Zhang Lingyun, Hu Yupeng, Li Minghai
School of Aerospace Engineering, Beijing Institute of Technology, Beijing 100000, China.
Institute of System Engineering, China Academy of Engineering Physics, Mianyang 621999, China.
Nanomaterials (Basel). 2021 Apr 12;11(4):990. doi: 10.3390/nano11040990.
Natural convection heat transfer in a porous annulus filled with a Cu nanofluid has been investigated numerically. The Darcy-Brinkman and the energy transport equations are employed to describe the nanofluid motion and the heat transfer in the porous medium. Numerical results including the isotherms, streamlines, and heat transfer rate are obtained under the following parameters: Brownian motion, Rayleigh number (10-10), Darcy number (10-10), nanoparticle volume fraction (0.01-0.09), nanoparticle diameter (10-90 nm), porosity (0.1-0.9), and radius ratio (1.1-10). Results show that Brownian motion should be considered. The nanoparticle volume fraction has a positive effect on the heat transfer rate, especially with high Rayleigh number and Darcy number, while the nanoparticle diameter has an inverse influence. The heat transfer rate is enhanced with the increase of porosity. The radius ratio has a significant influence on the isotherms, streamlines, and heat transfer rate, and the rate is greatly enhanced with the increase of radius ratio.
对充满铜纳米流体的多孔环形空间内的自然对流换热进行了数值研究。采用达西-布林克曼方程和能量传输方程来描述纳米流体在多孔介质中的运动和传热。在以下参数下获得了包括等温线、流线和传热速率在内的数值结果:布朗运动、瑞利数(10⁻¹⁰)、达西数(10⁻¹⁰)、纳米颗粒体积分数(0.01 - 0.09)、纳米颗粒直径(10 - 90纳米)、孔隙率(0.1 - 0.9)和半径比(1.1 - 10)。结果表明应考虑布朗运动。纳米颗粒体积分数对传热速率有积极影响,特别是在高瑞利数和达西数时,而纳米颗粒直径则有相反的影响。传热速率随孔隙率的增加而提高。半径比对等温线、流线和传热速率有显著影响,且随着半径比的增加,传热速率大幅提高。