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Modeling the effects of microstructure on the tensile properties and micro-fracture behavior of Mo-Si-B alloys at elevated temperatures

机译:模拟微观结构对高温下Mo-Si-B合金拉伸性能和微断裂行为的影响

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摘要

A computational framework is developed to study the role of microstructure on the deformation behavior of Mo-Si-B alloys. A parametric range of idealized multi-phase microstructures of Mo-Si-B alloys are instantiated in 2D using Voronoi tessellation schemes and their deformation behavior modeled with the use of the finite element method. Continuum elements are used to model the constituent phases, while cohesive elements are used to model debonding at the interfaces of the intermetallic (A15 and T2) phases with the solid solution-strengthened Mo-ss matrix and cleavage fracture within the intermetallic phases. The deformation behavior of Mo-Si-B alloys is studied in terms of the simulated stress-strain response and microstructure evolution characteristics. Effects of various microstructure parameters, such as composition and clustering of intermetallic phases, on the tensile strength and ductility are also studied. (C) 2015 Elsevier Ltd. All rights reserved.
机译:建立了计算框架,以研究微观结构对Mo-Si-B合金变形行为的作用。使用Voronoi细分方案在二维中实例化了Mo-Si-B合金理想化多相组织的参数范围,并使用有限元方法对它们的变形行为进行了建模。连续体元素被用来模拟组成相,而内聚力元素被用来模拟金属间(A15和T2)相与固溶强化Mo-ss基质的界面处的脱键以及金属间相内的断裂。从模拟的应力-应变响应和微观组织演化特征出发,研究了Mo-Si-B合金的变形行为。还研究了各种微观结构参数,例如金属间相的组成和聚集对拉伸强度和延展性的影响。 (C)2015 Elsevier Ltd.保留所有权利。

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