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具有冶金结合界面的泡沫铝夹芯板在低速冲击下的抗压痕性能研究。

Investigation of the Indentation Resistance of Aluminum Foam Sandwich Panels with Metallurgical Bonding Interfaces under Low-Velocity Impact.

作者信息

Gao Qiang, Su Xixi, Huang Peng, Sun Xi, Feng Zhanhao, Zu Guoyin

机构信息

School of Materials Science and Engineering, Northeastern University, Shenyang 110819, China.

出版信息

Materials (Basel). 2023 Mar 10;16(6):2221. doi: 10.3390/ma16062221.

Abstract

The impact resistance of aluminum foam sandwich panels (AFS) with metallurgical bonding interfaces prepared by the powder cladding rolling method was investigated. Low-velocity impact tests were conducted by using a drop-weight impact facility to explore the dynamic mechanical behavior, deformation and damage mechanisms, and energy absorption of AFS with metallurgical bonding interfaces. The effects of variation of impact energy, panel thickness, and specimen density on the energy absorption performance of AFS were quantitatively evaluated by energy absorption indicators. The results indicate that the load-displacement curve illustrates prominent three-stage characteristics when the impact energy is 120 J containing the front panel yielding stage, the foam core's compressive and shear failure stage, and the back panel fracture stage. The impact strength of the sandwich structure increases with increasing panel thickness and specimen density. The AFS with metallurgical bonding interfaces presents favorable energy absorption efficiency under low velocity.

摘要

研究了采用粉末包覆轧制方法制备的具有冶金结合界面的泡沫铝夹芯板(AFS)的抗冲击性能。利用落锤冲击试验装置进行了低速冲击试验,以探究具有冶金结合界面的AFS的动态力学行为、变形及损伤机制和能量吸收情况。通过能量吸收指标定量评估了冲击能量、板厚和试样密度的变化对AFS能量吸收性能的影响。结果表明,当冲击能量为120 J时,载荷-位移曲线呈现出显著的三阶段特征,包括面板屈服阶段、泡沫芯的压缩和剪切破坏阶段以及背板断裂阶段。夹芯结构的冲击强度随板厚和试样密度的增加而提高。具有冶金结合界面的AFS在低速下具有良好的能量吸收效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb57/10051390/141881e08e5e/materials-16-02221-g001.jpg

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