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Transient pool boiling and particulate deposition of copper oxide nano-suspensions

机译:氧化铜氧化铜纳米悬浮液的瞬态池沸腾和颗粒状沉积

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摘要

In the present work, we report the results of series of experiments aiming at identifying the key mechanisms affecting the transient boiling heat transfer coefficient. Two categories of experiments were designed and conducted in which the heat transfer coefficient and fouling thermal resistance were quantified at steady state condition and in a transient study over 1000 min of continuous operation of the heater. CuO-water nano-suspension was prepared, stabilised and used with the view to improve the thermal conductivity of water and thereby increasing the heat transfer coefficient. Results showed that at initial times of the experiments, the heat transfer coefficient was improved due to the increase in the thermal conductivity of the nano-suspension, and the emerge of some micro-scale phenomena such as Brownian motion and thermophoresis effect. While over 1000 min of continuous measurement, it was identified that the heat transfer coefficient was suppressed due to the formation of the fouling layer. Thermal resistance induced by the fouling layer together with the heat accumulation on the surface, a decrease in surface roughness value and also the suppression of the rate of the bubble formation were the main contributors that decreased the transient thermal performance of the system. It was also identified that the fouling thermal resistance was lower on the surface with lower surface roughness, which was associated with the thickness of the fouling layer formed on the surface.
机译:在本作工作中,我们报告了一系列实验的结果,旨在识别影响瞬时沸腾传热系数的关键机制。设计和进行两类实验,其中传热系数和污垢热阻在稳态条件下量化,并且在瞬态研究中超过1000分钟的加热器的连续操作。制备CuO-水纳米悬浮液,稳定并使用,以改善水的导热系数,从而增加传热系数。结果表明,在实验的初始时间,由于纳米悬浮液的导热率的增加,传热系数得到改善,以及一些微级现象,如褐色运动和热量效应。虽然超过1000分钟的连续测量,但鉴定出由于污垢层的形成而抑制了传热系数。由污垢层引起的热阻与表面上的热量积聚在一起,表面粗糙度值的降低以及气泡形成速率的抑制是降低系统瞬态热性能的主要贡献。还发现,在具有较低表面粗糙度的表面上污垢热阻较低,其与在表面上形成的结垢层的厚度相关联。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第7期|119743.1-119743.11|共11页
  • 作者单位

    MJU-BNUT Department-Joint Research Center on Renewable Energy and Sustainable Marine Platforms Engineering Research Center of Fujian University for Marine Intelligent Ship Equipment Minjiang University Fuzhou350108 China School of Mechanical Materials Mechatronic and Biomedical Engineering University of Wollongong NSW2522 Australia;

    School of Chemical Engineering and Advanced Materials University of Adelaide South Australia Australia;

    Department of Mathematics Quaid-Ⅰ-Azam University Islamabad44000 Pakistan NAAM Research Group Department of Mathematics Faculty of Science King Abdulaziz University P.O.Box 21589 Jeddah Saudi Arabia;

    Department of Automotive and Marine Engineering Technology College of Technological Studies The Public Authority for Applied Education and Training Kuwait;

    NAAM Research Group Department of Mathematics Faculty of Science King Abdulaziz University P.O.Box 21589 Jeddah Saudi Arabia;

    Sustainable Management of Natural Resources and Environment Research Group Faculty of Environment and Labour Safety Ton Duc Thang University Ho Chi Minh City Vietnam;

    School of Chemical Engineering and Advanced Materials University of Adelaide South Australia Australia;

  • 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
  • 中图分类
  • 关键词

    CuO-water; Nano-suspension; Boiling heat transfer; Fouling; Surface roughness;

    机译:cuo-purer;纳米悬架;沸腾热传递;污垢;表面粗糙度;

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