首页> 外文期刊>Experimental Heat Transfer >CONDENSATION HEAT TRANSFER OF STEAM ON VERTICAL DROPWISE AND FILMWISE COEXISTING SURFACES WITH A THICK ORGANIC FILM PROMOTING DROPWISE MODE
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CONDENSATION HEAT TRANSFER OF STEAM ON VERTICAL DROPWISE AND FILMWISE COEXISTING SURFACES WITH A THICK ORGANIC FILM PROMOTING DROPWISE MODE

机译:厚膜促进水滴模式在垂直水滴和短缝共存表面上蒸汽的冷凝传热

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This article describes an experimental investigation of the condensation heat transfer of steam on dropwise and filmwise coexisting (DFC) surfaces, on which dropwise and filmwise exist simultaneously at adjacent positions. A fluor-containing organic film with thickness of more than 1 μm was coated on the dropwise regions of the external surface of a brass tube to promote dropwise condensation. The surfaces were divided horizontally into many regions according to the designed dropwise and filmwise condensation area ratio. The area ratio of dropwise regions and filmwise regions in the present study was fixed at 50%:50% for all the six surfaces, while the numbers of dropwise and filmwise regions ranged from 2 to 16. Experiments were conducted at atmospheric pressure and the treated tube was oriented vertically in the condensing chamber. It was found that the heat transfer performance for DFC surfaces increases with increasing number of dropwise and filmwise regions, and an enhancement ratio of 1.27 to 1.96 is realized compared with the results for bare surface. Visual observation revealed that the appearance of condensation near the boundary region between the dropwise and filmwise regions was dependent on the relative positions of the two condensation regions. The condensate flowed smoothly across the boundary for dropwise condensation in the upper region. With filmwise condensation in the upper region, a condensate ring was formed at the interface and was retained at the interface for a short period of time before collapsing and then continued to flow downward through the dropwise condensation region. The condensate ring made a remarkable contribution to the condensation heat transfer enhancement for DFC surfaces. Finally, the results also showed that the heat transfer enhancement for dropwise and filmwise coexisting surfaces depends not only on the area ratio on DFC surfaces, but also on the surface subcooling degree. An optimal coordinating condition between these two factors might realize a maximum heat transfer enhancement ratio.
机译:本文描述了蒸汽在逐滴和薄膜共存(DFC)表面上的冷凝热传递的实验研究,DFC表面上的逐滴和薄膜同时存在于相邻位置。将厚度大于1μm的含氟有机膜涂覆在黄铜管的外表面的逐滴区域上以促进逐滴冷凝。根据设计的逐滴和薄膜冷凝面积比,将表面水平分成许多区域。在本研究中,所有六个表面的逐滴区域和薄膜区域的面积比均固定为50%:50%,而逐滴和薄膜区域的数量范围为2到16。在大气压下进行实验并处理管在冷凝室内垂直放置。已经发现,DFC表面的传热性能随着液滴区域和薄膜区域的数量增加而增加,并且与裸露表面的结果相比,实现了1.27至1.96的增强比。目视观察发现,在液滴区域和膜状区域之间的边界区域附近的凝结外观取决于两个凝结区域的相对位置。冷凝液平稳地流过边界,以便在上部区域进行逐滴冷凝。在上部区域中发生膜状冷凝时,在界面处形成冷凝环,并在塌陷之前将其保留在界面上一小段时间,然后继续向下流过逐滴冷凝区域。冷凝环为DFC表面的冷凝传热增强做出了杰出贡献。最后,结果还表明,滴和膜共存表面的传热增强不仅取决于DFC表面的面积比,还取决于表面过冷度。这两个因素之间的最佳协调条件可能会实现最大的传热增强比。

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