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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Development of a Durable Vapor Phase Deposited Superhydrophobic Coating for Steam Cycle Power Generation Condenser Tubes
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Development of a Durable Vapor Phase Deposited Superhydrophobic Coating for Steam Cycle Power Generation Condenser Tubes

机译:蒸汽循环发电冷凝管的耐久气相沉积超疏水涂层的研制

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摘要

Condenser performance benefits afforded by dropwise condensation have long been unattainable in steam cycle power plant condensers due to the unavailability of durable and long-lasting hydrophobic surface treatments. However, recent work in superhydrophobic coating technology shows promise that durable coatings, appropriate for use on condenser tubes in steam cycle power generation systems, may soon become a reality. This work presents a nanoscale, vapor phase deposited superhydrophobic coating with improved durability comprised of several layers of rough alumina nanoparticles and catalyzed silica with a finishing layer of petfluorinated silane. This coating was applied to solid, hemicylindrical test surfaces fabricated from several common condenser tube materials used in power generation system condensers: Titanium, Admiralty brass, Cupronickel, and Sea Cure stainless steel as well as 304 stainless steel stock. The development evolution of the coating and its effect on condensation behavior on the above materials are presented. Results show that the performance enhancement, measured in rate of heat transfer spikes corresponding to condensate roll-off events, was best for the titanium surface, which produced 64% more events than the next most active material when coated using the most durable surface treatment tested in this work.
机译:由于耐用和持久的疏水性表面处理,蒸汽循环发电机冷凝器中,逐滴冷凝提供的冷凝器性能益处长期以来。然而,最近的超疏水涂层技术的工作表明,希望耐用的涂料,适用于蒸汽循环发电系统中的冷凝管,可能很快成为现实。该工作呈现纳米级气相沉积的超疏水涂层,其具有改进的耐久性,其包括几层粗氧化铝纳米颗粒和催化二氧化硅,具有精制硅烷的精加工层。将该涂层涂抹于来自发电系统冷凝器的几种常见的冷凝器管材料的固体,涂层材料中的固体性胶囊试验表面:钛,海事黄铜,Cupronickel和海上固化不锈钢以及304个不锈钢股票。介绍了涂层的发展进化及其对上述材料对凝结性能的影响。结果表明,以对应于冷凝物滚降事件的传热峰值测量的性能增强,最适合钛表面,其在使用最耐用的表面处理时,其比下一个最活跃的材料更多地产生64%的事件在这项工作中。

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