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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Effect of Hydrostatic Pressure on the 3D Porosity Distribution and Mechanical Behavior of a High Pressure Die Cast Mg AZ91 Alloy
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Effect of Hydrostatic Pressure on the 3D Porosity Distribution and Mechanical Behavior of a High Pressure Die Cast Mg AZ91 Alloy

机译:静水压力对高压压铸镁AZ91合金3D孔隙率分布和力学行为的影响

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摘要

A limiting factor of high pressure die cast (HPDC) Mg alloys is the presence of porosity, which has a detrimental effect on the mechanical strength and gives rise to a large variability in the ductility. The application of hydrostatic pressure after casting is known to be beneficial to improve the mechanical response of HPDC Mg alloys. In this study, a combined experimental and simulation approach has been developed in order to investigate the influence of pressurization on the 3D porosity distribution and on the mechanical behavior of an HPDC Mg AZ91 alloy. Examination of about 10,000 pores by X-ray computed microtomography allowed determining the effect of hydrostatic pressure on the bulk porosity volume fraction, as well as the change in volume and geometry of each individual pore. The evolution of the 3D porosity distribution and mechanical behavior of a sub-volume containing 200 pores was also simulated by finite element analysis. Both experiments and simulations consistently revealed a decrease in the bulk porosity fraction and a bimodal distribution of the individual volume changes after the application of the pressure. This observation is associated with pores containing internal pressure as a result of the HPDC process. Furthermore, a decrease in the complexity factor with increasing volume change is observed experimentally and predicted by simulations. The pressure-treated samples have consistently higher plastic flow strengths.
机译:高压压铸(HPDC)Mg合金的一个限制因素是孔隙率的存在,它对机械强度产生不利影响,并导致延展性变化很大。已知在铸造后施加静水压力有利于改善HPDC Mg合金的机械响应。在这项研究中,已开发出一种组合的实验和模拟方法,以研究加压对HPDC Mg AZ91合金的3D孔隙率分布和机械性能的影响。通过X射线计算机断层照相术检查大约10,000个孔,可以确定静水压力对整体孔隙体积分数的影响,以及每个孔的体积和几何形状的变化。还通过有限元分析模拟了包含200个孔的子体积的3D孔隙度分布和力学行为的演变。实验和模拟都一致地表明,施加压力后,整体孔隙率的降低和单个体积变化的双峰分布。该观察结果与HPDC过程导致含有内部压力的孔有关。此外,实验观察到复杂度随体积变化的增加而降低,并通过模拟预测。经过压力处理的样品始终具有较高的塑性流动强度。

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