A Study of Fractional Relaxation Time Derivative on Blood Flow in Arteries with Magnetic and Thermal Radiation Effects

D. G. Yakubu, M. Abdulhameed, G. Adamu, A. M. Kwami
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引用次数: 3

Abstract

In this paper, a fractional relaxation model is studied to determine the effect of heat transfer and magnetic field on the blood flow. The flow is due to an oscillating periodic pressure gradient and body acceleration. We apply Laplace transform as well as finite Hankel transform to obtain the closed form solutions of the velocity and temperature distributions of the fractional time partial differential equations. Effect of the fluid flow parameters are shown graphically with changes in the ordinary model as well as the fractional parameters. The analysis shows that the fractional derivative is an excellent tool which gives remarkable change in controlling temperature and blood flow. The analysis depicts graphically, that in the presences of strong applied (exterior) magnetic field, reduces the temperature and blood flow velocities, which is appropriate to avoid tissues damage during treatment. In addition, it is seen that some of the aforementioned parameters influenced the fluid flow profiles in increasing and decreasing fashion which is interpreted as useful to the study.
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磁热辐射作用下动脉血流的分数阶松弛时间导数研究
本文研究了一个分数松弛模型,以确定传热和磁场对血流的影响。流动是由于振荡的周期性压力梯度和体加速度。应用拉普拉斯变换和有限汉克尔变换,得到了分数阶时间偏微分方程的速度分布和温度分布的封闭解。用图形显示了流体流动参数对普通模型和分数参数变化的影响。分析表明,分数阶导数是一种很好的控制温度和血流变化的工具。分析图解地描述了,在强施加(外部)磁场的存在下,降低了温度和血液流动速度,这是适当的,以避免治疗期间组织损伤。此外,我们还看到,上述一些参数对流体流动曲线的影响呈增减趋势,这对研究是有用的。
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