Bidirectionally graded honeycombs under quasi-static loading: Experimental and numerical study

被引:4
作者
Ahmed, Mohammad Faisal [1 ]
Granville, William [1 ]
机构
[1] Southeastern Louisiana Univ, Dept Ind & Engn Technol, 801 N Oak St, Hammond, LA 70402 USA
关键词
Density gradient; Parametric design; Energy absorption; Quasi-static; Finite element analysis; HIERARCHICAL HONEYCOMBS; POLYURETHANE HONEYCOMBS; ENERGY-ABSORPTION; BEHAVIOR; DESIGN;
D O I
10.1016/j.mtcomm.2024.110385
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Density-graded cellular solids possess tailorable mechanical properties through variable localized densities, made possible with design freedom offered by additive manufacturing. In this paper, a novel design strategy is proposed to generate bidirectionally graded honeycombs where the gradient direction is both parallel and perpendicular to the loading direction. A gradient function is developed to design three density gradient honeycombs having three different thickness gradients. The graded honeycombs along with their uniform density regular honeycomb counterparts of similar relative density are manufactured using material extrusion process. In-plane compression tests are carried out to perform a comparative study of the honeycombs. Unlike the regular honeycombs, graded honeycombs show layer-by-layer deformation, in addition to cell-wise collapse in lateral direction. Graded honeycombs show better energy absorption characteristics in low and high energy compressions, and high strain regime. Also, graded honeycombs have similar or higher specific energy absorption, densification strain, mean crushing force, and peak crushing force. The compressive responses of the honeycombs are simulated with finite element analysis and the simulation results agree well with the experimental results. The results substantiate the significance of thickness gradient in controlling the density gradation, and effectively tailoring the load-bearing capacity, deformation behavior, and energy absorption characteristics of cellular structures.
引用
收藏
页数:14
相关论文
共 50 条
[41]   Theoretical and experimental study of foam-filled lattice composite panels under quasi-static compression loading [J].
Wu, Zhimin ;
Liu, Weiqing ;
Wang, Lu ;
Fang, Hai ;
Hui, David .
COMPOSITES PART B-ENGINEERING, 2014, 60 :329-340
[42]   Theoretical and Experimental Study on Contact Characteristics of Spiral Bevel Gears under Quasi-Static and Large Loading Conditions [J].
Fu, Yimeng ;
Zhuo, Yaobing ;
Zhou, Xiaojun ;
Wan, Bowen ;
Lv, Haoliang ;
Wang, Zhe .
APPLIED SCIENCES-BASEL, 2020, 10 (15)
[43]   A numerical and experimental study of the quasi-static deployment of membrane tubes [J].
Bbuzidi, Rabah ;
Buytet, Saridrine ;
Le van, Anh .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2013, 50 (05) :651-661
[44]   Prediction of Crushing Response for Metal Hexagonal Honeycomb under Quasi-Static Loading [J].
Geng, Xinyu ;
Liu, Yufei ;
Zheng, Wei ;
Wang, Yongbin ;
Li, Meng .
SHOCK AND VIBRATION, 2018, 2018
[45]   Experimental Study on CFRP-to-Steel Bonded Interfaces under Quasi-Static Cyclic Loading [J].
Doroudi, Y. ;
Fernando, D. ;
Nguyen, V. T. ;
Torres, J. P. .
JOURNAL OF COMPOSITES FOR CONSTRUCTION, 2019, 23 (04)
[46]   Experimental and numerical behaviour of railway rivets under quasi-static promptings [J].
Cebulski, L ;
Boneill, C ;
Drazetic, P ;
Markiewicz, E .
ENGINEERING COMPUTATIONS, 2003, 20 (7-8) :795-809
[47]   Numerical study of similar and dissimilar single lap joints under quasi-static and impact conditions [J].
Machado, J. J. M. ;
Nunes, P. D. P. ;
Marques, E. A. S. ;
da Silva, Lucas F. M. .
INTERNATIONAL JOURNAL OF ADHESION AND ADHESIVES, 2020, 96
[48]   Experimental characterization and numerical modeling of damage at the mesoscopic scale of woven polymer matrix composites under quasi-static tensile loading [J].
Doitrand, A. ;
Fagiano, C. ;
Chiaruttini, V. ;
Leroy, F. H. ;
Mavel, A. ;
Hirsekorn, M. .
COMPOSITES SCIENCE AND TECHNOLOGY, 2015, 119 :1-11
[49]   Investigation of novel multi-layer sandwich panels under quasi-static indentation loading using experimental and numerical analyses [J].
Taghizadeh, Seyed Ahmad ;
Naghdinasab, Mohsen ;
Madadi, Hamidreza ;
Farrokhabadi, Amin .
THIN-WALLED STRUCTURES, 2021, 160
[50]   Experimental and simulation study of mild steel response to lateral quasi-static compression [J].
Lafta, Omar Abdulhasan ;
Fareed, Minah Mohammed ;
Bin Said, Md Radzai .
JOURNAL OF MECHANICAL ENGINEERING AND SCIENCES, 2020, 14 (01) :6488-6496