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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Experimental and numerical study of the effects of porosity on fatigue crack initiation of HPDC magnesium AM60B alloy
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Experimental and numerical study of the effects of porosity on fatigue crack initiation of HPDC magnesium AM60B alloy

机译:孔隙率对HPDC镁AM60B合金疲劳裂纹萌生影响的实验和数值研究

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摘要

In this study, high-cycle fatigue tests were conducted on specimens machined from 50 sequentially cast instrument panels made from high-pressure die-cast (HPDC) AM60B magnesium alloy. The fatigue life data were described by a two-parameter Weibull model. SEM analyses on the fracture surfaces showed the initiation of the fatigue cracks occurred exclusively at casting pores close to the machined surfaces. The dependence of local maximum plastic shear strain range on casting pore features and loading conditions was studied quantitatively by finite element simulation including varying the pore size, geometry and spacing, proximity to the free surface, as well as loading ratios. A constitutive plasticity model, the classic Ohno-Wang's kinematic hardening rule, was employed to simulate the isothermal monotonic and cyclic behaviour of magnesium AM60B alloy under uniaxial loading. The simulation results illuminated the microstructure-property relations for fatigue crack incubation and the resultant scatter in fatigue life.
机译:在这项研究中,对由50个由高压压铸(HPDC)AM60B镁合金制成的顺序铸造仪表板加工而成的样品进行了高周疲劳测试。疲劳寿命数据由两参数威布尔模型描述。断裂表面的SEM分析表明,疲劳裂纹的产生仅发生在靠近机加工表面的铸孔处。通过有限元模拟定量研究了局部最大塑性剪切应变范围对铸件孔隙特征和加载条件的依赖性,包括改变孔径,几何形状和间距,与自由表面的接近程度以及加载比率。本构可塑性模型是经典的Ohno-Wang运动学硬化规则,用于模拟单轴载荷下镁AM60B合金的等温单调和循环行为。仿真结果阐明了疲劳裂纹温育的微观结构与性能的关系以及由此导致的疲劳寿命的分散。

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