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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Experimental evaluation of the thermal performances of a thermosyphon cooling system rejecting heat by natural and forced convection
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Experimental evaluation of the thermal performances of a thermosyphon cooling system rejecting heat by natural and forced convection

机译:天然强制对流抑制热源水冷却系统热性能的实验评价

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HighlightsThe present paper addresses the design and testing of a thermosyphon cooling system.The thermosyphon system has an air-cooled condenser.In natural convection mode, the maximum overall thermal resistance is 0.6K/W.In forced convection mode, the overall thermal resistance is 0.3K/W.AbstractIn the present paper, a closed-loop thermosyphon cooling system for power electronics has been developed and tested. The evaporator is a multi-microchannel heat sink designed for high heat fluxes. The power electronics module is emulated by four independent electrical heaters, which can generate a non-uniform heat flux on the evaporator. The condenser is air-cooled and is tested in both natural convection and forced convection modes. R1234ze has been selected as the working fluid. Although in natural convection mode the cooling system experiences a maximum thermal resistance of approximately 0.6K/W, the complete passiveness makes such a system very attractive. With values of heat fluxes of 107W/cm2and 25W/cm2equally distributed on the four heaters, the maximum heater temperature measured is 53°C at a saturation temperature of 45°C. In forced convection mode, two different values of air flow have been tested. A reduction of 50% on the overall thermal resistance has been measured with an imposed air flow rate of 87.8m3/h, consuming only 5.29W to drive the fan for dissipating 70.2W. At this condition, the maximum heater temperature is reduced to 36°C. In summary, it has been demonstrated that a thermosyphon coupled with air cooling can dissipate high heat fluxes of power electronics with no or little energy consumption.]]>
机译:<![cdata [ 亮点 本文解决了热虹吸冷却系统的设计和测试。 ThermosyPhon系统有一个空气冷凝器。 在自然对流模式下,最大总热阻为0.6k / w。 在强制对流模式下,总热阻为0.3k / w。 抽象 在本文中,开发并测试了电力电子器件的闭环热旋滤器冷却系统。蒸发器是一种用于高热量通量的多微型通道散热器。功率电子模块由四个独立的电加热器模拟,可以在蒸发器上产生不均匀的热通量。冷凝器是空气冷却的,在自然对流和强制对流模式中进行测试。 R1234已被选为工作流体。虽然在自然对流模式中,冷却系统经历了大约0.6k / w的最大热阻,但完整的钝化使得这种系统非常有吸引力。具有107W / cm的热通量值 2 和25w / cm 2 等于分布四个加热器,测量的最大加热温度为53°C,饱和温度为45°C。在强制对流模式中,已经测试了两个不同的空气流量。通过施加的空气流速为87.8m:sup =“post”> 3 / h,以施加的空气流量为87.8m:sup> / h,以减少50%的测量值为50%,以耗尽5.29W以驱动风扇散发70.2W。在这种情况下,最大加热器温度降至36°C。总之,已经证明,与空气冷却相结合的热循环可以耗散没有能耗的功率电子器件的高热量通量。 ]]]>

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