MHD flow of second‐grade fluid containing nanoparticles having gyrotactic microorganisms across heated convective sheet

Muhammad Faizan Ahmed, Humaira Yasmin, F. Ali, Z. Raizah, S. Lone, Anwar Saeed
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Abstract

In order to keep mechanical processes running smoothly, there is a growing need for effective heat transport. The present study aims to explore the variation of heat on time‐dependent maximum hydrodynamic drag (MHD) second‐grade nanofluids perceiving motile gyrotactic microbe with stretchable sheets. We process the analysis of the thermal energy distribution by using the convective boundary conditions. In addition to this, we take both the chemical reaction and the heat radiation into consideration. The governing nonlinear (PDEs) are converted into (ODEs) by a similarity transformation and then computed BVP4c technique. The multiple results are marked in the range of opposing flows only. Then, the effects of numerous physical variables on temperature, concentration, fluid velocity, and motile microorganisms are scrutinized using different graphical representations. The unsteady parameter and second‐grade fluid also strengthen for higher qualities, while inverse conduct is identified for a magnetic field framework. Finally, the temperature field cultivates a more significant assessment of the Biot number, and reverse behavior is observed for the Prandtl number. The obtained results are found appropriate to the existing literature.
含有陀螺仪微生物纳米颗粒的二级流体在加热对流片上的 MHD 流动
为了保持机械过程的平稳运行,越来越需要有效的热传输。本研究旨在探索热量对随时间变化的最大流体动力阻力(MHD)二级纳米流体的影响。我们利用对流边界条件对热能分布进行了分析。此外,我们还考虑了化学反应和热辐射。通过相似性转换,将支配性非线性(PDEs)转换为(ODEs),然后通过 BVP4c 技术进行计算。多重结果仅在对流范围内进行标记。然后,使用不同的图形表示法仔细研究了众多物理变量对温度、浓度、流体速度和运动微生物的影响。非稳态参数和二级流体也会加强更高的质量,而反向传导则是在磁场框架下确定的。最后,温度场对 Biot 数的评估更为重要,而对 Prandtl 数则观察到相反的行为。所得结果与现有文献相吻合。
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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