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Pressure drop and Heat Transfer Characteristics of MWCNT/Heat Transfer Oil Nanofluid Flow inside Microfinned Helical Tubes with Constant Wall Temperature

机译:MWCNT /传热油纳米流体流动恒定壁温微杂环螺旋管内部的压降和传热特性

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Experiments are performed to investigate the single-phase flow heat transfer augmentation of MWCNT/HT-B oil in both smooth and microfinned helical tubes with constant wall temperature. The tests in laminar regime were carried out in helical tubes with three curvature ratios of 2R/d=25, 30 and 35. Flow Reynolds number varied from 170 to 1800 resulting in laminar flow regime. The effect of some parameters such as the nanoparticles concentration, the dimensionless curvature radius (2R/d) and the Reynolds number on heat transfer was investigated for the laminar flow regime. The weight fraction of nanoparticles in base fluid was less than 0.4%. Within the applied range of Reynolds number; results indicated that for smooth helical tube the addition of nanoparticles to the base fluid enhanced heat transfer remarkably. However, compared to the smooth helical tube, the average heat transfer augmentation ratio due to nanoparticle addition for finned tube was small, about 17%. Also, by increasing the weight fraction of nanoparticles in microfinned helical tubes, no substantial changes were observed in the rate of heat transfer enhancement. For the pressure drop, the results show that the pressure drop of nanofluids was slightly higher than the base fluid and increase as the volume concentrations go up.
机译:进行实验以研究具有恒定壁温的光滑和微啮合螺旋管中MWCNT / HT-B油的单相流动传热增强。层状制度中的测试在螺旋管中进行,其具有2r / d = 25,30和35的三个曲率比。流量雷诺数从170到1800变化,导致层流变管。研究了一些参数,例如纳米颗粒浓度,无量纲曲率半径(2r / d)和雷诺数进行热传递上的效果,用于层流动状态。基础流体中纳米颗粒的重量分数小于0.4%。在雷诺数的应用范围内;结果表明,对于光滑的螺旋管,将纳米颗粒加入基础流体增强的热传递显着。然而,与光滑的螺旋管相比,由于粉末管的纳米颗粒添加引起的平均传热增强比例小,约为17%。而且,通过增加微蛋白螺旋管中纳米颗粒的重量级分,在传热增强速率下没有观察到大量变化。对于压降,结果表明,纳米流体的压降略高于基础流体,随着体积浓度的增加而增加。

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