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Micromechanical modeling of grain boundary resistance to cleavage crack propagation in ferritic steels

机译:铁素体钢晶界抗裂裂纹扩展的微力学模型

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In ferritic steels a propagating cleavage microcrack changes its propagation direction as it advances from grain to grain. This is due to differences in the orientation of the cleavage planes of two neighboring grains. In order to reach a cleavage plane in a new grain, a microcrack must first penetrate the grain boundary. Grain boundaries therefore act as natural barriers in cleavage fracture. The influence of a grain boundary and the associated misorientation in cleavage planes on crack arrest is here examined using a 3D finite element model with axisymmetric periodicity, representing two grains whose cleavage planes are tilted and twisted relative to each other. The temperature dependent mechanical properties of ferrite are modeled using a temperature dependent viscoplastic response. The development of the crack front as the microcrack penetrates through a grain boundary is here presented. The influence of the twist misorientation on the critical grain size, defined as the largest grain size that can arrest a rapidly propagating microcrack, is examined in a temperature range corresponding to the ductile to brittle transition (DBT) region. It is shown that when both tilt and twist misorientation are present, the influence of tilt and twist, respectively, on crack growth resistance can be decoupled.
机译:在铁素体钢中,随着裂纹的扩散,裂纹从晶粒到晶粒的传播方向发生改变。这是由于两个相邻晶粒的分裂面的取向不同。为了到达新晶粒的分裂平面,微裂纹必须首先穿透晶粒边界。因此,晶界是乳沟断裂的天然屏障。此处使用具有轴对称周期性的3D有限元模型检查了晶界和解理平面中相关的取向错误对裂纹止裂的影响,该3D有限元模型代表了两个晶粒,它们的解理面相对于彼此倾斜和扭曲。铁氧体的温度相关的机械性能使用温度相关的粘塑性响应进行建模。此处介绍了随着微裂纹穿透晶界而产生的裂纹前沿。在与韧性到脆性转变(DBT)区域相对应的温度范围内,检查了扭曲取向错误对临界晶粒尺寸的影响,该临界晶粒尺寸定义为可以阻止快速传播的微裂纹的最大晶粒尺寸。结果表明,当同时存在倾斜和扭曲取向错误时,可以分别消除倾斜和扭曲对裂纹扩展阻力的影响。

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