材料科学
准静态过程
复合材料
铝
蚀刻(微加工)
消散
蜂巢
流离失所(心理学)
蜂窝结构
吸收(声学)
刚度
图层(电子)
物理
热力学
量子力学
心理治疗师
心理学
作者
Peng Sun,Xiaoqiong Zhang,Yinghou Jiao,Rongqiang Liu,Tao Wang
标识
DOI:10.1002/adem.202500856
摘要
To enhance the safety performance of traditional honeycomb material by reducing their instantaneous peak load during collisions, a chemical etching technique is employed to process 5052 aluminum honeycombs, fabricating honeycombs with gradient‐thickness cell walls (HGTCW) whose thickness varies linearly along the height direction. Quasistatic and low‐velocity impact compression tests are conducted using an electronic universal testing machine and drop‐weight impact tester, respectively, on both nonetched honeycombs with uniform cell walls (HUCW) and HGTCW, with etching heights of 50, 100, and 150 mm at varying impact velocities. Comparative analysis of energy dissipation mechanisms is performed through FEM using ABAQUS software. Results demonstrate that 5052 aluminum HGTCW can completely eliminate the peak load during compression, with the load exhibiting a gradual linear increase with displacement, until it reaches the plateau stage of the load–displacement curve. The stiffness of HGTCW exhibits a strong correlation with the etching height, showing a progressive reduction with increasing etching height. Furthermore, the specific energy absorption (SEA) of HGTCW improves significantly with increasing etching height and impact velocity. HGTCW specimens with different etching heights exhibit a 23.5–54.6% increase in SEA compared to HUCW specimens under dynamic impact conditions, demonstrating superior energy absorption characteristics.
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