Role of interfacial grain-bridging sliding friction in the crack-resistance and strength properties of nontransforming ceramics

S.J. Bennison , B.R. Lawn
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引用次数: 239

Abstract

A grain-bridging model of crack-resistance or toughness (R-curve, or T-curve) properties of nontransforming ceramics is developed. A key new feature of the fracture mechanics treatment is the inclusion of internal residual (thermal expansion mismatch) stresses in the constitutive stress-separation relation for pullout of interlocking grains from an embedding matrix. These internal stresses play a controlling role in the toughness properties by determining the scale of frictional tractions at the sliding grain-matrix interface. By providing a physical account of the underlying micromechanics of the bridging process the analysis allows for predetermination of the material factors in the constitutive relation, thereby reducing parametric adjustments necessary in fitting the theoretical toughness curve to experimental data. The applicability of the model is illustrated in a case study on indentation-strength data for a “reference” polycrystalline alumina with particularly strong T-curve characteristics. From theoretical fits to these data the constitutive relation, and thence the entire T-curve, can be deconvolved. This “parametric calibration”, apart from demonstrating the plausibility of the model, allows for quantitative predictions as to how the toughness and strength characteristics of ceramics depend on such microstructural variables as grain size and shape, grain boundary energy, level of internal stress and sliding friction coefficient. An indication of this predictive capacity is provided by a preliminary calculation of the grain-size dependence of strength, using some existing data for other aluminas as a basis for comparison.

界面晶间桥接滑动摩擦对非相变陶瓷抗裂和强度性能的影响
建立了非相变陶瓷的抗裂或韧性(r曲线或t曲线)的晶粒桥接模型。断裂力学处理的一个关键新特征是将内部残余(热膨胀失配)应力包含在互锁晶粒从嵌入基体中拔出时的本构应力分离关系中。这些内应力通过决定滑动晶粒-基体界面处的摩擦牵引力大小而对韧性性能起控制作用。通过提供桥接过程基本微观力学的物理解释,分析可以预先确定本构关系中的材料因素,从而减少将理论韧性曲线拟合到实验数据所需的参数调整。该模型的适用性在“参考”多晶氧化铝具有特别强的t曲线特征的压痕强度数据的案例研究中得到了说明。从这些数据的理论拟合,本构关系,从而整个t曲线,可以反卷积。这种“参数校准”,除了证明模型的合理性之外,还允许定量预测陶瓷的韧性和强度特性如何依赖于晶粒尺寸和形状、晶界能、内应力水平和滑动摩擦系数等微观结构变量。这种预测能力的指示是通过对强度的粒度依赖性的初步计算,使用其他氧化铝的一些现有数据作为比较的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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