Liu Sitian, Huang Peng, Sun Xi, Zeng Wenqi, Zhang Jiatong, Zu Guoyin
School of Materials Science and Engineering, Northeastern University, Shenyang 110819, China.
Materials (Basel). 2023 Jan 31;16(3):1226. doi: 10.3390/ma16031226.
In this paper, an aluminum foam sandwich (AFS) was prepared by the rolling composite-powder metallurgy method, and its fatigue properties were studied. It was compared with an AFS made by the adhesive method to study its fatigue properties more directly. In this experiment, the fatigue performance was investigated by studying the microscopic interface, fatigue life, deflection curve, and failure mode. The results show that the fatigue life of an AFS with the rolling composite-powder metallurgy method is much longer than that with the adhesive method. The failure mode of an AFS made by the rolling composite-powder metallurgy method is shear failure, and that of an AFS made by the adhesive method is shear failure and interface debonding. An AFS with the rolling composite-powder metallurgy method has better fatigue properties. This paper also explored the fatigue damage model using the fatigue modulus method, and the polynomial fitting method has a higher fitting degree.
本文采用轧制复合-粉末冶金法制备了泡沫铝夹芯板(AFS),并对其疲劳性能进行了研究。将其与采用粘结法制备的AFS进行比较,以便更直接地研究其疲劳性能。在本实验中,通过研究微观界面、疲劳寿命、挠度曲线和失效模式来考察疲劳性能。结果表明,采用轧制复合-粉末冶金法制备的AFS的疲劳寿命远长于采用粘结法制备的AFS。采用轧制复合-粉末冶金法制备的AFS的失效模式为剪切失效,而采用粘结法制备的AFS的失效模式为剪切失效和界面脱粘。采用轧制复合-粉末冶金法制备的AFS具有更好的疲劳性能。本文还采用疲劳模量法探索了疲劳损伤模型,多项式拟合法具有更高的拟合度。