Title of article
Nonlinear modeling of carbon nanotube composites dissipation due to interfacial stick–slip
Author/Authors
Giovanni Formica، نويسنده , , Michela Tal?، نويسنده , , Walter Lacarbonara، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2014
Pages
16
From page
148
To page
163
Abstract
A nonlinear constitutive theory is proposed to describe and characterize the hysteretic elastoplastic response of nanocomposite materials caused by the inelastic shear stick–slip between carbon nanotubes and the surrounding matrix. The theory combines the mean-field homogenization method based on the Eshelby equivalent inclusion theory, the Mori–Tanaka homogenization approach, and the concept of inhomogeneous inclusions affected by inelastic eigenstrains. The shear stick–slip is accounted for as an incremental plastic eigenstrain in the inclusions. The evolution of the introduced plastic eigenstrain is regulated by a constitutive law based on a micromechanical adjustment of the von Mises function based on the interfacial stress discontinuity. Parametric studies show that the investigated carbon nanotube composites can exhibit superior damping capacities by determining optimal nano/micro-scale constitutive parameters to maximize the nanofrictional energy dissipation.
Keywords
fiber-reinforced composite material , Eshelby–Mori–Tanaka homogenization , Elastic–plastic material , Damping capacity , Cyclic loading
Journal title
International Journal of Plasticity
Serial Year
2014
Journal title
International Journal of Plasticity
Record number
1255593
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