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An investigation of the effect of hydrogen on ductile fracture using a unit cell model

机译:使用晶胞模型研究氢对韧性断裂的影响

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The effect of hydrogen on the ductility of metals is studied by incorporating the hydrogen diffusion process and the hydrogen enhanced localized plasticity (HELP) into a finite element program. A series of unit cell analyses are conducted under various stress states and the loading speed resulting in a steady state hydrogen distribution is determined. The evolution of the local stress and deformation states results in hydrogen redistribution in the material, which in turn changes the material's flow property due to the HELP effect. It is found that localized plastic deformation plays a major role in increasing the hydrogen concentration due to the newly generated trapping sites. The HELP effect promotes material failure by accelerating void growth, which is affected by the macroscopic stress state subjected by the material unit characterized by the stress triaxiality and the Lode parameter. For a constant Lode parameter, the effect of HELP on void growth and failure strain reduction increases with the stress triaxiality. For a constant stress triaxiality, the effect of HELP is highest when the Lode parameter is near 0. As the Lode parameter increases towards 1 or decreases towards -1, the HELP effect gradually diminishes. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:通过将氢扩散过程和氢增强的局部可塑性(HELP)纳入有限元程序中,研究了氢对金属延展性的影响。在各种应力​​状态下进行了一系列晶胞分析,并确定了导致稳态氢分布的加载速度。局部应力和变形状态的演变导致材料中的氢重新分布,这又由于HELP效应而改变了材料的流动性。发现由于新产生的俘获位点,局部塑性变形在增加氢浓度中起主要作用。 HELP效应通过加速空洞增长来促进材料失效,空洞增长受以应力三轴性和Lode参数为特征的材料单元所承受的宏观应力状态的影响。对于恒定的Lode参数,HELP对孔隙增长和破坏应变降低的影响随应力三轴性而增加。对于恒定的应力三轴性,当Lode参数接近0时,HELP的效果最高。随着Lode参数朝1增大或朝-1减小,HELP效果逐渐减小。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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