充满微极流体的偏心环空内的自由对流

F. Mahfouz, H. Imtiaz
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引用次数: 4

摘要

本文用傅立叶谱方法对偏心环空中充满微极流体的自然对流问题进行了数值研究。环空内壁加热并保持恒温,而外壁冷却并保持恒温。求解了动量、角动量和能量的完整控制方程,给出了流场和热场的详细情况。环空热对流过程主要受瑞利数Ra、普朗特数Pr、半径比Rr、偏心率e和微极流体材料参数的控制。材料参数为无量纲自旋梯度粘度λ、无量纲微惯性密度B和无量纲涡旋粘度D。本研究考虑Ra为105,偏心率为-0.6 ~ +0.6,而微极流体的无量纲材料参数D为0 ~ 10。Pr和Rr分别固定为0.7和2.6,B和λ赋值为1。研究考虑了控制参数对流场和热场的影响,重点研究了控制参数对平均努塞尔数的影响。研究表明,在一定的控制参数下,在一定的偏心距下,环空换热最小。研究还表明,随着参数D的增大,环空换热速率减小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Free convection within an eccentric annulus filled with Micropolar fluid
In this paper, the problem of natural convection in a circular eccentric annulus filled with Micropolar fluid has been numerically investigated using Fourier Spectral Method. The annulus inner wall is heated and maintained at constant temperature while the outer wall is cooled and kept at constant temperature. The full governing equations of momentum, angular momentum and energy have been solved to give the details of flow and thermal fields. The heat convection process in the annulus is mainly controlled by Rayleigh number Ra, Prandtl number Pr, radius ratio Rr, eccentricity e and material parameters of Micropolar fluid. The material parameters are dimensionless spin gradient viscosity λ, dimensionless micro-inertia density B and dimensionless vortex viscosity D. This study considers Ra up to 105 and the eccentricity is varied between -0.6 and +0.6 while dimensionless material parameters D of micropolar fluid is considered between 0 and 10. Both Pr and Rr are fixed at 0.7, 2.6 respectively while B and λ are assigned the value of 1. The study considers the effect of controlling parameters on flow and thermal fields with emphasis on the effect of these parameters on mean Nusselt number. The study has shown that for certain controlling parameters the heat transfer in the annulus is minimum at a certain eccentricity. The study also has shown that as parameter D increases the rate of heat transfer through the annulus decreases.
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