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Thermal and Theological characteristics of CuO-Base oil nanofluid flow inside a circular tube

机译:圆管内CuO基油纳米流体的热学和神学特性

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In the present experimental investigation, stable CuO-Base oil nanofluids with different particle weight fractions of 0.2% to 2% are prepared. Then, these fluids are used for heat transfer measurements as well as rheological behavior investigation. Density, thermal conductivities, viscosities and specific heat capacities of base fluid and all nanofluids at different temperatures are measured and the effect of nanoparticles concentration on fluid properties is investigated. Also, heat transfer characteristics of CuO-Base oil nanofluids laminar flow in a smooth tube under constant heat flux are studied experimentally. Experimental results clearly indicate that addition of nanoparticles into the base fluid enhances the thermal conductivity of the fluid and the enhancement increases with increasing of particle concentration. For the particle concentrations tested, nanofluids exhibit Newtonian behavior. It is observed that the dynamic viscosity substantially increases with the increase in nanoparticle concentration and this increase is more pronounced at the lower temperatures of the nanofluid. The specific heat capacity of nanofluids is significantly less than that of base fluid and it is decreased with the increase in nanofluid concentration. The results show that for a specific nanoparticle concentration, there is an increase in heat transfer coefficient of nanofluid flow compared to pure oil flow. A maximum increase of 12.7% in Heat Transfer coefficient was observed for 2 wt% nanofluid at the highest Reynolds number studied in this investigation. Furthermore, heat transfer coefficients obtained using experimental fluid properties are compared to those obtained using the existing theoretical models for fluid properties.
机译:在本实验研究中,制备了具有0.2%至2%的不同粒径分数的稳定的CuO基油纳米流体。然后,将这些流体用于传热测量以及流变行为研究。测量了在不同温度下基础流体和所有纳米流体的密度,热导率,粘度和比热容,并研究了纳米颗粒浓度对流体性质的影响。此外,实验研究了在恒定热通量下,光滑管中CuO基油纳米流体层流的传热特性。实验结果清楚地表明,将纳米颗粒添加到基础流体中可以增强流体的导热性,并且随着颗粒浓度的增加而增强。对于测试的颗粒浓度,纳米流体表现出牛顿行为。观察到动态粘度随着纳米颗粒浓度的增加而基本上增加,并且这种增加在纳米流体的较低温度下更加明显。纳米流体的比热显着小于基础流体的比热,并且随着纳米流体浓度的增加而降低。结果表明,对于特定的纳米颗粒浓度,与纯油流相比,纳米流体流的传热系数有所增加。在本研究中研究的最高雷诺数下,对于2 wt%的纳米流体,观察到传热系数最大增加了12.7%。此外,将使用实验流体性质获得的传热系数与使用现有流体性质理论模型获得的传热系数进行比较。

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