分析倾斜针上 MHD(50:50)滑移流的熵产生

Selvaraj Priya, Gundada Raju Rajamani, Bhose Ganga, Abdul Kaffoor Abdul Hakeem, Pachiyappan Ragupathi
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摘要

本研究的主要目的是量化斜针上磁流体滑移流系统的熵产生率。熵的产生是流动过程中不可逆和低效率的衡量标准。流体界面的滑移流动条件会对流动特性和传热速率产生重大影响。在混合纳米流体流中,由非磁性和磁性(Al2O3 和 Fe3O4)纳米粒子组成的纳米流体被视为基础流体。此外,还考虑了倾斜磁场的影响。利用相似变换将 PDE 治理方程转换为 ODE,并通过基于 BVP4C 的数值技术进行求解。结果表明,磁参数、混合对流参数、纳米固体颗粒体积分数和普朗特数等关键参数受到动量和热剖面的显著影响。熵和贝扬数也被认为是各种关系的组合参数。这些分析表明,在滑移情况下,提高磁参数会增加混合纳米流体的热剖面。研究了磁场对 MHD 流动和熵产生的影响,揭示了磁场和纳米粒子之间相互作用导致的熵产生的显著变化。这项分析了解了 MHD 和滑移效应对熵产生的影响,特别是在新出现的 50:50 流体混合物的情况下。与传统流体相比,混合纳米流体具有更好的导热性,可以增强斜针的冷却或加热能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysing entropy generation of MHD (50:50) slip flow over an inclined needle
The primary objective of this study is to quantify the rate of entropy generation within the Magnetohydrodynamic (MHD) slip flow system over the inclined needle. Entropy generation is a measure of the irreversibility and inefficiency in the flow process. The slip flow condition at the fluid interface can significantly impact the flow characteristics and heat transfer rates. In the hybrid nanofluid flow, which consists of non-magnetic and magnetic (Al2O3 and Fe3O4) are nanoparticles,  are considered as the base fluid. Furthermore, the effects of inclined magnetic fields are taken into interpretation. The PDE’s governing equations are converted into ODE’s using similarity transformations and solved by a numerical technique based on BVP4C. The results illustrate that crucial parameter such as the magnetic parameter, mixed convection parameter, nanoparticles of solid volume fractions, and Prandtl numbers are pointedly impacted by momentum and thermal profiles. The entropy and Bejan number also consider being various relationship combined parameters. These analyses protest that raising the magnetic parameter estates an increase in the hybrid nanofluid thermal profile under slip circumstances. Examined magnetic field impact on flow and entropy generation in MHD flows, revealing significant changes in entropy generation due to interaction between magnetic field and nanoparticles. This analysis understands the impact of MHD and slip effects on entropy generation, particularly in the context of the newly emerging 50:50 fluid mixture. Hybrid nanofluids have been shown to have improved thermal conductivity compared to traditional fluids, which can enhance the cooling or heating capabilities of the inclined needle.
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