Turbulent cylindrical heat flow visualization in free convection regime

IF 1.6 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
S. P. Suresha, G. Janardhana Reddy, Hussain Basha, N. S. Venkata Narayanan, Mikhail A. Sheremet
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引用次数: 0

Abstract

The present article aims to disclose the silent features of Bejan’s heat flow visualization in turbulent boundary layer flow about a vertical cylinder under the effect of low Reynolds number (LRN) k-ε model. The two-dimensional, incompressible, time-dependent average fluid flow and thermal transport equations are derived based on the considered geometry and the used boundary conditions. Turbulent kinetic energy and turbulent kinetic energy's dissipation rate equations are included to determine the eddy viscosity in the flow regime. Further, the turbulent heat function is constructed and is utilized to describe the concept of Bejan’s thermal flow visualization to explore the advanced flow and heat transport features including isotherms, streamlines along with heatlines in a two-dimensional free convection regime. However, the analytical methods are inadequate to solve the produced coupled nonlinear Navier–Stokes equations. Hence, a numerically efficient finite difference scheme namely the Crank–Nicolson scheme has been employed to solve the present problem. Further, the resultant discretized tridiagonal algebraic equations are solved by using the Thomas algorithm. Computational results are analysed to differentiate the laminar and turbulent flows in view of velocity, energy, heatlines, and streamlines for different parametric values. Due to the industrial applications, the skin-friction coefficient and heat transfer rate are also evaluated. From the current analysis, it is noticed that the momentum transport decreased with rising turbulent Prandtl number. Increasing turbulent Reynolds number suppressed the skin-friction coefficient at the surface of the cylinder.

自由对流状态下的湍流圆柱形热流可视化
本文旨在揭示低雷诺数(LRN)k-ε模型作用下垂直圆柱体湍流边界层流动中贝扬热流可视化的静默特征。根据所考虑的几何形状和所使用的边界条件,推导了二维、不可压缩、随时间变化的平均流体流动和热传输方程。湍流动能和湍流动能耗散率方程用于确定流动状态下的涡流粘度。此外,还构建了湍流热函数,并将其用于描述贝扬热流可视化概念,以探索先进的流动和热传输特征,包括二维自由对流机制中的等温线、流线和热线。然而,分析方法不足以解决产生的耦合非线性纳维-斯托克斯方程。因此,我们采用了一种高效的数值有限差分方案,即 Crank-Nicolson 方案来解决当前的问题。此外,利用托马斯算法求解了离散化的三对角代数方程。对计算结果进行了分析,从速度、能量、热线和不同参数值的流线角度对层流和湍流进行了区分。考虑到工业应用,还对表皮摩擦系数和传热率进行了评估。从目前的分析可以看出,动量传输随着湍流普朗特数的增加而减少。湍流雷诺数的增加抑制了气缸表面的集肤摩擦系数。
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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来源期刊
Indian Journal of Physics
Indian Journal of Physics 物理-物理:综合
CiteScore
3.40
自引率
10.00%
发文量
275
审稿时长
3-8 weeks
期刊介绍: Indian Journal of Physics is a monthly research journal in English published by the Indian Association for the Cultivation of Sciences in collaboration with the Indian Physical Society. The journal publishes refereed papers covering current research in Physics in the following category: Astrophysics, Atmospheric and Space physics; Atomic & Molecular Physics; Biophysics; Condensed Matter & Materials Physics; General & Interdisciplinary Physics; Nonlinear dynamics & Complex Systems; Nuclear Physics; Optics and Spectroscopy; Particle Physics; Plasma Physics; Relativity & Cosmology; Statistical Physics.
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