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Experimental investigation on stability and thermal conductivity of dodecanethiol-coated copper nanofluids

机译:十二烷硫醇涂层铜纳米流体稳定性和导热率的实验研究

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摘要

Nanofluids were prepared by dispersing dodecanethiol-coated copper nanoparticles (similar to 50 nm average diameter) in toluene. The stability and thermal conductivity of the nanofluids were investigated for various particle volume concentrations (0.09-1.5 vol%) and temperatures (293-333 K). The amount of dodecanethiol surfactant coated on the nanoparticle surface was determined by thermogravimetric analysis (TGA), and the chemical structure of adsorbed surfactant molecules was characterized by Fourier transform infrared spectroscopy (FT-IR). UV-vis absorbance analysis of the nanofluid was undertaken to determine the optimum ultrasonic vibration time for stability enhancement. The modeling study generated a new semi-practical correlation as a function of particle volume concentration and temperature for an existing Brownian motion-based thermal conductivity model, which demonstrated good compatibility with the present experimental measurements compared with other models.
机译:通过将十二烷硫醇涂覆的甲苯中的十二烷硫醇涂覆的铜纳米颗粒(类似于50nm平均直径)分散来制备纳米流体。 研究了纳米流体的稳定性和导热率,用于各种颗粒体积浓度(0.09-1.5体积%)和温度(293-333 k)。 涂覆在纳米颗粒表面上的十二烷硫醇表面活性剂的量通过热重分析(TGA)测定,吸附的表面活性剂分子的化学结构是通过傅里叶变换红外光谱(FT-IR)的特征。 纳米流体的UV-Vis吸光度分析以确定稳定增强的最佳超声振动时间。 建模研究产生了一种新的半实际相关性,作为粒子体积浓度和用于现有的褐色运动基热导率模型的温度的函数,其与其他模型相比,与本实验测量结果呈现出良好的兼容性。

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