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A micromechanics-based strength prediction methodology for notched metal matrix composites

机译:基于微力学的缺口金属基复合材料强度预测方法

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摘要

An analytical micromechanics based strength prediction methodology was developed to predict failure of notched metal matrix composites. The stress-strain behavior and notched strength of two metal matrix composites, boron/aluminum (B/Al) and silicon-carbide/titanium (SCS-6/Ti-15-3), were predicted. The prediction methodology combines analytical techniques ranging from a three dimensional finite element analysis of a notched specimen to a micromechanical model of a single fiber. In the B/Al laminates, a fiber failure criteria based on the axial and shear stress in the fiber accurately predicted laminate failure for a variety of layups and notch-length to specimen-width ratios with both circular holes and sharp notches when matrix plasticity was included in the analysis. For the SCS-6/Ti-15-3 laminates, a fiber failure based on the axial stress in the fiber correlated well with experimental results for static and post fatigue residual strengths when fiber matrix debonding and matrix cracking were included in the analysis. The micromechanics based strength prediction methodology offers a direct approach to strength prediction by modeling behavior and damage on a constituent level, thus, explicitly including matrix nonlinearity, fiber matrix debonding, and matrix cracking.
机译:开发了一种基于分析微力学的强度预测方法,以预测缺口金属基复合材料的失效。预测了两种金属基复合材料硼/铝(B / Al)和碳化硅/钛(SCS-6 / Ti-15-3)的应力应变行为和缺口强度。预测方法结合了分析技术,从带缺口样品的三维有限元分析到单纤维的微机械模型。在B / Al层压板中,基于纤维中的轴向应力和剪切应力的纤维破坏准则可准确预测各种叠层的层压板破坏,以及当基体可塑性达到一定值时,圆孔和尖锐缺口的缺口长度与样品宽度之比包含在分析中。对于SCS-6 / Ti-15-3层压板,当分析中包括纤维基体剥离和基体开裂时,基于纤维中轴向应力的纤维破坏与静态和疲劳后残余强度的实验结果密切相关。基于微力学的强度预测方法通过在组成层次上对行为和损伤进行建模,从而提供了一种直接的强度预测方法,因此,可以明确地包括基体非线性,纤维基体剥离和基体开裂。

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    Bigelow, C. A.;

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  • 年度 1992
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