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Heat Transfer Enhancement of Laminar Nanofluids Flow in a Circular Tube Fitted with Parabolic-Cut Twisted Tape Inserts

机译:层状纳米流体在装有抛物线切割扭曲带插入件的圆管中的传热增强

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摘要

Numerical investigation has been carried out on heat transfer and friction factor characteristics of copper-water nanofluid flow in a constant heat-fluxed tube with the existence of new configuration of vortex generator using Computational Fluid Dynamics (CFD) simulation. Two types of swirl flow generator: Classical twisted tape (CTT) and Parabolic-cut twisted tape (PCT) with a different twist ratio (y = 2.93, 3.91 and 4.89) and different cut depth (w = 0.5, 1.0 and 1.5 cm) with 2% and 4% volume concentration of CuO nanofluid were used for simulation. The effect of different parameters such as flow Reynolds number, twist ratio, cut depth and nanofluid were considered. The results show that the enhancement of heat transfer rate and the friction factor induced by the Classical (CTT) and Parabolic-cut (PCT) inserts increases with twist ratio and cut depth decreases. The results also revealed that the heat transfer enhancement increases with an increase in the volume fraction of the CuO nanoparticle. Furthermore, the twisted tape with twist ratio (y = 2.93) and cut depth w = 0.5 cm offered 10% enhancement of the average Nusselt number with significant increases in friction factor than those of Classical twisted tape.
机译:利用计算流体动力学(CFD)模拟,对具有新型涡流发生器的恒定热流管中铜-水纳米流体流的传热和摩擦系数特性进行了数值研究。两种类型的旋流发生器:经典的扭曲带(CTT)和抛物线切割的扭曲带(PCT),具有不同的扭曲比(y = 2.93、3.91和4.89)和不同的切割深度(w = 0.5、1.0和1.5 cm)分别使用体积浓度为2%和4%的CuO纳米流体进行模拟。考虑了诸如流雷诺数,扭曲比,切割深度和纳米流体等不同参数的影响。结果表明,由经典(CTT)和抛物线切割(PCT)刀片引起的传热速率和摩擦系数的提高随着扭曲比的增加而增加,并且切割深度减小。结果还表明,随着CuO纳米颗粒的体积分数的增加,传热增强也增加。此外,具有扭曲比(y = 2.93)和切割深度w = 0.5?cm的双绞带可提高平均Nusselt数10%,并且摩擦系数比传统双绞带明显提高。

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