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Impact of second phase morphology and orientation on the plastic behavior of dual-phase steels

机译:二相形态与取向对双相钢塑性行为的影响

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Martensite volume fraction, composition and grain size are the known primary factors controlling the mechanical behavior of ferrite-martensite dual-phase steels. Recently, excellent performances of dual-phase steels with a fibrous microstructure have been reported. However, the precise role of martensite morphology and orientation has not been thoroughly elucidated yet. This study develops a two-scale micromechanical modeling strategy in order to investigate the effect of particle morphology and orientation on the elastoplastic behavior of dual-phase steels. Finite element simulations are carried out on 3D periodic unit cells, each having a given orientation and volume fraction of spheroidal particles. The overall response is obtained by averaging the response of grains with different orientations, thus bypassing the need for costly full-field simulations on representative volume elements of realistic microstructures. A detailed parameter study systematically investigates the effect of particle morphology and orientation at grain level and at grain assembly level. While particle morphology and orientation effects lead to significant differences at grain level in terms of strain hardening behavior and back-stress development, the impact of the phase morphology at the homogenized multigrain level is almost negligible up to the onset of necking. However, the mechanical fields at the micro-scale are considerably influenced by both particle morphology and orientation, and are expected to largely impact the damage behavior through, among others, generating large grain-to-grain heterogeneities.
机译:马氏体体积分数,组成和晶粒尺寸是控制铁氧体 - 马氏体双相钢的力学行为的已知主要因素。最近,已经报道了具有纤维组织的双相钢的优异性能。然而,马氏体形态和定位的确切作用尚未彻底阐明。本研究开发了一种双级微机械建模策略,以探讨颗粒形态和取向对双相钢弹性塑性行为的影响。有限元模拟在3D周期性单元电池上进行,每个单元具有给定的方向和球形颗粒的体积分数。通过平均具有不同取向的谷物的响应来获得整体响应,从而绕过对现实微观结构的代表性容量元素的昂贵全场模拟。详细的参数研究系统地研究了粒子水平和晶粒组装水平的粒子形态和取向的影响。虽然粒子形态和取向效果导致晶粒水平的显着差异,但在应变硬化行为和背应激发展方面,相位形态的影响几乎可以忽略不可忽略的缩颈。然而,微尺度的机械场受到粒子形态和取向的显着影响,并且预期在很大程度上影响通过产生大型谷物到晶粒异质性的损伤行为。

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