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Influence of grain size on arrest of a dynamically propagating cleavage crack in ferritic steels-micromechanics

机译:晶粒尺寸对铁素体钢中动态传播的劈裂裂纹停滞的影响-微力学

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摘要

Cleavage fracture in ferritic steels is controlled by several critical steps. First a microcrack must nucleate, grow and overcome barriers, such as grain boundaries. The latter is examined here by use of a periodic, axisymmetric model representing two grains. A microcrack nucleated at the center in one grain is driven by a constant remotely applied stress towards the second grain. The cleavage planes of the grain in which the microcrack is nucleated coincide with the principal loading direction. In the adjacent grain, due to misalignment in possible cleavage planes, the propagation direction changes and separation occurs in mixed mode, involving both normal and shear separations. The temperature dependence of the mechanical properties of the material is accounted for by use of a temperature dependent elasto viscoplastic material model. The largest grain size that can arrest a rapidly propagating microcrack is defined as the critical grain size. The effects of stress state and temperature on the critical grain size are examined. The influence of mismatch in lattice orientation between two adjacent grains in terms of a tilt angle is both qualitatively and quantitatively described. It is shown that the critical grain size is influenced by plastic geometry change and pre-straining, which depend on the applied stress state. The results also show that a microcrack can be arrested in an adjacent grain under specific conditions.
机译:铁素体钢的劈裂断裂由几个关键步骤控制。首先,微裂纹必须成核,生长并克服诸如晶界之类的障碍。在这里,通过使用代表两个晶粒的周期性轴对称模型来检查后者。在一个晶粒的中心成核的微裂纹由向第二晶粒施加的恒定的远程施加的应力驱动。在其中微裂纹成核的谷物的分裂面与主加载方向一致。在相邻的谷物中,由于可能的分裂平面中的未对准,传播方向发生变化,并且分离以混合模式发生,包括法向和剪切分离。通过使用温度相关的弹性粘塑性材料模型来解释材料的机械性能的温度相关性。可以阻止迅速传播的微裂纹的最大晶粒尺寸定义为临界晶粒尺寸。研究了应力状态和温度对临界晶粒尺寸的影响。定性和定量地描述了两个相邻晶粒之间晶格取向不匹配的影响。结果表明,临界晶粒尺寸受塑性几何形状变化和预应变的影响,这取决于所施加的应力状态。结果还表明,在特定条件下,微裂纹可被阻止在相邻的晶粒中。

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