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首页> 外文期刊>International Journal of Thermal Sciences >Experimental investigation of the characteristics of thermosyphon with flat evaporator and micro-pillar arrays
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Experimental investigation of the characteristics of thermosyphon with flat evaporator and micro-pillar arrays

机译:具有扁平蒸发器和微柱阵列的热烃特性的实验研究

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This study experimentally investigated the cascaded start-up performance of thermosyphon with a flat evaporating surface combined with different sizes of micro-pillars. The thermosyphon was composed of a condenser section and an evaporator section. Different sizes of micro-pillar were processed on the surface of the evaporator bottom plate to enhance the heat transfer. A smooth flat surface was used as the standard reference for comparison with the micro-pillar surfaces. Deionized water was used as the working fluid to cool the condenser section of the thermosyphon. The operating pressure of thermosyphon was measured using a pressure sensor. Additionally, the evaporator section wall temperature and the temperature and flow rate of the cooling water were measured at nine different heat fluxes. The start-up performances of the thermosyphon with a smooth evaporator bottom plate (THSE) and thermosyphon with a micro-pillar in the evaporator bottom plate (THMPE) were compared. The THSE had a longer start-up time and a higher start-up temperature than the THMPE. When the heat flux was 68.6 W/cm(2), the start-up time of the THMPE with a micro-pillar width of 0.2 mm and a height of 0.8 mm was reduced by 57.1% compared to THSE, and the start-up temperature was reduced by 28%. Thermosyphons with different micro-pillar widths showed various start-up performances for different heat fluxes. For a narrow micro-pillar width, THMPEs with larger micro-pillar heights had a lower start-up temperature and a shorter start-up time. As the micro-pillar width increased, the micro-pillar height had a different and more complex effect on the start-up performance of the thermosyphon. When the micro-pillar heights were 0.2 mm and 0.4 mm, the thermosyphon with wider micro-pillars had a longer start-up time with a lower heat flux but a shorter start-up time with a higher heat flux. When the micro-pillar heights were 0.6 mm and 0.8 mm, varying the micro-pillar width had a smaller influence on the start-up performance of the thermosyphon, but was dependent on the heat flux.
机译:本研究通过实验研究了热循环的级联的启动性能,具有平坦的蒸发表面与微柱的不同尺寸。热脊柱芯由冷凝器部分和蒸发器部分组成。在蒸发器底板的表面上加工不同尺寸的微柱,以增强传热。使用光滑的平坦表面作为与微柱表面比较的标准参考。使用去离子水作为工作流体以冷却热循环的冷凝器部分。使用压力传感器测量热循环的操作压力。另外,在九个不同的热通量下测量冷却水的蒸发器部分壁温度和温度和流速。比较了具有平滑蒸发器底板(THSE)和热循环的热循环的启动性能,并在蒸发器底板(THMPE)中具有微柱。 THSE具有更长的启动时间和比THMPE更高的启动温度。当热通量为68.6W / cm(2)时,与THSE相比,将微柱宽度为0.2mm的微柱宽度和0.8毫米的高度的启动时间减少了57.1%,并且启动温度降低28%。具有不同微柱宽度的热旋转椎间脊显示出不同热量通量的各种启动性能。对于窄的微柱宽度,具有较大微柱高度的Thmpes的启动温度较低,启动时间较短。随着微柱宽度的增加,微柱高度对热循环的启动性能具有不同和更复杂的影响。当微柱高度为0.2mm和0.4mm时,具有更宽的微柱的热循环具有更长的启动时间,具有较低的热通量,但具有较短的热通量的启动时间较短。当微柱高度为0.6毫米和0.8mm时,改变微柱宽度对热循环的启动性能影响较小,但依赖于热通量。

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