Effects of Thermal Radiation and Chemical Reaction on Hydromagnetic Fluid Flow in a Cylindrical Collapsible Tube with an Obstacle

Nictor Mwamba, J. Abonyo, K. Awuor
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引用次数: 2

Abstract

The aim of this research is to study the effects of thermal radiation and chemical reaction on hydromagnetic fluid flow in a cylindrical collapsible tube with an obstacle. The fluid flow is governed by continuity, momentum, energy, and concentration equations. Similarity transformation has been used to convert the obtained PDEs into ODEs. The collocation method has been used to numerically solve the ODEs. The method has been implemented in MATLAB using the bvp4c inbuilt function. The effects of the nondimensional parameters on velocity, temperature, and concentration have been presented graphically. Additionally, the skin-friction coefficient, the Nusselt number, and the Sherwood number have been discussed and are presented in a tabular form. The findings demonstrated that increasing the Reynolds number causes a rise in the fluid temperature and velocity. The fluid velocity decreases as the Hartmann number and the weight of the obstacle increase but increases with increasing Grashof numbers. The temperature of the fluid increases as the radiation parameter, or Eckert number, increases, but decreases as the Prandtl number increases. As the Soret number rises, so do the fluid’s temperature and concentration distribution. With an increase in the unsteadiness parameter, the fluid velocity and the concentration distribution decrease, whereas the opposite is seen in temperature. As the Schmidt number, the concentration Grashof number, and the chemical reaction parameter increase, the fluid’s concentration decreases. There is an increase in skin-friction coefficient with increasing Prandtl number, Eckert number, Soret number, thermal Grashof number, concentration Grashof number, thermal radiation parameter, Hartmann number, and unsteadiness parameter, while a decrease is observed with increasing Reynolds number. The Nusselt number increases with an increase in the Prandtl number, Eckert number, thermal radiation parameter, Hartmann number, and unsteadiness parameter. A slight decrease in the Nusselt number has been observed with increasing thermal Grashof number. The Sherwood number decreases with increasing Prandtl number, chemical reaction parameter, and thermal radiation parameter but increases with increasing Schmidt number, Eckert number, and Soret number. The research has the potential for a wide range of applications including but not limited to the medical field and other physical sciences.
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热辐射和化学反应对带障碍物的圆柱形可折叠管中磁流体流动的影响
本研究的目的是研究热辐射和化学反应对带障碍物的圆柱形可折叠管中磁流体流动的影响。流体流动由连续性、动量、能量和浓度方程控制。利用相似变换将得到的偏微分方程转化为偏微分方程。采用配点法对其进行数值求解。该方法已在MATLAB中利用bvp4c内置函数实现。用图形表示了无量纲参数对速度、温度和浓度的影响。此外,还讨论了表面摩擦系数、努塞尔数和舍伍德数,并以表格形式给出。结果表明,雷诺数的增加会引起流体温度和速度的升高。流体速度随哈特曼数和障碍物重量的增加而减小,随格拉什夫数的增加而增大。流体的温度随着辐射参数或埃克特数的增加而增加,但随着普朗特数的增加而降低。随着索瑞特数的增加,液体的温度和浓度分布也会增加。随着非定常参数的增大,流体速度和浓度分布减小,而温度则相反。随着Schmidt数、浓度Grashof数和化学反应参数的增大,流体的浓度减小。表面摩擦系数随普朗特数、埃克特数、索雷特数、热格拉什夫数、浓度格拉什夫数、热辐射参数、哈特曼数、非定常参数的增加而增大,随雷诺数的增加而减小。努塞尔数随着普朗特数、埃克特数、热辐射参数、哈特曼数和非定常参数的增加而增加。随着热格拉索夫数的增加,努塞尔数略有下降。Sherwood数随着Prandtl数、化学反应参数和热辐射参数的增加而减小,而随着Schmidt数、Eckert数和Soret数的增加而增大。这项研究具有广泛应用的潜力,包括但不限于医学领域和其他物理科学。
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