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Experimental Study On Thermal Conductivity Of Solution Combustion Synthesized MgO Nanoparticles Dispersed In Water And Ethylene Glycol (50:50) Binary Mixture

机译:水和乙二醇(50:50)二元混合物分散在水中燃烧合成MgO纳米粒子的热导率的实验研究

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In this present investigation, experiments were conducted on the magnesia nanoparticles (8-18 nm) synthesized by the solution combustion method, which was dispersed in the binary mixture of water-ethylene glycol (50:50) to prepare stable MgO-water-ethylene glycol (50:50) nanofluids through continuous 26h ultrasonication. The effect of nanoparticle concentration (0 to 0.2 vol%) and temperature (25°C to 60°C) on the thermal conductivity of the nanofluids was investigated. The results clearly indicate that an increase in the nanoparticle concentration increases the thermal conductivity of the nanofluid. Similarly the thermal conductivity of the nanofluid increases with increase in temperature. The enhanced thermal conductivity in the nanofluids may be due to either or both, the Brownian movement and the nano-interfacial layering. The maximum enhancement of 16% was obtained at 0.2 vol% nanoparticle concentration and at 60°C. An accurate correlation, modeling the thermal conductivity as a function of nanoparticle concentration and temperature was also proposed based on the experimental data.
机译:在本发明的研究中,在通过溶液燃烧方法合成的氧化镁纳米颗粒(8-18nm)上进行实验,该燃烧方法分散在水 - 乙二醇(50:50)的二元混合物中以制备稳定的MgO水 - 乙烯乙二醇(50:50)纳米流体通过连续的26h超声波。研究了纳米颗粒浓度(0至0.2体积%)和温度(25℃至60℃)对纳米流体的导热率的影响。结果清楚地表明纳米颗粒浓度的增加增加了纳米流体的导热率。类似地,纳米流体的导热率随温度的增加而增加。纳米流体中的增强的导热率可能是由于褐色运动和纳米界面层。在0.2体积%的纳米颗粒浓度和60℃下获得16%的最大增强。基于实验数据,还提出了作为纳米颗粒浓度和温度的函数的准确相关性,建模导热率和温度。

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