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Thermal performance of a novel dual-serpentine-channel flat-plate oscillating heat pipe used for multiple heat sources and sinks

机译:用于多个热源和水槽的新型双蛇形通道平板振荡热管的热性能

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摘要

A novel dual-serpentine-channel flat-plate oscillating heat pipe (FPOHP) is designed and fabricated for electronic cooling with multiple heat sources and sinks. The FPOHP has two mirror symmetric tandem branches of capillary serpentine square channel with a hydraulic diameter of 2 mm (i.e., Bond number Bo = 1.137-1.265 here), which is made of 6063 aluminum alloy and 55% partially filled with acetone. A corresponding experimental study is conducted to investigate the start-up characteristics and quasi-steady thermal performance of the FPOHP with arrangement of "uniform heating by multiple heat sources at center and air cooling at both ends" under different inclination angles. The combined flow pattern diagrams as well as thermal resistance and equivalent thermal conductivity contour maps are provided for two mirror symmetric tandem sections of the FPOHP, based on which the thermo-hydrodynamic performance deviations between these two sections are compared and analyzed. The results show that the quasi-steady fluid motions in the FPOHP can be characterized by intermittent or independent occurrence of three elements, namely, stop, oscillation, and circulation, depending on the heat load and inclination angle. Significantly, the thermo-hydrodynamic behaviors in two tandem sections of the FPOHP both cooperate and compete with each other, as a result of the heat, mass and momentum exchanges via the tandem structure. The FPOHP can start up successfully under all inclination angles from 0° to 90° with no obvious difference, and its start-up temperature increases smoothly and approximately reaches a plateau of 41-46 °C as the heat load goes up. For the 175 tested conditions, the coefficients of variation for the thermal resistance of two tandem sections are smaller than 21.5% with the average value of 6.8%, showing a fine heat transfer uniformity of the FPOHP over a wide range of operating conditions. Significantly, in general, the FPOHP has much larger overall equivalent thermal conductivity (about 5.8 times on average) and possesses only a weight 83.6% of a pure 6063 aluminum alloy plate with the same geometry. In addition, the FPOHP exhibits a well gravity adaptability with the relative deviation ranging from 7.1% to 25.2% in the total thermal resistances for all inclination angles. Accordingly, the FPOHP shows a good potential for the high-heat-flux electronic cooling applications with multiple heat sources and sinks.
机译:设计和制造了一种新型双蛇形通道平板振荡热管(FPOHP),用于电子冷却,具有多个热源和水槽。 FPOHP具有两个镜子对称串联型毛细管串联串联,液压直径为2mm(即,粘合号Bo = 1.137-1.265),由6063铝合金和55%部分填充丙酮。进行了相应的实验研究,以研究FPOHP的启动特性和准稳态热性能,其在不同倾角下的不同倾角下的“在两端的中央冷却中的多个热源均匀加热”的布置。为FPOHP的两个镜像对称串联部分提供了组合的流动图案图以及热阻和等效导热性等高图,基于该镜像对称串联部分,基于该镜像对称的两个部分之间的热流体动力学性能偏差和分析。结果表明,根据热负荷和倾斜角度,FPOHP中的准稳态流体运动可以表征三个元素,即止动,振荡和循环。显着地,由于热量,质量和动量通过串联结构,FPOHP的两个串联部分中的热流动性行为彼此配合并竞争。 FPOHP可以在0°至90°的所有倾斜角下成功启动,没有明显的差异,并且其启动温度平稳地增加并且随着热负荷上升,大致达到41-46°C的平台。对于175个测试条件,两个串联部分的热阻的变化系数小于21.5%,平均值为6.8%,显示出FPOHP在各种操作条件下的细热传递均匀性。显着的一般情况下,FPOHP的总体等效导热率大得多(平均约5.8倍),并且仅具有具有相同几何形状的纯6063铝合金板的重量83.6%。此外,FPOHP表现出具有对所有倾斜角度的总热电阻中的相对偏差的远偏差,其相对偏差范围为7.1%至25.2%。因此,FPOHP显示了具有多个热源和垫地的高热通量电子冷却应用的良好潜力。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第11期|120293.1-120293.17|共17页
  • 作者单位

    College of Electrical Energy and Power Engineering Yangzhou University Yangzhou 225127 China;

    Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China;

    Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China;

    College of Electrical Energy and Power Engineering Yangzhou University Yangzhou 225127 China Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China Jiangsu Key Laboratory of Micro and Nano Heat Fluid Flow Technology and Energy Application School of Environmental Science and Engineering Suzhou University of Science and Technology Suzhou 215009 China;

  • 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

    Flat-plate oscillating heat pipe; Tandem dual channel; Multiple heat sources and sinks; Heat transfer performance; Thermo-hydrodynamic characteristics;

    机译:平板振荡热管;串联双通道;多个热源和水槽;传热性能;热水动力学特性;

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