Enhancement in boiling heat transfer performance using reduced graphene oxide coating with controllable components and porous structures

被引:0
|
作者
XU ZhiMing [1 ,2 ]
WANG XiaoLiang [1 ,2 ]
JIANG HongPeng [1 ,2 ]
ZHANG ZhiRong [3 ]
SHAN DeBin [1 ,2 ]
GUO Bin [1 ,2 ]
QIU YunFeng [1 ,4 ]
XU Jie [1 ,2 ]
机构
[1] Key Laboratory of Micro-Systems and Micro-Structures Manufacturing of Ministry of Education, Harbin Institute of Technology
[2] School of Materials Science and Engineering, Harbin Institute of Technology
[3] School of Chemistry and Chemical Engineering, Yancheng Institute of Technology
[4] School of Medicine and Health, Harbin Institute of Technology
基金
中国国家自然科学基金;
关键词
D O I
暂无
中图分类号
TG174.4 [金属表面防护技术]; TK124 [传热学];
学科分类号
080503 ; 080701 ;
摘要
Enhancement in boiling heat transfer performance is significant for addressing thermal management bottlenecks of advanced electronic systems. Reduced graphene oxides(rGO) are regarded as promising candidates for thermal management due to their excellent thermal properties, chemical stability and adjustable wettability. In this study, rGO coatings with micron pores and controllable oxygen contents are prepared on Al substrate via cathodic electrophoretic deposition and subsequent thermal annealing, leading to enhanced pool boiling performance. The heat transfer coefficient for Al/rGO450is 37.2 kW m-2K-1, which is increased by 112.6% compared with bare Al, also outperformed previously reported Al based substrates. It is assumed that the hydrophilic and aerophobic r GO coatings effectively promote the liquid infiltration and bubble departure during pool boiling process. Importantly, repeatability tests indicate the durable stability of vertically oriented rGO nanosheets. Reverse nonequilibrium molecular dynamics simulation indicates that the interfacial transmission coefficients of Al/rGO increase after thermal annealing, indicative of the enhanced heat transfer performance of heterogeneous interface. Our study opens a new avenue for endowing metal substrates with high pool boiling performance using porous carbon coating nanoengineering strategy with controllable morphology and components.
引用
收藏
页码:2080 / 2092
页数:13
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