Motivated by a model that qualitatively captured the response of vertically aligned carbon nanotube (VACNT) pillars in uniaxial compression, we consider the uniaxial tensile response of a class of compressible elastic-viscoplastic solids. In Hutchens et al. [“Analysis of Uniaxial Compression of Vertically Aligned Carbon Nanotubes,” J. Mech. Phys. Solids, 59, pp. 2227–2237 (2011), Erratum 60, 1753–1756 (2012)] an elastic viscoplastic constitutive relation with plastic compressibility, plastic non-normality, and a hardening-softening-hardening hardness function was used to model experimentally obtained uniaxial compression data of cylindrical VACNT micropillars. Complex deformation modes were found in uniaxial compression, which include a seq...
Strain rate effects on the mechanical properties of carbon nanotube forests are studied, and several...
Arrays of nominally-aligned carbon nanotubes (CNTs) under compression deform locally via buckling, e...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
Motivated by a model of the response of vertically aligned carbon nanotube (VACNT) pillars in uniaxi...
Micromechanical experiments, image analysis, and theoretical modeling revealed that local failure ev...
Vertically aligned carbon nanotubes (VACNTs) serve as integral components in a variety of applicatio...
We carry out axisymmetric, finite deformation finite element analyses of the uniaxial compression of...
Vertically aligned carbon nanotube’s extreme compliance and mechanical energy absorption/dissipation...
We present a one-dimensional, multiscale mass-spring model to describe the response of vertically al...
Vertical arrays of carbon nanotubes (VACNTs) show unique mechanical behavior in compression, with a ...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
We report the mechanical behavior of vertically aligned carbon nanotube films, grown on Si substrate...
Strain rate effects on the mechanical properties of carbon nanotube forests are studied, and several...
Arrays of nominally-aligned carbon nanotubes (CNTs) under compression deform locally via buckling, e...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
Motivated by a model of the response of vertically aligned carbon nanotube (VACNT) pillars in uniaxi...
Micromechanical experiments, image analysis, and theoretical modeling revealed that local failure ev...
Vertically aligned carbon nanotubes (VACNTs) serve as integral components in a variety of applicatio...
We carry out axisymmetric, finite deformation finite element analyses of the uniaxial compression of...
Vertically aligned carbon nanotube’s extreme compliance and mechanical energy absorption/dissipation...
We present a one-dimensional, multiscale mass-spring model to describe the response of vertically al...
Vertical arrays of carbon nanotubes (VACNTs) show unique mechanical behavior in compression, with a ...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
We report the mechanical behavior of vertically aligned carbon nanotube films, grown on Si substrate...
Strain rate effects on the mechanical properties of carbon nanotube forests are studied, and several...
Arrays of nominally-aligned carbon nanotubes (CNTs) under compression deform locally via buckling, e...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...