存在周期边界时双相滞后对垂直孔道自然对流流动的影响

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2024-12-03 DOI:10.1002/htj.23239
N. L. Mukhtar, H. M. Jibril
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引用次数: 0

摘要

本文采用双相滞后(DPL)热传导模型,分析了具有周期性边界条件的粘性流体通过多孔垂直通道时的流动情况。周期性加热受到通道边界的影响。将包含DPL项的模型方程(包括动量方程和能量方程)均以量纲形式表述,并将其转换为无量纲形式,然后通过待定系数和参数变分进行解析求解。确定了温度和速度的实际表达式,以及传热速率和表面摩擦。利用MATLAB构建的图形演示了DPL参数、吸力/喷射、普朗特数、热源/散热器和Strouhal数对无量纲温度和速度分布的影响。在研究过程中发现,DPL模型的引入,以及通道内的吸入/喷射,提高了通道内的速度和流体温度。温度梯度相位滞后对流体温度和速度的减小作用与热流相滞后的减小作用相反。作为一项重要贡献,DPL模型的相位滞后参数和吸入/喷射对流体温度和速度的影响的发现将极大地帮助研究人员推进电气和电子系统的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of Dual Phase Lag on Natural Convection Flow in a Porous Vertical Channel in the Presence of Periodic Boundary

The dual-phase-lag (DPL) heat conduction model is utilized in this research to analyze the fluid flow of viscous fluid passing through a porous vertical channel with periodic boundary conditions. Periodic heating is subjected to the channel boundary. Equations regarding the model, including the momentum and energy equations, in which the DPL term is incorporated, all in dimensional form, are stated and are being transformed to their dimensionless form, then solved analytically by undetermined coefficients and variation of parameters. The actual expressions of temperature and velocity, as well as the heat transfer rate and skin friction, are determined. The effects of the DPL parameters, suction/injection, Prandtl number, heat source/sink, and Strouhal number on the dimensionless temperature and velocity profiles are demonstrated using graphs that are constructed with the aid of MATLAB. It was found during the investigation that the introduction of the DPL model, together with suction/injection in the channel, enhances the velocity and fluid temperature within the channel. Also, the decreasing effect of temperature gradient phase lag on fluid temperature and velocity conversed with that of heat flux phase lag. As an important contribution, the discovery of the effects of the phase-lag parameters of the DPL model and suction/injection on fluid temperature and velocity would significantly help researchers advance the design of electrical and electronic systems.

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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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