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Combined convection and radiation heat transfer of the radially finned heat sink with a built-in motor fan and multiple vertical passages

机译:径向翅片式散热器的对流和辐射传热结合,带有内置电机风扇和多个垂直通道

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This work proposed a novel finned heat sink with the air-driving device and vertical flow passages for LED lamp. The heat sink, made of aluminum alloy, was a cup-shaped cylinder with multiple externally radial fins. Various motor fans were mounted in the hollow chamber of the heat sink. Coupling with the multiple vertical passages in the ring wall of the heat sink and the separation board in the chamber of the heat sink, the air flow was driven through the internal of the heat sink. The measured air velocity within the vertical passages and the smoke flow visualization demonstrated that the present air-driving device did work. The heat-transfer experiments for the systems with the built-in motor fan and compressed air flow were performed, respectively. The overall heat transfer mechanism of the present cooling device was the combination of the internally forced convection and the externally natural convection coupling with radiation heat transfer. The overall Nusselt number of the heat sink with the built-in motor fan was 28-102% higher than that without motor fan. In general, bigger motor fan drove more air flow to enhance heat transfer. Finally, a theoretically empirical formula was proposed to predict the Nusselt numbers of the present combined convection and radiation heat transfer. The applied range was Grashof number Gr = 2.37 × 10~5-5.92 × 10~5 and Reynolds number Re ≦ 343. The maximum deviation of the total Nusselt number between the predictions and the experimental data of the system with compressed air flow was ±11%.
机译:这项工作提出了一种新型的翅片式散热器,该散热器带有空气驱动装置和用于LED灯的垂直流道。散热器由铝合金制成,是一个杯形圆柱体,带有多个外部径向散热片。各种电动机风扇安装在散热器的中空腔中。与散热器的环形壁中的多个垂直通道和散热器的腔室中的分隔板相结合,气流被驱动通过散热器的内部。垂直通道内测得的空气速度和烟流的可视化表明,本空气驱动装置确实起作用。分别对内置电动机风扇和压缩空气流的系统进行了传热实验。本冷却装置的总体传热机理是内部强制对流和外部自然对流与辐射传热的结合。带内置风扇的散热器的总努塞尔数比不带风扇的散热器高28-102%。通常,更大的电动机风扇带动更多的气流以增强热传递。最后,提出了一个理论经验公式来预测当前对流和辐射传热组合的努塞尔数。应用范围为Grashof数Gr = 2.37×10〜5-5.92×10〜5,雷诺数Re≤343。压缩空气流系统的预测值与实验数据之间的总Nusselt值最大偏差为± 11%。

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