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Experimental study of forced convective heat transfer of nanofluids in a microchannel

机译:微通道中纳米流体强制对流换热的实验研究

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摘要

The forced convective heat transfer for flow of water and aqueous nanofluids (containing colloidal suspension of silica nanoparticles) inside a microchannel was studied experimentally for the constant wall temperature boundary condition. Applications of nanofluids have been explored in the literature for cooling of micro-devices due to the anomalous enhancements in their thermo-physical properties as well as due to their lower susceptibility to clogging. The effect of flow rate on thermal performance of nanofluid is analyzed in this study. Variations of thermo-physical properties of the nanofluid samples were also measured. The experimental results show that heat transfer increases with flow rate for both water and nanofluid samples; however, for the nanofluid samples, heat transfer enhancements occur at lower flow rates and heat transfer degradation occurs at higher flow rates (compared to that of water). Electron microscopy of the heat-exchanging surface revealed that surface modification of the microchannel flow surface occurred due to nanoparticle precipitation from the nanofluid. Hence, the fouling of the microchannels by the nanofluid samples is believed to be responsible for the progressive degradation in the thermal performance, especially at higher flow rates. Hence, these results are observed to be consistent with previous experimental studies reported in the literature.
机译:在恒定壁温边界条件下,对水和纳米流体(包含二氧化硅纳米颗粒的胶体悬浮液)在微通道内流动的强迫对流换热进行了实验研究。由于其热物理性质的异常增强以及由于其较低的易堵塞性,在文献中已经研究了纳米流体在冷却微型设备中的应用。在这项研究中分析了流速对纳米流体热性能的影响。还测量了纳米流体样品的热物理性质的变化。实验结果表明,水和纳米流体样品的传热都随着流速的增加而增加。然而,对于纳米流体样品,在较低流速下传热增强,而在较高流速下(与水相比)传热降解发生。热交换表面的电子显微镜显示,由于从纳米流体中沉淀出纳米颗粒,因此发生了微通道流动表面的表面改性。因此,据信纳米流体样品对微通道的污染是造成热性能逐渐下降的原因,特别是在较高流速下。因此,观察到这些结果与文献中报道的先前实验研究一致。

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  • 作者单位

    Micro Scale Thermo Fluids (MSTF) Laboratory, Mechanical Engineering Program, Texas A and M University at Qatar, Education city, Doha, Qatar;

    Micro Scale Thermo Fluids (MSTF) Laboratory, Mechanical Engineering Program, Texas A and M University at Qatar, Education city, Doha, Qatar,Mechanical Engineering Program, Texas A and M University at Qatar, Education City, Doha, PO Box: 23874, Qatar;

    Department of Mechanical Engineering, Texas A and M University, 3123 TAMU, College Station, TX, USA;

    Korea Railroad Research Institute, #176 Cheoldo bangmulgwan-ro, Uiwang, Gyeonggi-do 437-757, Republic of Korea;

    Volvo Group Trucks Technology Advanced Technology & Research Technology Lead-Materials 7825 National Service Road, Mail/Stop: AP1/3-41 Greensboro, NC 27409, USA;

    Department of Mechanical Engineering, Texas A and M University, 3123 TAMU, College Station, TX, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    nanofluids; viscosity; fouling;

    机译:纳米流体粘度结垢;

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