Numerical Analysis of Laminar Natural Convection Inside Enclosed Squared and Trapezoidal Cavities at Different Inclination Angles

Mohammad Sultan Mahmud, Md. Mahbubur Rahman, Md Nahid Zaman Liton
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Abstract

The effects of cavity shape by inclination angle on laminar natural convection inside trapezoidal and square-shaped cavities have been numerically investigated in this work. Several simulations had been conducted for various inclinations of the trapezoidal cavity at Rayleigh numbers (Ra) =105 to 106 in a laminar flow regime. The walls at the left and right sides of the cavities were heated isothermally, while the walls at the top and bottom sides were adiabatic. The problem was assumed to be 2-D and solved using the software package ANSYS Fluent 16.2. Cavity filled with air is examined in two distinct instances; varying boundary layers and the flow generated for the natural convection. This numerical study analyzed the flow characteristics, temperature distribution, and Nusselt number. The analysis reveals that as the Rayleigh number increases, the Nusselt number also increases, with a more pronounced effect at higher Rayleigh numbers. It has been observed that there is a substantial effect of cavity shapes on the Nusselt number. The presence of an angled wall inhibits convection resulting in stronger flow in the squared cavity compared to the trapezoidal cavity. From numerical results, it is also found that the temperature distribution at Ra = 105 is wider than the temperature distribution at Ra= 106.
不同倾角下封闭式方形和梯形空腔内层流自然对流的数值分析
本研究对梯形和方形空腔内倾角对层流自然对流的影响进行了数值研究。在层流条件下,对雷利数(Ra)=105 至 106 的梯形空腔的不同倾角进行了多次模拟。空腔左右两侧的腔壁为等温加热,而顶部和底部的腔壁为绝热加热。假设问题为二维,并使用 ANSYS Fluent 16.2 软件包进行求解。对充满空气的空腔进行了两种不同情况的研究:变化的边界层和自然对流产生的流动。这项数值研究分析了流动特性、温度分布和努塞尔特数。分析表明,随着雷利数的增加,努塞尔特数也随之增加,雷利数越大,效果越明显。据观察,空腔形状对努塞尔特数有很大影响。与梯形空腔相比,斜壁的存在抑制了对流,导致方形空腔中的流动更强。数值结果还发现,Ra=105 时的温度分布比 Ra=106 时的温度分布更广。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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