Literature DB >> 29578348

Gravitationally Driven Wicking for Enhanced Condensation Heat Transfer.

Daniel J Preston1, Kyle L Wilke1, Zhengmao Lu1, Samuel S Cruz1, Yajing Zhao1, Laura L Becerra2, Evelyn N Wang1.   

Abstract

Vapor condensation is routinely used as an effective means of transferring heat or separating fluids. Filmwise condensation is prevalent in typical industrial-scale systems, where the condensed fluid forms a thin liquid film due to the high surface energy associated with many industrial materials. Conversely, dropwise condensation, where the condensate forms discrete liquid droplets which grow, coalesce, and shed, results in an improvement in heat transfer performance of an order of magnitude compared to filmwise condensation. However, current state-of-the-art dropwise technology relies on functional hydrophobic coatings, for example, long chain fatty acids or polymers, which are often not robust and therefore undesirable in industrial conditions. In addition, low surface tension fluid condensates, such as hydrocarbons, pose a unique challenge because common hydrophobic condenser coatings used to shed water (with a surface tension of 73 mN/m) often do not repel fluids with lower surface tensions (<25 mN/m). We demonstrate a method to enhance condensation heat transfer using gravitationally driven flow through a porous metal wick, which takes advantage of the condensate's affinity to wet the surface and also eliminates the need for condensate-phobic coatings. The condensate-filled wick has a lower thermal resistance than the fluid film observed during filmwise condensation, resulting in an improved heat transfer coefficient of up to an order of magnitude and comparable to that observed during dropwise condensation. The improved heat transfer realized by this design presents the opportunity for significant energy savings in natural gas processing, thermal management, heating and cooling, and power generation.

Entities:  

Year:  2018        PMID: 29578348     DOI: 10.1021/acs.langmuir.7b04203

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  2 in total

1.  Enhanced condensation heat transfer using porous silica inverse opal coatings on copper tubes.

Authors:  Solomon Adera; Lauren Naworski; Alana Davitt; Nikolaj K Mandsberg; Anna V Shneidman; Jack Alvarenga; Joanna Aizenberg
Journal:  Sci Rep       Date:  2021-05-21       Impact factor: 4.379

2.  Ultrascalable Surface Structuring Strategy of Metal Additively Manufactured Materials for Enhanced Condensation.

Authors:  Jin Yao Ho; Kazi Fazle Rabbi; Siavash Khodakarami; Soumyadip Sett; Teck Neng Wong; Kai Choong Leong; William P King; Nenad Miljkovic
Journal:  Adv Sci (Weinh)       Date:  2022-07-03       Impact factor: 17.521

  2 in total

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