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首页> 外文期刊>Journal of Thermal Engineering >Numerical and Experimental Investigations on Performance Evaluation of a Conical Offset Vortex Generator Inserts to Improve Convective Heat Transfer Coefficient
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Numerical and Experimental Investigations on Performance Evaluation of a Conical Offset Vortex Generator Inserts to Improve Convective Heat Transfer Coefficient

机译:关于锥形偏移涡流发生器插入件的性能评价的数值和实验研究,提高对流传热系数

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The passive augmentation technique is widely used by researchers from thermal engineering field and it has shown excellent results for convective heat transfer rate. This paper shows the numerical and experimental findings for convective heat transfer characteristics and friction coefficient. Tests were conducted for turbulent flow, using air as medium through a uniformly heated steel pipe containing a novel kind of insert named as Conical offset Vortex Generator (COVG). The simulation tests were performed for turbulent flow with varying Reynolds number in the range 4000 to 50000. The parameters were analyzed during tests are pitch to smooth tube diameter ratio (p/d) and angle of attack (α). Various simulation tests were carried out with the help of ANSYS Fluent software to optimize the geometry. The simulation tests were carried out for different angle of attack (α = 15°, 30°, 60°). COVG with angle of attack (α = 60°) shows more enhancement in heat transfer rate, hence it was used for the experimentation purpose. The experimentation is conducted for various pitch to diameter (p/d = 1.18, 1.97, 3.94). The numerical and experimental results show improvement in heat transfer rate as there is decrease in pitch to smooth tube diameter ratio (p/d) and it also increases the value of friction factor. The reason behind the improvement in heat transfer rate is that, the braking of thermal boundary layer near the wall surface. Experimental results show the enhancement of Nusselt number from 3.46 – 6.7.
机译:来自热电工程领域的研究人员广泛使用的被动增强技术,对对流传热速率显示出优异的结果。本文显示了对流传热特性和摩擦系数的数值和实验结果。通过均匀加热的钢管使用空气作为介质进行湍流进行测试,该钢管被称为锥形偏移涡流发生器(CoVG)。对湍流进行仿真试验,该湍流范围为4000至50000。在测试期间分析参数是平坦的管直径比(P / d)和迎角(α)。在ANSYS流畅的软件的帮助下进行各种仿真测试,以优化几何形状。进行模拟测试以不同的攻角(α= 15°,30°,60°)。具有攻击角度(α= 60°)的CoVG显示出在传热速率上的提高,因此它用于实验目的。实验进行各种间距至直径(P / D = 1.18,1.97,3.94)。数值和实验结果显示出传热速率的改善,因为距球直径比率(P / D)的间距降低,并且还增加了摩擦因子的值。传热速率改善背后的原因是,在壁表面附近的热边界层的制动。实验结果表明,从3.46 - 6.7的营养数的增强。

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