纳米流体
热导率
努塞尔数
传热
材料科学
洛伦兹力
机械
热传导
磁场
各向异性
凝聚态物理
哈特曼数
热力学
雷诺数
物理
湍流
复合材料
光学
量子力学
作者
Yubai Li,Hongbin Yan,Mehrdad Massoudi,Wei‐Tao Wu
出处
期刊:Energies
[Multidisciplinary Digital Publishing Institute]
日期:2017-07-22
卷期号:10 (7): 1065-1065
被引量:18
摘要
In this paper, we study the effects of the Lorentz force and the induced anisotropic thermal conductivity due to a magnetic field on the flow and the heat transfer of a ferro-nanofluid. The ferro-nanofluid is modeled as a single-phase fluid, where the viscosity depends on the concentration of nanoparticles; the thermal conductivity shows anisotropy due to the presence of the nanoparticles and the external magnetic field. The anisotropic thermal conductivity tensor, which depends on the angle of the applied magnetic field, is suggested considering the principle of material frame indifference according to Continuum Mechanics. We study two benchmark problems: the heat conduction between two concentric cylinders as well as the unsteady flow and heat transfer in a rectangular channel with three heated inner cylinders. The governing equations are made dimensionless, and the flow and the heat transfer characteristics of the ferro-nanofluid with different angles of the magnetic field, Hartmann number, Reynolds number and nanoparticles concentration are investigated systematically. The results indicate that the temperature field is strongly influenced by the anisotropic behavior of the nanofluids. In addition, the magnetic field may enhance or deteriorate the heat transfer performance (i.e., the time-spatially averaged Nusselt number) in the rectangular channel depending on the situations.
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