๐”– Bobbio Scriptorium
โœฆ   LIBER   โœฆ

A nonlinear pullout model for unidirectional carbon nanotube-reinforced composites

โœ Scribed by Tan Xiao; Kin Liao


Publisher
Elsevier Science
Year
2004
Tongue
English
Weight
191 KB
Volume
35
Category
Article
ISSN
1359-8368

No coin nor oath required. For personal study only.

โœฆ Synopsis


The effective stiffness of multi-walled carbon nanotubes (CNTs) in the radial direction is derived. A nonlinear pullout model for CNTreinforced composites is presented in which thermal residual stress, Poisson's contract effect, as well as nonlinear elastic behavior of nanotubes are considered. In the model, the CNT in the matrix is envisaged as an anisotropic cylinder shell submitted to axial tensile load and radial pressure, considering nonlinear in-plane stiffness in the axial direction and the effective stiffness in the circumferential direction. Based on the model, analytical solutions of axial membrane force of the nanotube and the nanotube-matrix interfacial shear stress are obtained. Results of sample calculations suggest that the distribution of interfacial shear stress along the nanotube length is sensitive to its elastic nonlinearity.


๐Ÿ“œ SIMILAR VOLUMES


A time dependent model for unidirectiona
โœ B. Nedjar ๐Ÿ“‚ Article ๐Ÿ“… 2011 ๐Ÿ› Elsevier Science ๐ŸŒ English โš– 383 KB

In this work, a fully three-dimensional constitutive model suitable for the macroscopic description of unidirectional fibre-reinforced composites where the matrix exhibits a time-dependent viscoelastic behavior is developed. Specifically, we consider a coordinate-free formulation where the stress an

A simple model for thermal conductivity
โœ C.-W. Nan; Z. Shi; Y. Lin ๐Ÿ“‚ Article ๐Ÿ“… 2003 ๐Ÿ› Elsevier Science ๐ŸŒ English โš– 159 KB

A quite simple formula for the thermal conductivity enhancement in carbon nanotube composites is presented based on a conventional model. This simple formula predicts much higher thermal conductivity enhancement even in the dilute case of the carbon nanotubes, due to ultrahigh thermal conductivity a

A distributed friction model for energy
โœ Yaping Huang; X.W. Tangpong ๐Ÿ“‚ Article ๐Ÿ“… 2010 ๐Ÿ› Elsevier Science ๐ŸŒ English โš– 580 KB

Being lighter and stiffer than traditional metallic materials, nanocomposites have great potential to be used as structural damping materials for a variety of applications. Studies of friction damping in the nanocomposites are largely experimental, and there has been a lack of understanding of the d