced stresses, we utilize functionally graded materials (W/CuCrZr) as an interlayer between pure W and CuCrZr. In our work the optimized gradient structure will be constructed by means of FEM-simulation of stress-strain curves, CTE- and thermal conductivity values. The simulations are based on photorealistic input from SEM-cross sections of homogeneous W/CuCrZr-composites. The composites (30 to 70 vol.% CuCrZr) were fabricated by pressing of a W-powder / space-holder mixture, debinding/sintering, CuCrZr-infiltration and heat treatment. The measured properties fit quite well with simulated data. Furthermore, the mechanical properties are much better than with pure Cu. First examples of gradient structures will be shown.
机译:融合装置中的等离子体面向融合装置的组件必须承受极端的热负荷。为了满足所需的要求,我们将钨作为散热材料的等离子体进行调查。然而,挑战是它们的热膨胀系数(CTE)的巨大差异。为了减少热诱导的应力,我们使用功能渐变的材料(W / CUCRZR)作为纯W和CUCRZR之间的中间层。在我们的工作中,优化的梯度结构将通过压力 - 应变曲线,CTE和导热率值的FEM模拟来构造。仿真基于来自均匀的W / Cucrzr复合材料的SEM横截面的光致印刷。通过压制W-粉末/空间夹持器混合物,脱脂/烧结,CUCRZR渗透和热处理来制造复合材料(30至70体积%CUCRZR)。测量性能适合模拟数据。此外,机械性能远比用纯Cu更好。将显示梯度结构的第一示例。

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