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首页> 外文期刊>Modelling and simulation in materials science and engineering >Effect of material inhomogeneity on the cyclic plastic deformation behavior at the microstructural level: Micromechanics-based modeling of dual-phase steel
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Effect of material inhomogeneity on the cyclic plastic deformation behavior at the microstructural level: Micromechanics-based modeling of dual-phase steel

机译:材料不均匀性对微观结构循环塑性变形行为的影响:基于微力学的双相钢建模

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The microstructure of dual-phase (DP) steels typically consists of a soft ferrite matrix with dispersed islands of hard martensite phase. Due to the composite effect of ferrite and martensite, DP steels exhibit a unique combination of strain hardening, strength and ductility. A microstructure-based micromechanical modeling approach is adopted in this work to capture the tensile and cyclic plastic deformation behavior of DP steel. During tensile straining, strain incompatibility between the softer ferrite matrix and the harder martensite phase arises due to a difference in the flow characteristics of these two phases. Microstructural-level inhomogeneity serves as the initial imperfection, triggering strain incompatibility, strain partitioning and finally shear band localization during tensile straining. The local deformation in the ferrite phase is constrained by adjacent martensite islands, which locally results in stress triaxiality development in the ferrite phase. As the martensite distribution varies within the microstructure, the stress triaxiality also varies in a band within the microstructure. Inhomogeneous stress and strain distribution within the softer ferrite phase arises even during small tensile straining because of material inhomogeneity. The magnitude of cyclic plastic deformation within the softer ferrite phase also varies according to the stress distribution in the first-quarter cycle tensile loading. Accumulation of tensile/compressive plastic strain with number of cycles is noted in different locations within the ferrite phase during both symmetric stress and strain controlled cycling. The basic mode of cyclic plastic deformation in an inhomogeneous material is cyclic strain accumulation, i.e. ratcheting. Microstructural inhomogeneity results in cyclic strain accumulation in the aggregate DP material even in symmetric stress cycling.
机译:双相(DP)钢的微观结构通常由软的铁素体基质和分散的硬马氏体相组成。由于铁素体和马氏体的复合作用,DP钢表现出应变硬化,强度和延展性的独特组合。在这项工作中采用基于微观结构的微机械建模方法来捕获DP钢的拉伸和循环塑性变形行为。在拉伸应变过程中,由于这两个相的流动特性不同,在较软的铁素体基体和较硬的马氏体相之间出现了应变不相容性。在拉伸应变过程中,微观结构水平的不均匀性是最初的缺陷,引发了应变的不相容性,应变的分配以及最终的剪切带局部化。铁素体相中的局部变形受到相邻的马氏体岛的约束,这局部导致铁素体相中的应力三轴性发展。当马氏体分布在微观结构内变化时,应力三轴性也在微观结构内的能带中变化。即使在较小的拉伸应变过程中,由于材料的不均匀性,在较软的铁素体相中也会出现不均匀的应力和应变分布。在较软的铁素体相中,周期性塑性变形的大小也根据第一季度循环拉伸载荷中的应力分布而变化。在对称应力和应变控制循环期间,在铁素体相内的不同位置都记录了随着循环次数而增加的拉伸/压缩塑性应变。非均质材料中循环塑性变形的基本模式是循环应变累积,即棘轮。即使在对称应力循环中,微观结构的不均匀性也会导致聚集的DP材料中出现循环应变累积。

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