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Modeling of hydrogen-assisted ductile crack propagation in metals and alloys

机译:氢辅助金属和合金中延性裂纹扩展的建模

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This paper presents a finite element study of the hydrogen effect on ductile crack propagation in metals and alloys by linking effects at the micro-structural level (i.e., void growth and coalescence) to effects at the macro-level (i.e., bulk material deformation around a macroscopic crack). The purpose is to devise a mechanics methodology to simulate the conditions under which hydrogen enhanced plasticity induces fracture that macroscopically appears to be brittle. The hydrogen effect on enhanced dislocation mobility is described by a phenomenological constitutive relation in which the local flow stress is taken as a decreasing function of the hydrogen concentration which is determined in equilibrium with local stress and plastic strain. Crack propagation is modeled by cohesive elements whose traction separation law is determined through void cell calculations that address the hydrogen effect on void growth and coalescence. Numerical results for the A533B pressure vessel steel indicate that hydrogen, by accelerating void growth and coalescence, promotes crack propagation by linking simultaneously a finite number of voids with the crack tip. This "multiple-void" fracture mechanism knocks down the initiation fracture toughness of the material and diminishes the tearing resistance to crack propagation.
机译:本文通过将微观结构水平的影响(即空洞生长和聚结)与宏观水平的影响(即周围的大块材料变形)联系起来,对氢对金属和合金中延性裂纹扩展的影响进行了有限元研究。宏观裂纹)。目的是设计一种力学方法,以模拟氢增强可塑性引起宏观上看起来很脆的断裂的条件。氢对位错迁移率提高的影响是通过一种现象本构关系来描述的,其中局部流动应力被视为氢浓度的降低函数,该氢浓度的降低函数是与局部应力和塑性应变平衡确定的。裂纹的扩展是通过粘性单元建模的,该单元的牵引力分离定律是通过空泡单元计算确定的,该计算解决了氢对空泡生长和聚结的影响。 A533B压力容器钢的数值结果表明,氢气通过加速孔隙的增长和聚结,同时将有限数量的孔隙与裂纹尖端相连,从而促进了裂纹的扩展。这种“多孔”断裂机理降低了材料的初始断裂韧性,并降低了对裂纹扩展的抗撕裂性。

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