含纳米流体的盖驱动立方腔内电子元件混合对流冷却的数值模拟

IF 2.8 4区 工程技术 Q2 ENGINEERING, MECHANICAL
Soufiane Nouari, Mustapha Ait Hssain, Zakaria Lafdaili, Sakina El Hamdani, H. Doghmi
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引用次数: 0

摘要

本研究探讨了在一个充满铜水纳米流体的立方容器内,移动盖子对三个等温块的传热和冷却的影响。该研究的几何形状是三维的,有三个块,假设有一个固定的热温度TH。该研究考虑了上盖运动的两种情况:一种是上盖在纵向上移动,另一种是在横向上移动。采用有限体积法求解考虑边界条件的无量纲控制方程,以低功率为分辨率格式。该研究改变了几个因素,如纳米流体的形状、块的形状因子(3L/4、L/2和L/4)、冷壁的数量、理查德森数(0.01至10)、纳米颗粒的体积分数(0至0.06),在固定的Grashof数(104)下。结果表明,减小理查德森数可以提高换热系数的性能。此外,研究发现纵向运动比横向运动提供更好的块冷却。此外,将砌块的高度从L/4改变为3L/4导致腔内换热减少。如上所述,本研究旨在研究不同盖子运动方向对加热块冷却的影响,以提高各种技术工程设备的热工性能和换热效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulation of Mixed Convection Cooling of Electronic Component within a Lid-driven Cubic Cavity Filled with Nanofluid
This study investigates the effect of the movement of a moving lid on the heat transfer and cooling of three isothermal blocks inside a cubic enclosure filled with a Cu-water nanofluid. The study's geometry is three-dimensional with three blocks which are assumed to have a fixed hot temperature TH. The study considers two cases for the movement of the upper lid: one where the lid moves in the longitudinal direction, and another where it moves in the transverse direction. The dimensionless governing equations considering the boundary conditions are solved by implementing the finite volume approach with the power low as a resolution scheme. The study varies several factors such as the shape of the nanofluid, the shape factor of the blocks (3L/4, L/2, and L/4), the number of cold walls, the Richardson number (0.01 to 10), the volume fraction of nanoparticles (0 to 0.06), at a fixed Grashof number (104). The results indicate that decreasing the Richardson number improves the heat transfer coefficient's performance. Also, the study finds that longitudinal movement provides better block cooling compared to transverse movement. Additionally, changing the height of the blocks from L/4 to 3L/4 resulted in a decrease in heat transfer inside the cavity. As stated, the research aimed to investigate the impact of different directions of lid movement on the cooling of heater blocks, with the goal of enhancing the thermal performance and heat transfer efficiency of various technical engineering equipment.
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来源期刊
自引率
0.00%
发文量
182
审稿时长
4.7 months
期刊介绍: Topical areas including, but not limited to: Biological heat and mass transfer; Combustion and reactive flows; Conduction; Electronic and photonic cooling; Evaporation, boiling, and condensation; Experimental techniques; Forced convection; Heat exchanger fundamentals; Heat transfer enhancement; Combined heat and mass transfer; Heat transfer in manufacturing; Jets, wakes, and impingement cooling; Melting and solidification; Microscale and nanoscale heat and mass transfer; Natural and mixed convection; Porous media; Radiative heat transfer; Thermal systems; Two-phase flow and heat transfer. Such topical areas may be seen in: Aerospace; The environment; Gas turbines; Biotechnology; Electronic and photonic processes and equipment; Energy systems, Fire and combustion, heat pipes, manufacturing and materials processing, low temperature and arctic region heat transfer; Refrigeration and air conditioning; Homeland security systems; Multi-phase processes; Microscale and nanoscale devices and processes.
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