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Thermal properties of zirconium diboride -- transition metal boride solid solutions.

机译:二硼化锆-过渡金属硼化物固溶体的热性能。

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摘要

This research focuses on the thermal properties of zirconium diboride (ZrB2) based ceramics. The overall goal was to improve the understanding of how different transition metal (TM) additives influence thermal transport in ZrB2. To achieve this, ZrB2 with 0.5 wt% carbon, and 3 mol% of individual transition metal borides, was densified by hot-press sintering. The transition metals that were investigated were: Y, Ti, Hf, V, Nb, Ta, Cr, Mo, W, and Re. The room temperature thermal diffusivities of the compositions ranged from 0.331 cm2/s for nominally pure ZrB2 to 0.105 cm2/s for (Zr,Cr)B2 and converged around 0.155cm2/s at higher temperatures for all compositions. Thermal conductivities were calculated from the diffusivities, using temperature-dependent values for density and heat capacity. The electron contribution to thermal conductivity was calculated from measured electrical resistivity according to the Wiedemann-Franz law. The phonon contribution to thermal conductivity was calculated by subtracting the electron contribution from the total thermal conductivity. Rietveld refinement of x-ray diffraction data was used to determine the lattice parameters of the compositions. The decrease in thermal conductivity for individual additives correlated directly to the metallic radius of the additive. Additional strain appeared to exist for additives when the stable TM boride for that metal had different crystal symmetries than ZrB2. This research provided insight into how additives and impurities affect thermal transport in ZrB2. The research potentially offers a basis for future modeling of thermal conductivity in ultra-high temperature ceramics based on the correlation between metallic radius and the decrease in thermal conductivity.
机译:这项研究的重点是二硼化锆(ZrB2)基陶瓷的热性能。总体目标是增进对不同过渡金属(TM)添加剂如何影响ZrB2中热传输的理解。为此,通过热压烧结使具有0.5wt%碳和3mol%单个过渡金属硼化物的ZrB 2致密化。研究的过渡金属为:Y,Ti,Hf,V,Nb,Ta,Cr,Mo,W和Re。组合物的室温热扩散率在名义上纯的ZrB 2的0.331cm 2 / s至(Zr,Cr)B 2的0.105cm 2 / s的范围内,并且对于所有组合物在较高温度下收敛在约0.155cm 2 / s。根据密度和热容量的温度相关值,由扩散率计算出导热系数。根据Wiedemann-Franz定律,由测得的电阻率计算出电子对热导率的贡献。通过从总热导率中减去电子贡献来计算声子对热导率的贡献。用X射线衍射数据的Rietveld细化确定组合物的晶格参数。单个添加剂的导热系数降低与添加剂的金属半径直接相关。当该金属的稳定TM硼化物具有与ZrB2不同的晶体对称性时,添加剂似乎会出现附加应变。这项研究提供了关于添加剂和杂质如何影响ZrB2中热传递的见解。该研究有可能为未来基于金属半径与导热系数降低之间的相关性对超高温陶瓷的导热系数建模提供基础。

著录项

  • 作者

    McClane, Devon Lee.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Materials science.
  • 学位 M.S.
  • 年度 2014
  • 页码 126 p.
  • 总页数 126
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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