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Computational assessment of cracks under strain-gradient plasticity

机译:应变梯度塑性下裂纹的计算评估

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With introducing the strain gradient into plasticity theory, the crack field singularity at the crack tip changes. Characterization of the crack in strain-gradient dependent materials has not found a common consensus. In the present work the crack tip field is systematically investigated within the frame of the strain-gradient plasticity using the element-free Galer-kin method. Under both small scale yielding and finite yielding conditions the crack field in strain-gradient plasticity consists of three zones: The elastic K-field, the known plastic HRR-field dominated by the known energy release rate, g, and the hyper-singular stress field which cannot be characterized by the known fracture mechanics parameters. Effects of the finite strains have been considered for both small scale yielding and finite cracked specimens. The computational results show that the finite strains do not change the characterization of the crack tip fields under the strain-gradient plasticity. In all investigated cases the hyper-singular zone is small (r < g/σ_0) and well contained by the HRR zone under the g dominance condition. The hyper-singular zone is in the size of r/(g/σ_0) and may grow with the material length, but decrease with applied load. The known elastic-plastic fracture mechanics parameter, g, can be directly applied to characterize the crack under strain-gradient plasticity, within the intrinsic material length much smaller than the overall component size, l < 0.1 %L_0. In this case the strain-gradient term in the gradient plasticity will not affect description of cracks.
机译:通过将应变梯度引入塑性理论中,裂纹尖端处的裂纹场奇异性发生了变化。应变梯度相关材料中裂纹的表征尚未达成共识。在目前的工作中,使用无元素的Galer-kin方法在应变梯度可塑性框架内系统地研究了裂纹尖端场。在小规模屈服和有限屈服条件下,应变梯度塑性的裂纹场均由三个区域组成:弹性K场,由已知能量释放率g和超奇异应力控制的已知塑性HRR场无法通过已知的断裂力学参数来表征的领域。对于小尺寸屈服试样和有限裂纹试样,都已经考虑了有限应变的影响。计算结果表明,在应变梯度塑性下,有限应变不会改变裂纹尖端场的特征。在所有调查的情况下,超奇异区域很小(r

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