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Microstructure-based modelling and experimental investigation of crack propagation in glass-alumina functionally graded materials

机译:基于微结构的玻璃-氧化铝功能梯度材料中裂纹扩展的建模和实验研究

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The aim of the present work was the determination of the fracture mechanisms in glass-alumina functionally graded materials (FGMs). The investigation was performed by means of a combined approach based on microscale computational simulations, which provided for an accurate modelling of the actual FGM microstructure, and experimental analysis. The numerical results proved that microstructural defects, such as pores, deeply influenced the damage evolution. On the contrary, the minimization of the mismatch in the coefficients of thermal expansion of the ingredient materials allowed to obtain low thermal residual stresses, which did not relevantly affect the crack propagation. In order to support the numerical model, microindentation tests were performed on the cross-section of FGM specimens and the experimentally observed crack paths were compared to the computationally predicted ones.
机译:本工作的目的是确定玻璃氧化铝功能梯度材料(FGM)的断​​裂机理。通过基于微尺度计算仿真的组合方法进行了研究,该方法为实际的FGM微观结构提供了精确的建模,并提供了实验分析。数值结果证明,孔等微结构缺陷对损伤的发展有深远的影响。相反,成分材料的热膨胀系数的不匹配的最小化允许获得低的热残余应力,其没有相关地影响裂纹扩展。为了支持该数值模型,在FGM试样的横截面上进行了微压痕测试,并将实验观察到的裂纹路径与计算预测的裂纹路径进行了比较。

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