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首页> 外文期刊>Journal of thermal analysis and calorimetry >Effect of volume concentration and temperature on viscosity and surface tension of graphene-water nanofluid for heat transfer applications
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Effect of volume concentration and temperature on viscosity and surface tension of graphene-water nanofluid for heat transfer applications

机译:体积浓度和温度对用于传热的石墨烯-水纳米流体的粘度和表面张力的影响

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In the present study, the effect of volume concentration (0.05, 0.1 and 0.15 %) and temperature (10-90 A degrees C) on viscosity and surface tension of graphene-water nanofluid has been experimentally measured. The sodium dodecyl benzene sulfonate is used as the surfactant for stable suspension of graphene. The results showed that the viscosity of graphene-water nanofluid increases with an increase in the volume concentration of nanoparticles and decreases with an increase in temperature. An average enhancement of 47.12 % in viscosity has been noted for 0.15 % volume concentration of graphene at 50 A degrees C. The enhancement of the viscosity of the nanofluid at higher volume concentration is due to the higher shear rate. In contrast, the surface tension of the graphene-water nanofluid decreases with an increase in both volume concentration and temperature. A decrement of 18.7 % in surface tension has been noted for the same volume concentration and temperature. The surface tension reduction in nanofluid at higher volume concentrations is due to the adsorption of nanoparticles at the liquid-gas interface because of hydrophobic nature of graphene; and at higher temperatures, is due to the weakening of molecular attractions between fluid molecules and nanoparticles. The viscosity and surface tension showed stronger dependency on volume concentration than temperature. Based on the calculated effectiveness of graphene-water nanofluids, it is suggested that the graphene-water nanofluid is preferable as the better coolant for the real-time heat transfer applications.
机译:在本研究中,已经实验测量了体积浓度(0.05%,0.1%和0.15%)和温度(10-90 A摄氏度)对石墨烯-水纳米流体的粘度和表面张力的影响。十二烷基苯磺酸钠用作表面活性剂以稳定地悬浮石墨烯。结果表明,石墨烯-水纳米流体的粘度随纳米颗粒体积浓度的增加而增加,随温度的升高而降低。在50 A的温度下,石墨烯的体积浓度为0.15%时,平均粘度可提高47.12%。在较高的体积浓度下,纳米流体的粘度提高是由于较高的剪切速率。相反,随着体积浓度和温度的升高,石墨烯-水纳米流体的表面张力降低。在相同的体积浓度和温度下,表面张力下降了18.7%。由于石墨烯的疏水性,纳米流体在较高浓度下的表面张力降低是由于纳米颗粒在液-气界面处的吸附。而在更高的温度下,是由于流体分子和纳米颗粒之间的分子吸引力减弱。粘度和表面张力对体积浓度的依赖性强于温度。基于计算得到的石墨烯-水纳米流体的有效性,建议将石墨烯-水纳米流体用作实时传热应用中较好的冷却剂。

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