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Effects of microstructure and casting defects on the fatigue behavior of the high-pressure die-cast AlSi9Cu3(Fe) alloy

机译:微观结构和铸造缺陷对高压模铸造铝合金疲劳行为的影响

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High-pressure die-cast (HPDC) components are being increasingly used due to good flexibility and high productivity. These aspects make HPDC suitable to produce several mass components, especially for the automotive sector. Due to the rapid filling of the die and high cooling rate, the process generally leads to the formation of a wide variety of defects, such as porosity and oxide films. Such defects might act as starting points for fatigue cracks and thus deteriorating the fatigue behavior of the casting. To this respect, the fatigue behavior of die cast aluminum alloys is an important aspect to consider when assessing the performance of complex castings for automotive applications. In the light of these aspects, the goal of this work is to describe how the microstructure affects the fatigue crack initiation and propagation. Die cast AlSi9Cu3(Fe) specimens were produced by means of a specifically designed die and the microstructure was preliminary characterized. Uniaxial fatigue tests were performed at load control with a stress ratio of R = 0.1 and at a single level of stress amplitude. After the fatigue tests, the samples were investigated to assess the propagation of the fatigue cracks; the starting points of cracks were specifically identified and the obtained data suggested how defects strongly influence the damage mechanism of the material.
机译:高压压铸(HPDC)组件正在越来越多地使用,由于良好的柔软性和高生产率。这些方面做出HPDC适合生产一些质量组件,尤其是用于汽车领域。由于模具的快速填充和高冷却速度时,处理通常导致的各种各样的缺陷,如孔隙率和氧化膜的形成。这样的缺陷可能作为起点的疲劳裂纹,从而恶化铸件的疲劳特性。到这方面,压铸铝合金的疲劳行为是评估用于汽车应用的复杂的铸件的性能时要考虑的一个重要方面。在这些方面的光,这一工作的目的是描述微结构如何影响疲劳裂纹萌生和扩展。压铸AlSi9Cu3(Fe)的样品通过一个专门设计的模具的装置产生和显微组织进行了初步表征。单轴疲劳试验是在负载控制,其中R = 0.1的应力比和应力在振幅的单一电平来进行。疲劳试验后,将样品进行了研究,以评估疲劳裂纹的传播;裂纹的开始点被具体确定和所获得的数据表明如何缺陷强烈地影响材料的破坏机理。

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