Title of article :
Finite element modeling of creep deformation in cellular metals Original Research Article
Author/Authors :
Scott M. Oppenheimer، نويسنده , , David C. Dunand، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2007
Pages :
10
From page :
3825
To page :
3834
Abstract :
The creep of reticulated metallic foams is studied through the finite element method using three-dimensional, periodic unit cells with four different architectures characterized by struts which deform primarily by: (i) simple bending, (ii) compression, (iii) a combination of simple bending and compression and (iv) double bending (for Kelvin space-filling tetrakaidecahedra). The creep behavior of each of these models is examined with respect to temperature, stress and foam relative density. Calculated creep rates for both bending and compression models are below those predicted from simplified analytical models and bracket those of the combination model. The simple and double bending models predict nearly identical strain rates despite very different geometries, because in both cases the deflection rates of the fastest deforming struts are similar. Both analytical and numerical predictions are compared to published creep data for metallic foams.
Keywords :
Creep , Finite element modeling , Open-cell foams
Journal title :
ACTA Materialia
Serial Year :
2007
Journal title :
ACTA Materialia
Record number :
1143078
Link To Document :
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