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Computational study of unsteady mixed convection heat transfer of nanofluids in a 3D closed lid-driven cavity

机译:3D封闭盖驱动腔中纳米流体非稳态混合对流传热的计算研究

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Mixed heat convection of three-dimensional unsteady flow of four different types of fluids in a double lid-driven enclosure is simulated by a two-phase mixture model in this project. The cubic cavity with moving isothermal sidewalls has uniform heat flux on the middle part of the bottom wall, and the other remaining walls forming the enclosure are adiabatic and stationary. The relevant parameters in the present research include Reynolds number Re (5000-30,000), nanoparticle diameter (25 nm-85 nm), and nanoparticle volume fraction (0.00-0.08). In general, remarkable effects on the heat transfer and fluid patterns are observed by using nanofluids in comparison to the conventional fluid. Different types of nanofluids or different diameters of nanoparticles can make pronounced changes in the heat convection ratio. In addition, increasing in either volume fraction of nanoparticles or Reynolds number leads to increasing in the Nusselt number, fluctuation kinetic energy and root mean square velocity of the fluid in the domain. It is also found that both URANS and LES methods have shown good performance in dealing with unsteady flow conducted in this project. However, the comparisons have elucidated clearly the advantages of the LES approach in predicting more detailed heat and flow structures.
机译:在这个项目中,通过两相混合模型模拟了在双盖驱动的外壳中四种不同类型的流体的三维非稳态流动的混合热对流。具有等温侧壁移动的立方腔体在底壁的中部具有均匀的热通量,而构成外壳的其他其余壁则是绝热且固定的。本研究中的相关参数包括雷诺数Re(5000-30,000),纳米粒子直径(25 nm-85 nm)和纳米粒子体积分数(0.00-0.08)。通常,与常规流体相比,使用纳米流体可观察到对传热和流体模式的显着影响。不同类型的纳米流体或不同直径的纳米颗粒可以使热对流率发生明显变化。另外,纳米颗粒的体积分数或雷诺数的增加导致域中流体的努塞尔数,波动动能和均方根速度的增加。还发现,URANS和LES方法在处理此项目中进行的不稳定流动方面均显示出良好的性能。但是,这些比较清楚地说明了LES方法在预测更详细的热量和流量结构方面的优势。

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