MHD squeeze flow and heat transfer of a nanofluid between parallel disks with variable fluid properties and transpiration

IF 3.4 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
K. Vajravelu, K. V. Prasad, Chiu-On Ng, Hanumesh Vaidya
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引用次数: 42

Abstract

The purpose of the study is to investigate the effects of variable fluid properties, the velocity slip and the temperature slip on the time-dependent MHD squeezing flow of nanofluids between two parallel disks with transpiration.

The boundary layer approximation and the small magnetic Reynolds number assumptions are used. The non-linear governing equations with appropriate boundary conditions are initially cast into dimensionless form by using similarity transformations and then the resulting equations are solved analytically via Optimal Homotopy Analysis Method (OHAM). A detailed parametric analysis is carried out through plots and tables to explore the effects of various physical parameters on the velocity temperature and nanoparticles concentration fields.

The velocity distribution profiles for transpiration (suction/blowing) are parabolic in nature. In general, at the central region, these profiles exhibit the cross-flow behavior and also exhibit the dual behavior with the increase in the pertinent parameters. The temperature distribution reduces in the case of suction whereas the reverse trend is observed in the case of injection.

The effects of temperature dependent thermophysical properties are significant on the flow field. For higher values of the fluid viscosity parameter, the velocity field increases near the walls. However, the transpiration effects are dominant and exhibit the cross-flow behavior as well as the dual behavior. The temperature and the concentration fields are respectively the increasing functions of the variable thermal conductivity and the variable species diffusivity parameters.

Abstract Image

具有可变流体性质和蒸腾作用的平行圆盘间纳米流体的MHD挤压流动和传热
研究了不同流体性质、速度滑移和温度滑移对具有蒸腾作用的纳米流体在平行圆盘间随时间变化的MHD挤压流动的影响。采用边界层近似和小磁雷诺数假设。首先利用相似变换将具有适当边界条件的非线性控制方程转化为无因次形式,然后利用最优同伦分析法(OHAM)进行解析求解。通过绘图和表格进行了详细的参数分析,探讨了各种物理参数对速度、温度和纳米粒子浓度场的影响。蒸腾(吸/吹)的速度分布曲线本质上是抛物线型的。总体而言,在中心区域,随着相关参数的增加,这些剖面表现出交叉流动行为,同时也表现出双重行为。在吸力的情况下,温度分布降低,而在注射的情况下,观察到相反的趋势。温度相关的热物性对流场的影响是显著的。当流体粘度参数值较高时,在壁面附近的速度场增大。然而,蒸腾效应是主要的,并表现出交叉流动行为和双重行为。温度场和浓度场分别是变导热系数和变扩散系数参数的递增函数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.60
自引率
0.00%
发文量
1
审稿时长
13 weeks
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