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Mixed convective hybrid nanofluid flow in lid-driven undulated cavity: effect of MHD and Joule heating

机译:盖驱动波状空腔中的混合对流混合纳米流体流动:MHD和焦耳热的影响

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A numerical analysis has been conducted to show the effects of magnetohydrodynamic (MHD) and Joule heating on heat transfer phenomenon in a lid driven triangular cavity. The heat transfer fluid (HTF) has been considered as water based hybrid nanofluid composed of equal quantities of Cu and TiOsub2 /subnanoparticles. The bottom wall of the cavity is undulated in sinusoidal pattern and cooled isothermally. The left vertical wall of the cavity is heated while the inclined side is insulated. The two dimensional governing partial differential equations of heat transfer and fluid flow with appropriate boundary conditions have been solved by using Galerkin's finite element method built in COMSOL Multyphysics. The effects of Hartmann number, Joule heating, number of undulation and Richardson number on the flow structure and heat transfer characteristics have been studied in details. The values of Prandtl number and solid volume fraction of hybrid nanoparticles have been considered as fixed. Also, the code validation has been shown. The numerical results have been presented in terms of streamlines, isotherms and average Nusselt number of the hybrid nanofluid for different values of governing parameters. The comparison of heat transfer rate by using hybrid nanofluid, Cu-water nanofluid, TiOsub2 /sub-water nanofluid and clear water has been also shown. Increasing wave number from 0 to 3 enhances the heat transfer rate by 16.89%. The enhanced rate of mean Nusselt number for hybrid nanofluid is found as 4.11% compared to base fluid.
机译:进行了数值分析,以显示磁流体动力学(MHD)和焦耳热对盖驱动三角腔中传热现象的影响。传热流体(HTF)被认为是由等量的Cu和TiO 2 纳米颗粒组成的水基混合纳米流体。空腔的底壁呈正弦波状起伏并等温冷却。腔的左垂直壁被加热,而倾斜侧被绝缘。通过使用COMSOL Multyphysics中建立的Galerkin有限元方法,已经解决了在适当边界条件下传热和流体流动的二维控制偏微分方程。详细研究了哈特曼数,焦耳热,起伏数和理查森数对流动结构和传热特性的影响。杂化纳米颗粒的普朗特数和固体体积分数的值被认为是固定的。此外,还显示了代码验证。对于不同的控制参数值,已经根据混合纳米流体的流线,等温线和平均努塞尔数表示了数值结果。还显示了使用混合纳米流体,铜水纳米流体,TiO 2 -水纳米流体和清水的传热速率的比较。波数从0增加到3可提高传热率16.89%。与基础流体相比,混合纳米流体的平均Nusselt数提高了4.11%。

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