TY - JOUR
T1 - An improved re-entrant honeycomb with programmable densification and multistage energy-absorbing performance
AU - Jiang, Wei Zhong
AU - Teng, Xing Chi
AU - Ni, Xi Hai
AU - Zhang, Xue Gang
AU - Cheng, Xian
AU - Jiang, Wei
AU - Han, Dong
AU - Zhang, Yi
AU - Ren, Xin
N1 - Publisher Copyright:
© 2023 Elsevier Ltd
PY - 2024/2/15
Y1 - 2024/2/15
N2 - Recently, auxetic metamaterials have turned into an area of growing interest, because of their deformation uniqueness, design flexibility, and functional diversity. To achieve their programmable design of densification and energy absorption, the variable stiffness factor method (VSF) emerged. However, the energy absorption capacity of the metamaterials designed by this method has a significant reduction. In this work, to remedy this defect, several different lightweight specimens are proposed and fabricated to extend the stage of energy absorption and retain the tunability. Then quasi-static compression tests and finite element methods are carried out to analyze the mechanical properties of the designed boundary-constrained structure (BCS) and X-shape constrained structure (XCS). The accuracy of the densification points and energy absorption capacity of the two structures at different VSF values are also studied. The results show that the densification points of the designed structures can be adjusted quantitatively, and their deformation modes are more stable than conventional structures during compression. Furthermore, their specific energy absorption is four and five times higher than that of non-lightweight structures with VSF = 40%, respectively. These findings contribute to advancing the implementation of auxetics in applications of multistage protective structures.
AB - Recently, auxetic metamaterials have turned into an area of growing interest, because of their deformation uniqueness, design flexibility, and functional diversity. To achieve their programmable design of densification and energy absorption, the variable stiffness factor method (VSF) emerged. However, the energy absorption capacity of the metamaterials designed by this method has a significant reduction. In this work, to remedy this defect, several different lightweight specimens are proposed and fabricated to extend the stage of energy absorption and retain the tunability. Then quasi-static compression tests and finite element methods are carried out to analyze the mechanical properties of the designed boundary-constrained structure (BCS) and X-shape constrained structure (XCS). The accuracy of the densification points and energy absorption capacity of the two structures at different VSF values are also studied. The results show that the densification points of the designed structures can be adjusted quantitatively, and their deformation modes are more stable than conventional structures during compression. Furthermore, their specific energy absorption is four and five times higher than that of non-lightweight structures with VSF = 40%, respectively. These findings contribute to advancing the implementation of auxetics in applications of multistage protective structures.
KW - Auxetic
KW - Energy absorption
KW - Lightweight design
KW - Mechanical metamaterials
KW - Negative Poisson's ratio
KW - Variable stiffness factor
UR - http://www.scopus.com/inward/record.url?scp=85180405666&partnerID=8YFLogxK
U2 - 10.1016/j.engstruct.2023.117318
DO - 10.1016/j.engstruct.2023.117318
M3 - 文章
AN - SCOPUS:85180405666
SN - 0141-0296
VL - 301
JO - Engineering Structures
JF - Engineering Structures
M1 - 117318
ER -