Numerical analysis of low-speed impact response of sandwich panels with bio-inspired diagonal-enhanced square honeycomb core

被引:28
作者
Li, Quan-Wei [1 ]
Sun, Bo-Hua [1 ]
机构
[1] Xian Univ Architecture & Technol, Sch Civil Engn, Xian 710055, Peoples R China
关键词
Bio-inspired diagonal-enhanced square; honeycomb core (BSHC); Numerical simulation; Sandwich panels; Honeycomb core; Impact response; LOW-VELOCITY IMPACT; COMPRESSION; BEHAVIOR;
D O I
10.1016/j.ijimpeng.2022.104430
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The diagonal-enhanced square grid configuration inspired by glass sponge has great potential in mechanics, with geometries serving as honeycomb cores for sandwich panels, which can improve the structure's energy absorption capabilities. Modeling the hexagonal honeycomb core (HHC) sandwich panels, a finite element numerical model for low-speed impact of sandwich panels with high accuracy is proposed, and low-speed impact response of bio-inspired diagonal-enhanced square honeycomb core (BSHC) sandwich panels is studied. The impact response of BSHC sandwich panels, Hexagonal honeycomb core (HHC) sandwich panels and ordinary square honeycomb core (OSHC) sandwich panels were studied with the same relative densities and the same face-sheets. BSHC can lead to significantly enhanced the peak loads and stiffness of the sandwich panels. BSHC sandwich panels not only have excellent energy absorption performance, but also outperform HHC sandwich panels in terms of resistance to impact deformation. BSHC can transfer dynamic loads from the front face-sheet to the back face-sheet efficiently without stress concentration in the core itself. A theoretical analysis of the energy absorption capacity of the BSHCs and HHC were performed to illustrate the energy absorption mechanism. In addition, the peak load and contact energy of BSHC sandwich panels and HHC sandwich panels were theoretically predicted under low-speed impact.
引用
收藏
页数:10
相关论文
共 56 条
[11]   On hierarchical honeycombs under out-of-plane crushing [J].
Fang, Jianguang ;
Sun, Guangyong ;
Qiu, Na ;
Pang, Tong ;
Li, Shunfeng ;
Li, Qing .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2018, 135 :1-13
[12]   Mechanically robust lattices inspired by deep-sea glass sponges [J].
Fernandes, Matheus C. ;
Aizenberg, Joanna ;
Weaver, James C. ;
Bertoldi, Katia .
NATURE MATERIALS, 2021, 20 (02) :237-+
[13]   Biomechanics of cellular solids [J].
Gibson, LJ .
JOURNAL OF BIOMECHANICS, 2005, 38 (03) :377-399
[14]   Experimental investigation on impact and bending properties of a novel dactyl-inspired sandwich honeycomb with carbon fiber [J].
Han, Qigang ;
Qin, Hanlin ;
Liu, Zhanhang ;
Han, Zhiwu ;
Zhang, Junqiu ;
Niu, Shichao ;
Zhang, Wenqiang ;
Sun, Yanbiao ;
Shi, Shaoqian .
CONSTRUCTION AND BUILDING MATERIALS, 2020, 253
[15]  
Hazell P.J., 2015, ARMOUR MAT THEORY DE
[16]   Experimental study on low-velocity impact responses and residual properties of composite sandwiches with metallic foam core [J].
Huo, Xintao ;
Sun, Guangyong ;
Zhang, Haiyang ;
Lv, Xiaojiang ;
Li, Qing .
COMPOSITE STRUCTURES, 2019, 223
[17]   Numerical modelling of the low-velocity impact response of composite sandwich beams with honeycomb core [J].
Ivanez, Ines ;
Sanchez-Saez, Sonia .
COMPOSITE STRUCTURES, 2013, 106 :716-723
[18]   Microstructural design for mechanical-optical multifunctionality in the exoskeleton of the flower beetle Torynorrhina flammea [J].
Jia, Zian ;
Fernandes, Matheus C. ;
Deng, Zhifei ;
Yang, Ting ;
Zhang, Qiuting ;
Lethbridge, Alfie ;
Yin, Jie ;
Lee, Jae-Hwang ;
Han, Lin ;
Weaver, James C. ;
Bertoldi, Katia ;
Aizenberg, Joanna ;
Kolle, Mathias ;
Vukusic, Pete ;
Li, Ling .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2021, 118 (25)
[19]   Finite element analysis of impact response of foams in sandwich panels [J].
Khaire, Nikhil ;
Bhure, Vivek ;
Tiwari, G. .
MATERIALS TODAY-PROCEEDINGS, 2020, 28 :2585-2590
[20]   Impact analysis of hierarchical honeycomb core sandwich structures [J].
Korupolu, D. K. ;
Budarapu, P. R. ;
Vusa, V. R. ;
Pandit, M. K. ;
Reddy, J. N. .
COMPOSITE STRUCTURES, 2022, 280