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Analysis of fatigue damage of aluminium alloy under multiaxial random vibration

机译:多轴随机振动下铝合金疲劳损伤分析

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Many studies have investigated the fatigue damage of materials under vibration. However, the mechanism of vibration-induced fatigue damage remains unclear, and no method has been established for evaluating the vibration fatigue strength. Therefore, it is important to establish an evaluation method for the vibration fatigue strength of materials to ensure appropriate strength in their design. In this study, we performed experiments to investigate the fracture mechanism of a material under multi-axial random vibration. We selected aluminium alloy A5056 as the test material and employed button-head-type specimens with a notch. The multi-axial random vibration experiments were performed at different acceleration inputs (10, 20, 30, 40, 50, 60, and 70 G_(rms)) within a frequency band of 10-5000 Hz. During the vibration tests, we conducted observations of vibration behaviour. After the vibration tests, we observed the fracture surfaces of the specimens using a scanning electron microscope. The results show that the fatigue fracture was due to the bending resonance mode for the given shape and dimensions of the specimens used in this study. In addition, cracks initiated at different areas on the fracture surface and later propagated; subsequently, the cracks coalesced. Finally, we discussed whether the fatigue life of materials subjected to vibration can be predicted using finite element analysis.
机译:许多研究已经研究了振动下材料的疲劳损伤。然而,振动诱导的疲劳损伤的机制仍然不明确,并且没有建立用于评估振动疲劳强度的方法。因此,重要的是建立材料振动疲劳强度的评价方法,以确保其设计中适当的强度。在这项研究中,我们进行了实验,以研究多轴随机振动下材料的断裂机制。我们选择了铝合金A5056作为测试材料,采用纽扣型试样,带有槽口。在10-5000Hz的频带内的不同加速度输入(10,20,30,40,50,60和70g_(rms))执行多轴随机振动实验。在振动测试期间,我们进行了振动行为的观察。在振动试验之后,我们使用扫描电子显微镜观察试样的断裂表面。结果表明,疲劳裂缝是由于本研究中使用的给定形状和尺寸的弯曲共振模式。此外,在裂缝表面和后来的不同区域发起的裂缝;随后,裂缝结合。最后,我们讨论了使用有限元分析可以预测经受振动进行振动的疲劳寿命。

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