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首页> 外文期刊>International Journal of Thermal Sciences >Mixed convection heat transfer performance of water-based nanofluids in lid-driven cavity with wavy surfaces
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Mixed convection heat transfer performance of water-based nanofluids in lid-driven cavity with wavy surfaces

机译:波浪形盖驱动腔中水基纳米流体的混合对流传热性能

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A numerical investigation is performed into the mixed convection heat transfer characteristics of water-based nanofluids confined within a lid-driven cavity. In modeling the cavity, it is assumed that the left and right walls have a wavy surface, while the upper and lower walls are both flat. In addition, it is assumed that the left wavy-wall has a constant heat flux, the right wavy-wall is maintained at a low temperature, and the upper and lower walls are both insulated and move horizontally. The analysis considers three different nanofluids, namely Cu-water, Al_2O_3-water and TiO_2-water. In performing the analysis, the governing equations are modeled using the Boussinesq approximation and are solved numerically using the finite-volume method. The simulations focus on the respective effects of the nanoparticle volume fraction, the type of nanofluid, the Richardson number, the Grashof number and the wavy surface geometry parameters on the mean Nusselt number. The results show that for all considered values of the Richardson number, the mean Nusselt number increases with an increasing volume fraction of nanoparticles. In addition, it is shown that the Cu-water nanofluid yields the best heat transfer performance of the three nanofluids. Furthermore, it is shown that the mean Nusselt number increases with an increasing Grashof number given a constant Richardson number. Finally, the results show that for a given nanofluid, the mean Nusselt number can be optimized via an appropriate tuning of the wavy surface geometry parameters.
机译:对封闭在盖驱动腔内的水基纳米流体的混合对流传热特性进行了数值研究。在对腔体进行建模时,假定左壁和右壁均具有波浪形表面,而上壁和下壁均平坦。另外,假设左波浪形壁具有恒定的热通量,右波浪形壁被保持在低温,并且上壁和下壁均被绝缘并且水平移动。该分析考虑了三种不同的纳米流体,即Cu-水,Al_2O_3-水和TiO_2-水。在执行分析时,使用Boussinesq逼近对控制方程建模,并使用有限体积法对其进行数值求解。模拟关注纳米颗粒体积分数,纳米流体的类型,理查森数,Grashof数和波浪表面几何参数对平均Nusselt数各自的影响。结果表明,对于所有考虑的理查森数值,平均努塞尔数均随着纳米粒子体积分数的增加而增加。另外,表明铜水纳米流体产生了三种纳米流体中最好的传热性能。此外,表明在给定的Richardson数的情况下,平均Nusselt数随Grashof数的增加而增加。最后,结果表明,对于给定的纳米流体,可以通过适当调整波浪形表面几何参数来优化平均Nusselt数。

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