磁场和滑移条件对具有粘性耗散的旋转多孔通道内流动的影响

IF 2.6 Q2 THERMODYNAMICS Heat Transfer Pub Date : 2024-12-02 DOI:10.1002/htj.23241
Vineet Kumar Verma, Abdul Faiz Ansari
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引用次数: 0

摘要

本研究考察了导电流体在恒定温度下通过由固定的、不渗透的水平板包围的旋转多孔通道的稳定流动。主要目的是探索磁场、壁滑移条件和粘性耗散的综合影响。通道以恒定的角速度旋转,在壁面施加滑动条件。压力梯度驱动一次流,旋转产生二次流。得到了流速剖面和体积流量的解析解,并利用MATLAB的“bvp4c”函数计算了温度分布。该研究对不同Hartmann和Taylor数下的初级和次级流速度的行为提供了新的见解,强调了滑移条件的影响。此外,结合这些参数分析了埃克特数对温度的影响。这些发现为利用多孔通道中的导电流体增强旋转机械的冷却系统提供了有价值的理论视角。该研究为未来研究非定常流动条件以及变磁场和转速对旋转多孔通道中流体行为的影响开辟了道路。
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Effect of Magnetic Field and Slip Conditions on Flow in a Rotating Porous Channel With Viscous Dissipation

This study examines the steady flow of an electrically conducting fluid through a rotating porous channel bounded by stationary, impermeable horizontal plates at constant temperature. The primary aim is to explore the combined effects of a magnetic field, wall slip conditions, and viscous dissipation. The channel rotates at a constant angular velocity, with slip conditions applied at the walls. A pressure gradient drives the primary flow, while rotation generates the secondary flow. Analytical solutions for velocity profiles and volumetric flow rates are obtained, and the temperature distribution is calculated using MATLAB's “bvp4c” function. The research offers novel insights into the behavior of primary and secondary flow velocities under different Hartmann and Taylor numbers, emphasizing the impact of slip conditions. Additionally, the influence of the Eckert number on temperature is analyzed in conjunction with these parameters. These findings contribute valuable theoretical perspectives for enhancing cooling systems in rotating machinery using conductive fluids in porous channels. This study opens avenues for future research to investigate unsteady flow conditions and the effects of variable magnetic fields and rotational speeds on fluid behavior in rotating porous channels.

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来源期刊
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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