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Micro-mechanical modelling of mechanical and electrical properties in homogeneous piezoelectric ceramic by using boundary integral formulations

机译:利用边界整体配方,通过边界整体制剂进行微机械电气性能的微机械建模

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Recent experiments on polycrystalline materials show that microcrystalline materials have a strong dependency ona grain size. In this study, mechanical and electrical properties of polycrystalline materials in micro level were studied by using averaging theorems. To completely understand the size-dependency of polycrystalline materials, an integral non-local approach that can predict the stress-strain relations for these materials was presented. In microcrystalline materials, crystalline and grain-boundary were considered as two separate phases. Mechanical properties of the crystalline phase were modelled using crystalline brittle material and is composed of randomly distributed and orientated single crystal anisotropic elastic grains. For microcrystalline materials, the surface-to-volume ratio of the grain boundaries is low enough to ignore its contribution to the elastic deformation. Therefore, the grain boundary phase was not considered in microcrystalline materials and mechanical properties of the crystalline phase were modelled using appropriate integral non-local approach. Finally, the constitutive equations for polycrystalline materials were implemented into a boundary integral equation and the results and some examples are provided for piezoelectric ceramic.
机译:最近对多晶材料的实验表明,微晶材料具有强大依赖性粒度。在本研究中,通过使用平均定理研究了微水位中的多晶材料的机械和电性能。为了完全理解多晶材料的尺寸依赖性,提出了一种可以预测这些材料的应力应变关系的整体非局部方法。在微晶材料中,结晶和晶界被认为是两个单独的相。使用结晶脆性材料进行建模结晶相的力学性能,由随机分布和定向的单晶各向异性弹性晶粒构成。对于微晶材料,晶界的面对体积比足够低,以忽略其对弹性变形的贡献。因此,在微晶材料中不考虑晶粒边界相,使用适当的整体非局部方法进行模拟结晶相的力学性能。最后,将多晶材料的组成方程实施为边界积分方程,结果和一些实施例用于压电陶瓷。

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