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首页> 外文期刊>Journal of Computational Science and Technology >Finite Element Simulation of Tensile Tests for α-Iron in the Presence of Hydrogen
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Finite Element Simulation of Tensile Tests for α-Iron in the Presence of Hydrogen

机译:氢存在下α-铁拉伸试验的有限元模拟

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References(22) In ductile fracture, the cup and cone fracture that occurs at the neck of a specimen is produced by the coalescence of internal voids which in turn grow by plastic deformation under the influence of a prevailing stress triaxiality. In this work, our concern is with regard to hydrogen embrittlement phenomena, where the presence of hydrogen influences the ductile fracture. We correlate the micro-scale void growth to the macro-scale deformation at the center part of the tensile test model of α-Iron to simulate the hydrogen effects on macro- and micro-scale model simultaneously. The tensile test model is used to determine the hydrogen effects at the macro-scale while the internal void model is used to determine the influence of hydrogen on the void growth. Loads in micro-scale are imported from the displacement results at the center part of the macro-scale tensile model. Our findings show that the proposed approach is feasible and can be implemented to correlate the micro-scale void growth to the macro-scale deformation at the center part of the tensile test model of α-Iron in the presence of hydrogen. Due to limitations of experimental data for hydrogen-material interaction, only α-Iron is considered in this study.
机译:参考文献(22)在延性断裂中,发生在试样颈部的杯状和圆锥形断裂是由内部空隙的聚结而产生的,内部空隙的聚结又通过塑性变形在主要应力三轴性的影响下增长。在这项工作中,我们关注的是氢脆现象,其中氢的存在会影响韧性断裂。我们将微尺度的空隙生长与α-铁拉伸试验模型中心部分的宏观尺度变形相关联,以同时模拟氢对宏观尺度和微观尺度模型的影响。拉伸测试模型用于确定宏观尺度上的氢效应,而内部空隙模型用于确定氢对空隙生长的影响。从宏观拉伸模型中心部分的位移结果中导入微观载荷。我们的发现表明,所提出的方法是可行的,并且可以实现,以在存在氢气的情况下,将微尺度的空隙生长与α-铁拉伸试验模型中心部分的宏观变形相关联。由于氢材料相互作用的实验数据有限,本研究仅考虑α-铁。

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