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首页> 外文期刊>Journal of Applied Physics >Calculations of single crystal elastic constants for yttria partially stabilised zirconia from powder diffraction data
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Calculations of single crystal elastic constants for yttria partially stabilised zirconia from powder diffraction data

机译:由粉末衍射数据计算氧化钇部分稳定的氧化锆的单晶弹性常数

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Yttria Stabilised Zirconia (YSZ) is a tough, phase-transforming ceramic that finds use in a wide range of commercial applications from dental prostheses to thermal barrier coatings. Micromechanical modelling of phase transformation can deliver reliable predictions in terms of the influence of temperature and stress. However, models must rely on the accurate knowledge of single crystal elastic stiffness constants. Some techniques for elastic stiffness determination are well-established. The most popular of these involve exploiting frequency shifts and phase velocities of acoustic waves. However, the application of these techniques to YSZ can be problematic due to the micro-twinning observed in larger crystals. Here, we propose an alternative approach based on selective elastic strain sampling (e.g., by diffraction) of grain ensembles sharing certain orientation, and the prediction of the same quantities by polycrystalline modelling, for example, the Reuss or Voigt average. The inverse problem arises consisting of adjusting the single crystal stiffness matrix to match the polycrystal predictions to observations. In the present model-matching study, we sought to determine the single crystal stiffness matrix of tetragonal YSZ using the results of time-of-flight neutron diffraction obtained from an in situ compression experiment and Finite Element modelling of the deformation of polycrystalline tetragonal YSZ. The best match between the model predictions and observations was obtained for the optimized stiffness values of C11 = 451, C33 = 302, C44 = 39, C66 = 82, C12 = 240, and C13 = 50 (units: GPa). Considering the significant amount of scatter in the published literature data, our result appears reasonably consistent.
机译:Yttria稳定氧化锆(YSZ)是一种坚韧的相变陶瓷,可用于从牙修复体到隔热涂层的广泛商业应用。相变的微机械建模可以根据温度和应力的影响提供可靠的预测。但是,模型必须依赖于单晶弹性刚度常数的准确知识。确定弹性刚度的一些技术是公认的。其中最流行的涉及利用声波的频移和相速度。但是,由于在较大的晶体中观察到微孪晶,因此将这些技术应用于YSZ可能会出现问题。在这里,我们提出了一种替代方法,该方法基于对具有特定取向的晶粒整体进行选择性弹性应变采样(例如,通过衍射),并通过多晶建模(例如Reuss或Voigt平均)预测相同数量。出现反问题,包括调整单晶刚度矩阵以使多晶预测与观测值匹配。在当前的模型匹配研究中,我们试图使用从原位压缩实验获得的飞行时间中子衍射结果和多晶四方YSZ变形的有限元模型确定四方YSZ的单晶刚度矩阵。对于C11 and = 451,C33 = 302,C44 = 39,C66 = 82,C12 = 240和C13 = 50(单位:GPa),获得了模型预测与观测值之间的最佳匹配。考虑到已发表文献数据中的大量散布,我们的结果似乎相当一致。

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