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Dislocation pile-up and cleavage: effects of strain gradient plasticity on micro-crack initiation in ferritic steel

机译:脱位堆积和切割:应变梯度可塑性对铁素体钢微裂纹起始的影响

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摘要

Micro-cracks in ferritic steel often originate from broken or debonded carbide particles, or from cleavage of the ferrite matrix. Experiments in literature show that dislocation pile-ups at grain boundaries or particles predominantly induce micro-cracks in ferritic steel. On the other hand, the ferrite can also arrest nucleated micro-cracks owing to local plastic deformations which reduce the stresses at the crack tip. In the present study, the competition between these mechanisms is investigated by cell model simulations using effective gradient plasticity (scalar gradient plasticity) for the ferrite. This theory allows to model the dislocation pile-up by suitable interface conditions. Potential cleavage of the ferrite or failure of the carbide is modelled by a cohesive zone. Parameter studies are performed with respect to the size of the particle and the strengths of ferrite and carbide.
机译:铁素体钢中的微裂纹通常来自破碎或脱粘碳化物颗粒,或从铁氧体基质的切割。 文献中的实验表明,晶界或颗粒处的位错堆积主要诱导铁素体钢中的微裂纹。 另一方面,由于局部塑性变形,铁氧体也可以抑制核心的微裂纹,这减小了裂缝尖端处的应力。 在本研究中,通过用于铁氧体的有效梯度可塑性(标量梯度塑性)来研究这些机制之间的竞争。 该理论允许通过合适的界面条件模拟位错堆积。 铁氧体或碳化物失效的潜在切割由粘性区域进行建模。 参数研究是关于颗粒的尺寸和铁氧体和碳化物的强度的。

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