Title : ( Analytical investigation of peristaltic nanofluid flow and heat transfer in an asymmetric wavy wall channel (Part I: Straight channel) )
Authors: S. Mosayebidorcheh , Mohammad Hatami ,Access to full-text not allowed by authors
Abstract
In this study, asymmetric peristaltic nanofluid flow in a two dimensional wavy channel is modeled and the heat transfer analysis is performed for it. Both upper and lower channel walls are considered in con- stant temperature and wavy shape. The governing equations were solved for five type’s nanofluids and least square method (LSM) analytical method using the Maple 15.0 mathematical software is applied as the efficient solution method for solving the governing equation. The effect of some parameters existed in the equations (Brinkman number, thermal and velocity slip parameters, Grashoff number and etc.), are discussed on the velocities and temperature functions. As an important outcome, reverse flow and max- imum velocity were observed in channel throat and maximum temperature area occurred near the lower wall due to its higher temperature in boundary condition. Also, Brinkman number, thermal slip param- eter and Grashoff number increments enhanced the temperatures values in channel.
Keywords
Peristaltic nanofluid flow Wavy channel Nanoparticle volume fraction Least square method Asymmetric shape@article{paperid:1084803,
author = {S. Mosayebidorcheh and Hatami, Mohammad},
title = {Analytical investigation of peristaltic nanofluid flow and heat transfer in an asymmetric wavy wall channel (Part I: Straight channel)},
journal = {International Journal of Heat and Mass Transfer},
year = {2018},
volume = {126},
number = {126},
month = {November},
issn = {0017-9310},
pages = {790--799},
numpages = {9},
keywords = {Peristaltic nanofluid flow
Wavy channel
Nanoparticle volume fraction
Least square method
Asymmetric shape},
}
%0 Journal Article
%T Analytical investigation of peristaltic nanofluid flow and heat transfer in an asymmetric wavy wall channel (Part I: Straight channel)
%A S. Mosayebidorcheh
%A Hatami, Mohammad
%J International Journal of Heat and Mass Transfer
%@ 0017-9310
%D 2018