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Thermal Performance of Hybrid-Inspired Coolant for Radiator Application

机译:散热器应用混合动力冷却液的热性能

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摘要

Due to the increasing demand in industrial application, nanofluids have attracted the considerable attention of researchers in recent decades. The addition of nanocellulose (CNC) with water (W) and ethylene glycol (EG) to a coolant for a radiator application exhibits beneficial properties to improve the efficiency of the radiator. The focus of the present work was to investigate the performance of mono or hybrid metal oxide such as Al O and TiO with or without plant base-extracted CNC with varying concentrations as a better heat transfer nanofluid in comparison to distilled water as a radiator coolant. The CNC is dispersed in the base fluid of EG and W with a 60:40 ratio. The highest absorption peak was noticed at 0.9% volume concentration of TiO , Al O , CNC, Al O /TiO , and Al O /CNC nanofluids which indicates a better stability of the nanofluids’ suspension. Better thermal conductivity improvement was observed for the Al O nanofluids in all mono nanofluids followed by the CNC and TiO nanofluids, respectively. The thermal conductivity of the Al O /CNC hybrid nanofluids with 0.9% volume concentration was found to be superior than that of the Al O /TiO hybrid nanofluids. Al O /CNC hybrid nanofluid dominates over other mono and hybrid nanofluids in terms of viscosity at all volume concentrations. CNC nanofluids (all volume concentrations) exhibited the highest specific heat capacity than other mono nanofluids. Additionally, in both hybrid nanofluids, Al O /CNC showed the lowest specific heat capacity. The optimized volume concentration from the statistical analytical tool was found to be 0.5%. The experimental results show that the heat transfer coefficient, convective heat transfer, Reynolds number and the Nusselt number have a proportional relationship with the volumetric flow rate. Hybrid nanofluids exhibit better thermal conductivity than mono nanofluids. For instance, a better thermal conductivity improvement was shown by the mono Al O nanofluids than the CNC and TiO nanofluids. On the other hand, superior thermal conductivity was observed for the Al O /CNC hybrid nanofluids compared to the other mono and hybrid ones (Al O /TiO ).
机译:由于工业应用需求的增长,近几十年来纳米流体已经引起了研究人员的极大关注。将纳米纤维素(CNC)与水(W)和乙二醇(EG)一起添加到散热器的冷却液中显示出有益的性能,可提高散热器的效率。本工作的重点是研究与作为散热器冷却剂的蒸馏水相比,具有或不具有植物碱提取的CNC浓度的单或混合金属氧化物(如Al O和TiO)的性能,其浓度不同,作为更好的传热纳米流体的性能。 CNC以60:40的比例分散在EG和W的基液中。在TiO,Al O,CNC,Al O / TiO和Al O / CNC纳米流体的体积浓度为0.9%时,观察到最高吸收峰,这表明纳米流体的悬浮液具有更好的稳定性。对于所有单纳米流体中的Al O纳米流体,其后分别是CNC和TiO纳米流体,观察到更好的导热性改善。发现具有0.9%体积浓度的Al O / CNC杂化纳米流体的导热率优于Al O / TiOC杂化纳米流体的导热率。在所有体积浓度下,Al O / CNC杂化纳米流体在粘度方面均优于其他单和杂化纳米流体。 CNC纳米流体(所有体积浓度)比其他单纳米流体表现出最高的比热容。此外,在两种杂化纳米流体中,Al O / CNC的比热容最低。通过统计分析工具得出的最佳体积浓度为0.5%。实验结果表明,传热系数,对流传热,雷诺数和努塞尔数与体积流量成比例关系。杂化纳米流体显示出比单纳米流体更好的导热性。例如,单Al O纳米流体显示出比CNC和TiO纳米流体更好的导热率改善。另一方面,与其他单和杂化纳米流体(Al O / TiO)相比,Al O / CNC杂化纳米流体观察到优异的导热性。

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