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Thermal conductivity of nanofluids containing microwave hydrothermal reactor reduced graphene oxide nanosheets

机译:含微波水热反应器的纳米流体的热导率还原氧化石墨烯纳米片

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Graphene oxide nanosheets (GONs) were synthesized using Hummer's method. It was reduced applying microwave hydrothermal reactor (MHR). X-ray photoelectron spectroscopy (XPS) was utilized to study the chemical state variations of the GONs under applying the MHR. The reduction of GONs (RGONs) was confirmed using Energy Dispersive X-ray analysis (EDAX) analysis and photoluminescence (PL) spectrophotometer. By dispersing RGONs in ethylene glycol (EG), stable homogeneous nanofluids were prepared (RGONs-EG). The concentrations of RGONs in nanofluids were maintained at 0.01, 0.03 and 0.05 wt.% at the temperature range of 10℃ up to 55℃. Zeta potential was utilized to clarify the stability of nanofluids. DLS analysis illustrated the size of RGONs nanosheets. The measurements of RGONs-EG thermal conductivity indicated that the nanofluids have significantly higher thermal conductivities than the base fluid. The thermal conductivity increased by enhancement of RGONs nanosheets concentration and strongly depended on the temperature. The highest enhancement was obtained to be about 17.8% for 0.05 wt.% of RGONs nanosheets at 55℃. The thermal conductivity of the fluids remained almost constant for ten days, indicating high stability. These types of nanofluids including RGONs show prominent potential for substitutions as advanced heat transfer fluids in medium temperature applications such as solar collectors and heat exchanger systems.
机译:使用Hummer方法合成了氧化石墨烯纳米片(GON)。使用微波水热反应器(MHR)可以减少该反应。 X射线光电子能谱(XPS)用于研究在应用MHR的情况下GON的化学状态变化。使用能量色散X射线分析(EDAX)分析和光致发光(PL)分光光度计确认了GON(RGON)的减少。通过将RGONs分散在乙二醇(EG)中,制备了稳定的均相纳米流体(RGONs-EG)。在10℃至55℃的温度范围内,纳米流体中RGON的浓度保持在0.01、0.03和0.05wt。%。利用ζ电位来阐明纳米流体的稳定性。 DLS分析显示了RGONs纳米片的大小。 RGONs-EG热导率的测量结果表明,纳米流体的热导率明显高于基础流体。导热系数通过增加RGONs纳米片的浓度而增加,并且强烈依赖于温度。对于55wt。%的RGONs纳米片,在55℃下获得的最高增强为约17.8%。流体的热导率在十天内几乎保持恒定,表明具有很高的稳定性。包括RGON在内的这些类型的纳米流体在中温应用(例如太阳能收集器和热交换器系统)中显示出替代先进的传热流体的巨大潜力。

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