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Evaporative Characteristics of Al_2O_3 Nanofluid Droplet on Heated Surface

机译:Al_2O_3纳米流体液滴在受热面上的蒸发特性

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摘要

The present study experimentally investigates the evaporative characteristics for a nanofluid droplet on heated surface. For experiments, the alumina (Al_2O_3) nanoparticles having a 50 run average diameter were distributed in deionized (DI) water. The equilibrium contact angles (ECA) of DI-water on bare (without texturing) and hole-patterned textured (by μ-CNC machine) copper surfaces were 60° and 82°. Also, advancing and receding contact angles were 73.3° and 25.8° for bare surface, and 101.3° and 55.2° for textured surface. Surface temperature was fixed as 100±0.2℃, measured by resistance temperature detector (RTD) sensors with data logger. During the experiments, the ambient temperature was 22℃ with the relative humidity of 32%. At the initial stage, the dynamic contact angle (DCA) of 0.01 vol.% nanofluid droplet on the textured surface drastically increased over its own ECA due to the generation of large bubbles inside the droplet. However, the contact angle of 0.1 vol.% nanofluid droplet at t = 5 s was smaller than that of 0.01 vol.% case because the increase in nanofluid concentration caused the reduction of surface tension. After that, DCA gradually decreased until dried out, and total evaporation time was significantly delayed in the case of textured surface. Moreover, the heat transfer characteristics during evaporation phenomenon was affected by the nanofluid concentration and the contact area with the heated surface.
机译:本研究实验研究了加热表面上的纳米流体液滴的蒸发特性。为了进行实验,将平均直径为50的氧化铝(Al_2O_3)纳米颗粒分布在去离子(DI)水中。去离子水在裸露(无纹理)和带孔纹理(通过μ-CNC机器)的铜表面上的平衡接触角(ECA)为60°和82°。另外,裸露表面的前进和后退接触角分别为73.3°和25.8°,纹理化表面的前进和后退接触角分别为101.3°和55.2°。表面温度固定为100±0.2℃,由带有数据记录器的电阻温度检测器(RTD)传感器测量。实验中,环境温度为22℃,相对湿度为32%。在初始阶段,由于液滴内部产生大气泡,织构表面上0.01vol。%纳米流体液滴的动态接触角(DCA)比其自身的ECA急剧增加。然而,在t = 5s时0.1vol。%纳米流体液滴的接触角小于0.01vol。%情况的接触角,因为纳米流体浓度的增加导致表面张力的降低。此后,DCA逐渐降低直至变干,并且在表面带纹理的情况下,总蒸发时间明显延迟。此外,蒸发现象期间的传热特性受纳米流体浓度和与加热表面的接触面积的影响。

著录项

  • 来源
    《Journal of Heat Transfer》 |2016年第8期|080907.1-080907.1|共1页
  • 作者单位

    School of Mechanical Engineering, Chung-Ang University, Seoul 156-756, Korea;

    School of Mechanical Engineering, Chung-Ang University, Seoul 156-756, Korea;

    School of Mechanical Engineering, Chung-Ang University, Seoul 156-756, Korea;

    Technology Center of Offshore Plant Industries, Korea Research Institute of Ships and Ocean Engineering, KIOST, Daejeon 305-343, Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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