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Microstructural influences on the fatigue crack initiation and propagation mechanisms in hypo-eutectic Al-Si cast alloys

机译:对脱氧型Al-Si铸造合金疲劳裂纹引发和繁殖机制的微观结构影响

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Al-Si cast alloys are accompanied by different defects and microstructural heterogeneities like porosity, varying secondary dendrite arm spacings (SDAS) and multiple appearances of the eutectic. These issues are well known but technically difficult to prevent for the industry. To improve the light weight performance of cast aluminum alloys the present work deals with influences on crack initiation and propagation mechanisms of such heterogeneities in the high-cycle-fatigue (HCF) and very-high-cycle-fatigue (VHCF) regime for the two hypo-eutectic cast aluminum alloys AlSi8Cu3 (in-series sand castings) and AlSi7Mg0.3 (laboratory gravity die castings). Furthermore, the occurrence of facet-regions and their role in early and late state of fatigue damage evolution is discussed by showing results from modified Kitagawa-Takahashi analysis and ex-situ computed tomography investigation during intermitted HCF experiments. In the early HCF regime crack initiation starts at multiple pores. Due to coalescence of these defects, shear-stress-controlled crack propagation along slip bands leads to the occurrence of facets. In the VHCF regime, porosity provides strong scattering of the number of cycles to failure. A reduction in SDAS increases the fatigue strength significantly. However, in absence of porosity fatigue crack initiation and propagation is controlled by shear stresses on facet-like slip-planes. Additionally, the barrier role against dislocation movement of eutectic regions can be shown by means of these specimens.
机译:Al-Si铸造合金伴随着不同的缺陷和微观结构异质性,如孔隙率,不同的次级树枝状臂间距(SDA)和共晶的多个外表。这些问题是众所周知的,但技术上难以防止行业。为了提高铸铝合金的轻质性能,目前的工作涉及对两者高循环疲劳(HCF)和非常高循环 - 疲劳(VHCF)制度的这种异质性的裂纹启动和传播机制的影响Hypo-共晶铸铝铝合金Alsi8Cu3(系列砂铸件)和Alsi7mg0.3(实验室重力压铸)。此外,通过显示修饰的基塔哥瓦哈什基分析和在间歇性HCF实验期间,通过显示改良的基塔哥 - 高仓分析和前所未计算的断层扫描研究的结果,讨论了面积的发生及其在早期和晚期疲劳损伤进化状态。在早期的HCF制度裂纹启动开始于多个孔隙。由于这些缺陷的聚结,沿着滑动带的剪切应力控制的裂纹传播导致面部的发生。在VHCF制度中,孔隙度提供了对失败的循环次数的强烈散射。 SDA的减少显着增加了疲劳强度。然而,在没有孔隙率疲劳疲劳裂纹裂纹裂纹和传播的情况下,通过剪切应力进行剖面状滑刨。另外,可以通过这些样本来示出对共晶区域的脱位运动的阻隔作用。

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