Numerical Analysis of Natural Convection Heat Transfer Inside an Inverted T-Shaped Cavity Filled with Nanofluid

Gopal Sen, M. Inam
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Abstract

This assessment is centered on the characteristics of natural convection heat transfer of Aluminium Oxide-Air nanofluid inside an inverted T-shaped enclosure with differentially heated sidewalls. The left edges of the enclosed cavity have been treated as a heated wall and are kept at a constant temperature. The right edges are also maintained at a constant temperature but lower than the heated wall. The top and bottom faces of the cavity have been considered adiabatic. The evaluation has been numerically investigated using ANSYS fluent. The effect of different significant parameters like volume fraction of nanoparticles, the shape of the enclosure, and Rayleigh number on the heat transfer characteristics inside an inverted T shape enclosure have been investigated. In this numerical analysis, a series of DNS simulations have been conducted for different Rayleigh numbers in the range of 103 to 106, the volume fraction of particles in the range 0≤ φ ≤0.1, and for the different aspect ratios for the inverted T shape have been conducted. The outcomes of this CFD analysis indicate a remarkable rise in the average heat transfer coefficient with the rising volume fraction of Al2O3 particles in the air. An increase of the average Nusselt number was also observed with the increase of Rayleigh number, but it drops slightly at a higher volume fraction of nanoparticles due to an increase in conductive heat transfer. For Rayleigh numbers ≥ 104, both the average Nusselt number and average heat transfer coefficient decrease up to a certain shape of the cavity aspect ratio. After that cavity aspect ratio, both the parameters value increase. But in the case of Rayleigh number = 103, both of the values decrease with the increase in the cavity aspect ratio.
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纳米流体填充倒t型腔内自然对流换热的数值分析
这项评估集中在氧化铝-空气纳米流体在具有不同加热侧壁的倒t形外壳内的自然对流换热特性上。封闭腔体的左边缘被处理为加热壁,并保持在恒定温度下。右边缘也保持在一个恒定的温度,但低于加热壁。空腔的顶面和底面被认为是绝热的。利用ANSYS fluent进行了数值计算。研究了纳米颗粒体积分数、壁面形状和瑞利数等重要参数对倒T型壁面传热特性的影响。在数值分析中,对103 ~ 106范围内不同瑞利数、0≤φ≤0.1范围内颗粒体积分数、不同倒T形长径比进行了一系列的DNS模拟。CFD分析结果表明,随着空气中Al2O3颗粒体积分数的增加,平均换热系数显著升高。随着瑞利数的增加,平均努塞尔数也有所增加,但随着纳米颗粒体积分数的增加,平均努塞尔数略有下降,这是由于导热传热的增加。当瑞利数≥104时,平均努塞尔数和平均换热系数减小到一定形状的空腔长径比。在该空腔宽高比之后,这两个参数的值都增大。而当瑞利数= 103时,随着空腔长径比的增大,这两个数值均减小。
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