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Thermal performance investigation of SWCNT and graphene quantum dots nanofluids in a shell and tube heat exchanger by using fin blade tubes

机译:用翅片管通过翅片管和管式热交换器在SWCNT和石墨烯量子点纳米流体的热性能研究

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摘要

The experimental study, thermal performance, and pressure drop of single-walled carbon nanotube (SWCNT) and graphene quantum dot (GQD) nanofluids in shell and tube heat exchanger with fin blade tubes are evaluated. The effects of the working fluid (water) volume flow rates (V= 2.5-10 L/min), volume concentration of nanoparticles (ω= 0.0%, 1%, 3%, and 5%), Reynolds number of working fluid (Re = 850-3300), and tube building (heat exchanger with fin blade tubes and without fin blade tube) have been analyzed. Results represent that with augmentation of volume concentration of SWCNT nanoparticle up to 1%, heat transfer rate increases by〜5% and then up to 5% volume concentration of SWCNT nanoparticle decreased about 17%, also this calculation for GQD nanoparticle conducted and results represented decreasing 6% and approximately unchanged heat transfer rate, respectively. With regard to obtained results, heat transfer rate of heat exchanger can be improved by using the fin blades by 188%, compered without fin blade heat exchanger also most related increase for pressure drop of heat exchanger was recorded about 80% for 5% SWCNT of nanofluid. At the end, the mean enhancement in effectiveness of heat exchanger with various concentrations of SWCNT and GQD nanofluids and using the fin blades is about over 100% and 85%, respectively. In fact, the present study shows that applying the new finned tubes in the heat exchanger has more impact, related to the mentioned nanoparticles on the thermal properties of heat exchanger.
机译:评估了单壁碳纳米管(SWCNT)和石墨烯量子点(GQD)壳和管热交换器中的实验研究,热性能和石墨烯(GQD)纳米流体与翅片叶片管中的壳体热交换器。工作流体(水)体积流速(V = 2.5-10L / min),纳米颗粒的体积浓度(ω= 0.0%,1%,3%,5%),雷诺数量的工作流体( RE = 850-3300),并分析了管建筑(带翅片管和没有翅片刀管的热交换器)。结果表示,随着SWCNT纳米颗粒的体积浓度增强至1%,传热速率增加〜5%,然后高达5%的SWCNT纳米颗粒的体积浓度降低约17%,也对GQD纳米粒子进行了该计算和所示的结果分别降低6%和大致不变的传热速率。关于得到的结果,通过使用翅片叶片可以通过使用翅片叶片来提高热交换器的传热速率,镀锌而没有翅片叶片热交换器的热交换器压力下降的大多数升高为5%SWCNT纳米流体。最后,具有各种浓度的SWCNT和GQD纳米流体和使用翅片叶片的热交换器的有效性的平均增强分别超过100%和85%。事实上,本研究表明,在热交换器中施加新的翅片管具有更多的冲击,与上述纳米颗粒有关的热交换器的热性能。

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