Mathematical Analysis of Gold, Platinum, and Magnetite Nanoparticle Shapes on Unsteady Radiative Flow of Nanoliquid along an Infinite Vertical Flat Plate in the Proximity of Convective Boundary Condition

M. Venkateswarlu, M. S. Satish Kumar, G. Dharmaiah
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Abstract

In this article, the heat transfer and flow pattern characteristics are discussed in the proximity of convective boundary condition for three kinds of nanoparticles, namely gold, Platinum and magnetite with three different shapes, namely spherical, platelets, and lamina. Here water is taken as a base liquid. The thermal radiation impact is assumed into account. The partial differential equations are shifted into ordinary differential equations by applying an acceptable transformation and then exact solutions are acquired by promoting the Laplace transform technique. Solid volume fraction is fluctuated as 5%, 10%, 15%, and 20%. The variations of nanoliquid motion and heat transfer are displayed graphically as well as the numerical values of skin friction and rate of heat transfer at the plate are displayed in tabular pattern. In particular, the liquid motion as well as the heat transfer is least for lamina type nanoparticles, medium for platelet type nanoparticles, and greatest for spherical type nanoparticles. Moreover, the skin friction escalates and the rate of heat transfer declines for three types of nanoliquids in three distinct shapes with the progress of time. This report can be further utilized to authenticate the effectiveness of acquired mathematical results for another sophisticated nanoliquid problems.
接近对流边界条件下,金、铂和磁铁矿纳米流体沿无限垂直平板非定常辐射流动中纳米颗粒形状的数学分析
本文讨论了三种不同形状的金、铂和磁铁矿纳米颗粒(球形、片状和片状)在对流边界条件附近的传热和流态特征。这里用水作为基础液体。考虑了热辐射的影响。采用可接受变换将偏微分方程转化为常微分方程,然后推广拉普拉斯变换技术得到精确解。固体体积分数波动为5%、10%、15%和20%。用图形显示了纳米液体运动和传热的变化,并以表格形式显示了板上的表面摩擦和换热率的数值。特别是,液体运动和传热对于片状纳米颗粒最小,对于血小板型纳米颗粒介质最小,对于球形纳米颗粒最大。此外,随着时间的推移,三种不同形状的纳米液体的表面摩擦增大,换热速率减小。该报告可以进一步用于验证所获得的数学结果对另一个复杂的纳米液体问题的有效性。
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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