Magnetohydrodynamic Boundary Layer Slip Flow and Heat Transfer over a Flat Plate with Heat Generation/Absorption and Viscous Dissipation

O. Onyejekwe
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引用次数: 2

Abstract

A numerical study has been carried out on the momentum and heat transfer characteristics of an incompressible magnetohydrodynamic boundary layer slip flow over a flat plate with both viscous and ohmic dissipations. Momentum boundary layer equation takes care of the magnetic field while the ohmic and viscous dissipations are accounted for by the thermal boundary layer equation. The governing equations constitute highly non-linear momentum and thermal boundary layer equations. Both are converted into similarity equations before being solved by the Runge-Kutta-Fehlberg technique with shooting. The results are analyzed for both isothermal and non-isothermal boundary conditions for various combinations of flow and heat transfer parameters. Some of the important findings show that in the absence of both the magnetic and velocity slip parameters, the flow profiles are identical to those of Bhattacharyya et al. [1]. The combined effect of increasing both the magnetic and the slip velocity parameters significantly affects the velocity and the shear stress profiles. An increase of slip parameter results in a decrease in skin friction, whereas an increase in Eckart number enhances viscous dissipation and a consequential temperature rise especially at the boundary. Sometimes this may escalate to a level where a Dirichlet temperature specification is exceeded. Furthermore, the temperature gradient is highly sensitive to prescribed values of Prandtl number and heat generation parameter.
具有吸热和粘滞耗散的平板磁流体边界层滑移流动和传热
对具有粘性和欧姆两种耗散的平板上不可压缩磁流体边界层滑动流动的动量和传热特性进行了数值研究。动量边界层方程考虑磁场,而欧姆和粘性耗散由热边界层方程考虑。控制方程由高度非线性的动量和热边界层方程构成。将两者转化为相似方程,然后用带射击的龙格-库塔-费伯格法求解。对不同流动和传热参数组合的等温和非等温边界条件下的结果进行了分析。一些重要的发现表明,在没有磁场和速度滑移参数的情况下,流动剖面与Bhattacharyya等人[1]的流动剖面相同。磁速参数和滑移速度参数的增加对速度和剪应力分布有显著影响。滑移参数的增加导致表面摩擦的减小,而Eckart数的增加则增加了粘性耗散,并导致温度升高,特别是在边界处。有时这可能会升级到超过狄利克雷温度规范的水平。此外,温度梯度对规定的普朗特数和产热参数高度敏感。
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