Investigation on quasi-static compression of circular CFRP tubes: effect of EPP foam filling

被引:0
作者
Ozsoy, Mehmet Iskender [1 ]
Yalcin, Muhammet Muaz [1 ]
Yaren, Mehmet Faruk [1 ]
机构
[1] Sakarya Univ, Dept Mech Engn, TR-54050 Sakarya, Turkiye
关键词
EPP foam; CFRP tubes; Crashworthiness; Interaction effect; ENERGY-ABSORPTION CAPABILITY; CRUSHING BEHAVIOR; COMPOSITE TUBES; IMPACT; CRASHWORTHINESS; ORIENTATION; DESIGN;
D O I
10.1007/s40430-023-04310-x
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This research aims to experimentally investigate the effect of carbon fiber thickness and foam density on the crashworthiness of circular CFRP tubes under quasi-static axial loading. CFRP tubes were manufactured with different plies numbers of 6, 8 and 10. An apparatus was designed and used to obtain identical CFRP tubes related to the manufacturing process. Closed-cell expanded polypropylene (EPP) foam with two different densities as 30 kg/m(3) and 60 kg/m(3) was used as the reinforcement material to enhance the energy absorption capability. The highest absorbed energy value was obtained in the 60 kg/m(3) EPP foam-filled 10-ply CFRP tube as 10.430 J. In terms of the highest increase in absorbed energy by using EPP foam was obtained in the 60 kg/m(3) EPP foam-filled 6-ply CFRP tube at 101%. This increase remained at the level of 75% and 17% in the 8 and 10-ply CFRP tubes, respectively. As a result, the 60 kg/m(3) density EPP foam-filled 8-ply CFRP tube was the best crash box design in terms of the specific energy absorption and crush force efficiency parameters even though it did not absorb the highest energy. Lastly, aluminum tubes with a wall thickness of 2 mm were used to examine the EPP foam filling effect on the absorbed energy of the metallic tube. It is observed that the EPP foam is an efficient reinforcement material with composite tubes in contrast to aluminum ones.
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页数:14
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共 41 条
[1]   A review on crashworthiness studies of crash box structure [J].
Abdullah, N. A. Z. ;
Sani, M. S. M. ;
Salwani, M. S. ;
Husain, N. A. .
THIN-WALLED STRUCTURES, 2020, 153
[2]  
Agrawal D., 2016, SAE TECH PAP, P1, DOI [10.4271/2016-28-0050, DOI 10.4271/2016-28-0050]
[3]   Experimental and numerical investigation of static and dynamic axial crushing of circular aluminum tubes [J].
Al Galib, D ;
Limam, A .
THIN-WALLED STRUCTURES, 2004, 42 (08) :1103-1137
[4]   Investigation on energy absorption of natural and hybrid fiber under axial static crushing [J].
Albahash, Zeid Fadel ;
Ansari, M. N. M. .
COMPOSITES SCIENCE AND TECHNOLOGY, 2017, 151 :52-61
[5]   Plastic mechanism analysis of steel SHS strengthened with CFRP under large axial deformation [J].
Bambach, M. R. ;
Elchalakani, M. .
THIN-WALLED STRUCTURES, 2007, 45 (02) :159-170
[6]   Progressive failure of CFRP tubes reinforced with composite sandwich panels: Numerical analysis and energy absorption [J].
Chen, Yuan ;
Ye, Lin ;
Fu, Kunkun .
COMPOSITE STRUCTURES, 2021, 263
[7]   Energy absorption of CFRP composite thin-walled tubes with PVC foam-filled cores [J].
Coutinho, Lucas de Lemos ;
Abada, Mahmoud ;
Ibrahim, Ahmed ;
Jung, S. J. .
INNOVATIVE INFRASTRUCTURE SOLUTIONS, 2022, 7 (02)
[8]   Quasi-static axial crushing experiment study of foam-filled CFRP and aluminum alloy thin-walled structures [J].
Gan, Nianfei ;
Feng, Yanan ;
Yin, Hanfeng ;
Wen, Guilin ;
Wang, Duohua ;
Huang, Xinyi .
COMPOSITE STRUCTURES, 2016, 157 :303-319
[9]   Experimental investigation of interaction effects in foam-filled thin-walled aluminum tubes [J].
Guden, M. ;
Toksoy, A. K. ;
Kavi, H. .
JOURNAL OF MATERIALS SCIENCE, 2006, 41 (19) :6417-6424
[10]  
Jahani Mahsa, 2019, INT J AUTOMO MECH E