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Computational simulation of matrix micro-slip bands in SiC/Ti-15 composite

机译:SiC / Ti-15复合材料中基体微滑动带的计算模拟

摘要

Computational simulation procedures are used to identify the key deformation mechanisms for (0)(sub 8) and (90)(sub 8) SiC/Ti-15 metal matrix composites. The computational simulation procedures employed consist of a three-dimensional finite-element analysis and a micromechanics based computer code METCAN. The interphase properties used in the analysis have been calibrated using the METCAN computer code with the (90)(sub 8) experimental stress-strain curve. Results of simulation show that although shear stresses are sufficiently high to cause the formation of some slip bands in the matrix concentrated mostly near the fibers, the nonlinearity in the composite stress-strain curve in the case of (90)(sub 8) composite is dominated by interfacial damage, such as microcracks and debonding rather than microplasticity. The stress-strain curve for (0)(sub 8) composite is largely controlled by the fibers and shows only slight nonlinearity at higher strain levels that could be the result of matrix microplasticity.
机译:计算仿真程序用于确定(0)(sub 8)和(90)(sub 8)SiC / Ti-15金属基复合材料的关键变形机制。所采用的计算模拟程序包括三维有限元分析和基于微力学的计算机代码METCAN。分析中使用的相间特性已使用METCAN计算机代码与(90)(sub 8)实验应力-应变曲线进行了校准。仿真结果表明,尽管剪应力足够高,以致在基体中大部分集中在纤维附近形成滑移带,但在(90)(sub 8)复合材料的情况下,复合材料应力-应变曲线的非线性是主要受界面破坏(例如微裂纹和脱粘)的影响,而不是微观可塑性。 (0)(sub 8)复合材料的应力-应变曲线在很大程度上受纤维控制,并且在较高应变水平下仅显示出轻微的非线性,这可能是基体微塑性的结果。

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