TY - JOUR
T1 - Multi-functional cylindrical metastructures to simultaneously program both thermal expansion and Poisson's ratio
AU - Wei, Kai
AU - Xu, Wentao
AU - Ling, Bin
AU - Yang, Xujing
AU - Fang, Daining
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2021/2
Y1 - 2021/2
N2 - Currently reported cylindrical metastructures mainly act as the load-bearing components, or only present the single function of programming either Poisson's ratio (PR) or coefficient of thermal expansion (CTE). Here, by curling the planar metamaterials, a series of multi-functional cylindrical metastructures is originally devised to simultaneously incorporate programmable CTE and PR. The deformation characteristics are systematically analyzed. It is identified that the number of circumferential cells N remarkably affects the deformation characteristics. When N is small, the warp effect induced by the curved members is remarkable. The quantitative analysis figures out that when N is larger than specific critical values, the PR and CTE of the cylindrical metastructures approach to those of the planar metamaterials. Thus, a design strategy is identified, namely, with adequate circumferential cells, both the PR and CTE of the cylindrical metastructures are independent on the variable N, and are equal to those of the corresponding planar metamaterials. Most importantly, by modulating the geometric parameters, the PR and CTE of the devised cylindrical metastructures can be simultaneously programmed to be wide ranges. The excellent programmability in both PR and CTE enables the cylindrical metastructures to be potentially used in engineering applications where precise control of deformation induced both by mechanical and thermal loads is in urgent need.
AB - Currently reported cylindrical metastructures mainly act as the load-bearing components, or only present the single function of programming either Poisson's ratio (PR) or coefficient of thermal expansion (CTE). Here, by curling the planar metamaterials, a series of multi-functional cylindrical metastructures is originally devised to simultaneously incorporate programmable CTE and PR. The deformation characteristics are systematically analyzed. It is identified that the number of circumferential cells N remarkably affects the deformation characteristics. When N is small, the warp effect induced by the curved members is remarkable. The quantitative analysis figures out that when N is larger than specific critical values, the PR and CTE of the cylindrical metastructures approach to those of the planar metamaterials. Thus, a design strategy is identified, namely, with adequate circumferential cells, both the PR and CTE of the cylindrical metastructures are independent on the variable N, and are equal to those of the corresponding planar metamaterials. Most importantly, by modulating the geometric parameters, the PR and CTE of the devised cylindrical metastructures can be simultaneously programmed to be wide ranges. The excellent programmability in both PR and CTE enables the cylindrical metastructures to be potentially used in engineering applications where precise control of deformation induced both by mechanical and thermal loads is in urgent need.
KW - Auxetic
KW - Cylindrical shell
KW - Metastructure
KW - Negative Poisson's ratio
KW - Negative thermal expansion
UR - http://www.scopus.com/inward/record.url?scp=85099641453&partnerID=8YFLogxK
U2 - 10.1016/j.eml.2021.101177
DO - 10.1016/j.eml.2021.101177
M3 - Article
AN - SCOPUS:85099641453
SN - 2352-4316
VL - 43
JO - Extreme Mechanics Letters
JF - Extreme Mechanics Letters
M1 - 101177
ER -