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首页> 外文期刊>International Journal of Heat and Mass Transfer >Enhancement of a heat transfer performance on the Al6061 surface using microstructures and fluorine-doped diamond-like carbon (F-DLC) coating
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Enhancement of a heat transfer performance on the Al6061 surface using microstructures and fluorine-doped diamond-like carbon (F-DLC) coating

机译:使用微结构和氟掺杂金刚石状碳(F-DLC)涂层来增强Al6061表面的传热性能

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摘要

Dropwise condensation (DWC) is one of the most important phenomena to improve the heat transfer performance of steam condensation system. To promote DWC on hydrophilic metals, non-metallic hydrophobic promoters are coated on the surface. Non-metallic coatings are relatively easy to be degraded due to lack of mechanical and chemical properties. In this study, fluorine-doped diamond-like carbon (F-DLC) was used to obtain DWC on A16061. Prior to F-DLC coating, microtextures were fabricated on A16061 for the structural wettability control. DWC was successfully obtained with a small size of condensates after the microblasting and nanostructured F-DLC coating on A16061. The synergic effects of microtextures with Cassie-state contact angle and hydrophobicity of nanostructured F-DLC led the superhydrophobic transformation of the surface. The contact angle increased about 115% from 66° to 142° after the microblasting and nanostructured F-DLC coating. The resulting DWC improved heat transfer performance of A16061 significantly, 205%, as the dropwise condensates were rapidly eliminated from the surface. The variations on contact angle hysteresis before and after the steam condensation analysis revealed that the superhydrophobicity and DWC mode can be stably maintained under the steam condensing conditions.
机译:滴凝结(DWC)是提高蒸汽冷凝系统的传热性能的最重要现象之一。为了在亲水金属上促进DWC,在表面上涂覆非金属疏水促进剂。由于缺乏机械和化学性质,非金属涂层相对容易降解。在该研究中,使用氟掺杂的金刚石状碳(F-DLC)在A16061上获得DWC。在F-DLC涂层之前,在A16061上制造微调,用于结构润湿性控制。在A16061上的微生物和纳米结构F-DLC涂层之后,通过小尺寸的缩合物成功获得DWC。微织物与纳米结构F-DLC疏水性与纳米结构接触角和疏水性的协同作用LED对表面的超疏水转化。微生物化和纳米结构F-DLC涂层后,接触角在66°至142°中增加约115%至142°。由此产生的DWC改善A16061的传热性能显着,205%,因为从表面迅速消除滴加缩合。蒸汽冷凝分析之前和之后接触角滞后的变化显示,在蒸汽冷凝条件下可以稳定地保持超疏水性和DWC模式。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer 》 |2020年第2期| 119108.1-119108.10| 共10页
  • 作者单位

    School of Mechanical Engineering Pusan National University Jangjeon-Dong Geumjeong-Gu Busan 46421 Republic of Korea Department of Extreme Environmental Coatings Surface Technology Division Korea Institute of Materials Science 797 Changwon-daero Seongsan-gu Changwon-si Gyeongsangnam-do 51508 Republic of Korea;

    Department of Extreme Environmental Coatings Surface Technology Division Korea Institute of Materials Science 797 Changwon-daero Seongsan-gu Changwon-si Gyeongsangnam-do 51508 Republic of Korea;

    Department of Extreme Environmental Coatings Surface Technology Division Korea Institute of Materials Science 797 Changwon-daero Seongsan-gu Changwon-si Gyeongsangnam-do 51508 Republic of Korea;

    Department of Extreme Environmental Coatings Surface Technology Division Korea Institute of Materials Science 797 Changwon-daero Seongsan-gu Changwon-si Gyeongsangnam-do 51508 Republic of Korea;

    Department of Extreme Environmental Coatings Surface Technology Division Korea Institute of Materials Science 797 Changwon-daero Seongsan-gu Changwon-si Gyeongsangnam-do 51508 Republic of Korea;

    Department of Extreme Environmental Coatings Surface Technology Division Korea Institute of Materials Science 797 Changwon-daero Seongsan-gu Changwon-si Gyeongsangnam-do 51508 Republic of Korea;

    School of Mechanical Engineering Pusan National University Jangjeon-Dong Geumjeong-Gu Busan 46421 Republic of Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Dropwise condensation (DWC); Micro-powder blast; Fluorine-doped diamond-like carbon; (F-DLC); contact angle; Durable superhydrophobicity; Heat transfer performance;

    机译:滴凝结(DWC);微粉爆炸;氟掺杂金刚石碳;(F-DLC);接触角;耐用的超疏水性;传热性能;

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