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Thermal performance of fully wet longitudinal porous fin with temperature-dependent thermal conductivity, surface emissivity and heat transfer coefficient

机译:全湿纵向多孔翅片的热性能,具有温度依赖性导热性,表面发射率和传热系数

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摘要

Purpose - The purpose of this paper is to study the thermal behaviour of a fully wet porous fin of longitudinal profile. The significance of radiative and convective heat transfer has been scrutinised along with the simultaneous variation of surface emissivity, heat transfer coefficient and thermal conductivity with temperature. The emissivity of the surface and the thermal conductivity are considered as linear functions of the local temperature between fin and the ambient. Darcy's model was considered to formulate the heat transfer equation. According to this, the porous fin permits the flow to penetrate through it and solid-fluid interaction occurs. Design/methodology/approach - Runge-Kutta-Fehlberg fourth-fifth-order method has been used to solve the reduced non-dimensionalized ordinary differential equation involving highly nonlinear terms. Findings - The impact of pertinent parameters, such as convective parameter, radiative parameter, conductivity parameter, emissivity parameter, wet porous parameter, eta, on the temperature profiles were elaborated mathematically with the plotted graphs. The heat transfer from the fin enhances with the rise in convective parameter. Originality/value - The wet nature of the fin enhances heat transfer and in many practical applications the parameters, such as thermal conductivity, heat transfer coefficient as well as surface emissivity, vary with temperature. Hence, the main objective of the current study is to depict the significance of simultaneous variation in surface emissivity, heat transfer coefficient and thermal conductivity with respect to temperature under natural convection and radiation condition in a totally wetted longitudinal porous fin.
机译:目的 - 本文的目的是研究纵向湿润的全湿多孔鳍片的热行为。辐射和对流传热的重要性已经仔细审查了表面发射率,传热系数和温度导热率的同时变化。表面和导热率的发射率被认为是翅片和环境温度之间的局部温度的线性函数。达西的模型被认为是制定传热方程。据此,多孔翅片允许流动穿透它,并且发生固体流体相互作用。设计/方法/方法 - Runge-Kutta-Fehlberg第四阶方法已被用于解决涉及高度非线性术语的减少的非维度常微分方程。结果 - 用绘图的图表在数学上阐述了相关参数,例如对流参数,辐射参数,电导率参数,发射率参数,湿多孔参数,ETA的影响。来自翅片的热传递随着对流参数的升高而增强。原创性/值 - 翅片的湿润性质增强了传热,并且在许多实际应用中,参数,导热系数,传热系数以及表面发射率,随温度而变化。因此,目前研究的主要目的是描绘与完全湿润的纵向多孔翅片中的自然对流和辐射条件下的温度,在完全湿润的纵向多孔翅片中的温度下同时变化的同时变化的重要性。

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