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Experimental investigation on heat transfer and flow resistance of drag-reducing alumina nanofluid in a fin-and-tube heat exchanger

机译:翅片管式热交换器中阻力氧化铝纳米流体传热和流动性的实验研究

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摘要

One of the main drawbacks of using nanofluids as a heat transfer media which limited its application in industries is higher pressure drop in comparison with the conventional fluids. In this research, it is the aim to decrease the nanofluid pressure drop using drag reducing agent (DRA). Water based gamma-alumina nanofluids at different concentrations were mixed with different concentrations of cetyltrimethylammonium chloride (CTAC) surfactant to reduce the nanofluid pressure drop. On the other hand, it is very important to know that the addition of DRA could decrease the heat transfer performance of the system. So, it is a complicated problem since we have two objective functions (pressure drop and heat transfer) which are varied inversely. The addition of nanoparticles increases both objective functions while the addition of DRA decreases both of them. Results showed that the use of 0.2 %wt nanofluid (without the addition of DRA) causes %20 heat transfer enhancement with the penalty of %5 increase in pressure drop. It was also obtained that at the optimum condition, which was the highest concentration of CTAC (100 ppm) and the highest concentration of nanoparticle (0.2 %wt), the overall heat transfer coefficient enhancement of %17.2, and the friction factor reduction of %4.8 could be obtained in comparison with pure water.
机译:使用纳米流体作为传热介质的主要缺点之一,其限制其在行业中的应用是与常规流体相比的更高的压降。在该研究中,目的是使用阻力还原剂(DRA)降低纳米流体压降。将不同浓度的水基γ-氧化铝纳米流体与不同浓度的甲酰基三甲基氯化铵(CTAC)表面活性剂混合以减少纳米流体压降。另一方面,重要的是要知道DRA的添加可以降低系统的传热性能。因此,这是一个复杂的问题,因为我们有两个客观功能(压降和传热),它们变得相反。添加纳米颗粒的添加增加了目标函数,同时添加DRA减少了它们。结果表明,使用0.2%wt纳米流体(不添加DRA),导致%20传热增强,随着5%的压降增加。还获得了最佳条件,其是CTAC(100ppm)的最高浓度和纳米颗粒的最高浓度(0.2%wt),总传热系数增强%17.2,摩擦因子减少%与纯水相比,可以获得4.8。

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