| نویسندگان | عباس لقمان-حسین شایسته مقدم-احسان لقمان |
| تاریخ انتشار | 2016-6-01 |
| رتبه نشریه | علمی - پژوهشی |
| نمایه نشریه | SCOPUS ,ISC |
چکیده مقاله
Polypropylene is one of the most common, fastest growing and versatile thermoplastics currently used to produce tanks
and chemical piping systems. Even at room temperature creep is considerable for polypropylene products. The creep
behavior of strains, stresses, and displacement rates is investigated in a thick-walled cylinder made of polypropylene
reinforced by functionally graded (FG) multi-walled carbon nanotubes (MWCNTs) using Burgers viscoelastic creep
model. The mechanical properties of the composite are obtained based on the volume content of the MWCNTs. Loading
is composed of an internal pressure and a uniform temperature field. Using equations of equilibrium, stress-strain and
strain-displacement, a constitutive differential equation containing total creep strains is obtained. Creep strain
increments are accumulated incrementally during the life of the vessel. Creep strain increments are related to the
current stresses and the material uniaxial Burgers creep model by the well-known Prandtl-Reuss relations. A semianalytical
solution using Prandtl-Reuss relation has been developed to determine history of stresses, strains and
displacements. The results are plotted against dimensionless radius for different volume content of MWCNTs. It has
been found that the creep radial and circumferential strains of the cylinder reduce with increasing content of carbon
nanotubes. It has also been concluded that the uniform distribution of MWCNTs reinforcement does not considerably
influence on stresses