Title of article
Mechanical Properties of two novel planar lattice structures
Author/Authors
Y.H. Zhang، نويسنده , , X.M. Qiu، نويسنده , , D.N. Fang، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2008
Pages
18
From page
3751
To page
3768
Abstract
Two novel statically indeterminate planar lattice materials are designed: a new Kagome cell (N-Kagome) and a statically
indeterminate square cell (SI-square). Their in-plane mechanical properties, such as stiffness, yielding, buckling and
collapse mechanisms are investigated by analytical methods. The analytical stiffness is also verified by means of finite element
(FE) simulations. In the case of uniaxial loading, effective modulus, yield strength, buckling strength and critical relative
density are compared for various lattice structures. At a critical relative density, the collapse mode will change from
buckling to yielding. Elastic buckling under macroscopic shear loading is found to have significant influence on failure of
lattice structures, especially at low relative densities. Comparison of the analytical bulk and shear moduli with the Hashin–
Shtrikman bounds indicates that the mechanical properties of the SI-square honeycomb are relatively close to being optimal.
It is found that compared with the other existing stretching-dominated 2D lattice structures, the N-Kagome cell possesses
the largest continuous cavities for fixed relative densities and wall thicknesses, which is convenient for oil storage,
disposal of heat exchanger, battery deploying and for other functions. And the initial yield strength of the N-Kagome cell
is slightly lower than that of the Kagome cell. The SI-square cell has similar high stiffness and strength as the mixed cell
while its buckling resistance is about twice than that of the mixed cell.
Keywords
Kagome , mechanical properties , Planar lattice structures , Collapse
Journal title
International Journal of Solids and Structures
Serial Year
2008
Journal title
International Journal of Solids and Structures
Record number
449590
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