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Microstructure and Inertial Characteristics of MHD Suspended SWCNTs and MWCNTs Based Maxwell Nanofluid Flow with Bio-Convection and Entropy Generation Past a Permeable Vertical Cone

机译:基于MHD悬浮的SWCNT和MMWCNTS的MAXWER纳米流体流动的微观结构和惯性特性,通过生物对流和熵生成透水垂直锥体

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In this research work, our goal is to scrutinize the case, where water-based nanofluids having single-wall and multi-wall carbon nanotubes (CNTs) flow through a vertical cone. The second law of thermodynamic is taken for the aim of scheming effective heat storage units. The body package is layered in convective heat and diluted permeable medium. The effects of Joule heating, rotary microorganisms, heat generation/absorption, chemical reactions, and heat radiation increase the novelty of the established model. By using a local similarity transformation technique, the partial differential equations (PDEs) change into a coupled differential equation. By using the numerical technique, bvp4c, to get the solution of the conservation equations and their relevant boundary conditions. The parameters appearing in the distribution analysis of the alliance are scrutinized in detail, and the consequences are depicted graphically. It can be perceived that in the situation of composed nanotubes, the velocity of fluid decreases as the magnetic field is increased.
机译:在这项研究中,我们的目标是仔细审查这种情况,其中水基纳米流体具有单壁和多壁碳纳米管(CNT)通过垂直锥体流动。第二种热力学定律是针对诡计有效的蓄热装置的目的。体包装在对流热和稀释的透过介质中层叠。焦耳加热,旋转微生物,发热/吸收,化学反应和热辐射的影响增加了既定模型的新颖性。通过使用局部相似性转换技术,部分微分方程(PDE)变为耦合微分方程。通过使用数值技术BVP4C来获得保护方程的解决方案及其相关边界条件。详细仔细仔细审查出现在联盟的分布分析中的参数,并以图形方式描绘的后果。它可以被认为是,在组成的纳米管的情况下,随着磁场增加,流体的速度降低。

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