热分层和质量分层对具有周期性温度变化和变质量扩散的无限垂直板非定常MHD抛物流的联合影响

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2024-12-03 DOI:10.1002/htj.23240
Digbash Sahu, Rudra Kanta Deka
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引用次数: 0

摘要

本文研究了沿无限垂直板的非定常MHD抛物流动力学,重点研究了周期性温度变化和变质量扩散下热分层和质量分层的影响。本研究利用拉普拉斯变换技术推导精确解,创新地将热效应和质量分层效应集成在一起,而无需诉诸近似。主要目的是评估这些分层如何影响不同磁场环境下的流动动力学、温度和浓度分布。该研究将这些发现与经典的非分层案例进行了对比,提供了不同条件下流体行为的详细比较。结果表明,热分层和质量分层大大降低了速度并稳定了温度分布,表明在控制扩散过程的同时对流体运动有阻尼作用。这些分层导致更高的努塞尔和舍伍德数,表明提高了传热和传质效率。相反,分层的缺失导致了更高的流速和更不稳定的温度和浓度分布。研究结果强调了分层在优化流体动力学和提高传热传质过程效率方面的重要作用,为此类条件普遍存在的工程和环境应用提供了重要见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combined Impacts of Thermal and Mass Stratification on Unsteady MHD Parabolic Flow Along an Infinite Vertical Plate With Periodic Temperature Variation and Variable Mass Diffusion

This study investigates the dynamics of unsteady MHD parabolic flow along an infinite vertical plate, with a focus on the impacts of thermal and mass stratification under periodic temperature variations and variable mass diffusion. Utilizing the Laplace transform technique for deriving exact solutions, this research innovatively integrates both thermal and mass stratification effects without resorting to approximations. The main objective is to assess how these stratifications influence flow dynamics, temperature, and concentration profiles in environments with varying magnetic fields. The study contrasts these findings against classical non-stratification cases, offering a detailed comparison of fluid behavior under different conditions. Results indicate that thermal and mass stratifications substantially decrease velocity and stabilize temperature profiles, pointing to a damping effect on fluid motion while also controlling diffusion processes. These stratifications lead to higher Nusselt and Sherwood numbers, suggesting improved heat and mass transfer efficiencies. In contrast, the absence of stratification results in higher velocities and less stable temperature and concentration distributions. The findings underscore the significant role of stratification in optimizing fluid dynamics and enhancing the efficiency of heat and mass transfer processes, providing crucial insights for engineering and environmental applications where such conditions prevail.

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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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