• 文献标题:   Enhanced boiling heat transfer by nucleation patterning with self-assembly of re duce d graphene oxide coating
  • 文献类型:   Article
  • 作  者:   CHOI G, YUN M, HSU WT, SHIM DI, LEE D, KIM BS, CHO HH
  • 作者关键词:   nucleation patterning, reduced graphene oxide, selfassembly, boiling heat transfer, heat transfer coefficient
  • 出版物名称:   INTERNATIONAL JOURNAL OF HEAT MASS TRANSFER
  • ISSN:   0017-9310 EI 1879-2189
  • 通讯作者地址:  
  • 被引频次:   2
  • DOI:   10.1016/j.ijheatmasstransfer.2022.123329 EA AUG 2022
  • 出版年:   2022

▎ 摘  要

Boiling heat transfer is a favorable method for cooling high heat flux devices, and its performance is evaluated using critical heat flux (CHF), which indicates the maximum heat dissipation capacity. CHF oc-curs when a surface is covered with a vapor film due to bubble coalescence. Here, we propose a new nucleation patterning surface using rGO-coated micropillar-free cavities in order to enhance boiling heat transfer by suppressing bubble coalescence. Nucleation patterned surface is achieved by a sectored self -assembly on surfaces with artificial cavities embedded in micropillar array. The nucleation pattern is designed with spacings of 1.0 and 1.5 mm, with reference to the bubble departure diameter on the rGO-coated micropillar surface. The rGO particles deposited on the bottom of the micropillar-free cavity cause bubble formation in the cavities, and the micropillars around the cavities supply liquid to bubbles through wicking. Moreover, rGO deposition with varying heat flux schemes suggests the capability of constructing toned rGO layers on patterned micropillar surfaces. The results confirmed that high heat transfer perfor-mance can be obtained by applying denser bubble nucleation with a bubble generation spacing to bubble departure diameter ratio of 1, under the condition of preventing bubble coalescence. The heat transfer co-efficient and critical heat flux were augmented by 340% and 203%, respectively, by preserving flow paths for water imbibition under the floating rGO layer and delaying bubble coalescence.(c) 2022 Elsevier Ltd. All rights reserved.