微尺度化学
传热
沸腾
材料科学
核沸腾
成核
热力学
铜
气泡
强化传热
沸腾传热
铝
流量(数学)
传热系数
机械
冶金
数学教育
物理
数学
作者
Mohammad Jalal Inanlu,Vishwanath Ganesan,Nithin Vinod Upot,Chi Wang,Zan Suo,Kazi Fazle Rabbi,Pouya Kabirzadeh,Alireza Bakhshi,Wuchen Fu,Tarandeep Singh Thukral,V V Belosludtsev,Jiaqi Li,Nenad Miljkovic
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2024-11-08
卷期号:10 (45): eadp8632-eadp8632
被引量:33
标识
DOI:10.1126/sciadv.adp8632
摘要
Micro- and nanostructured surfaces offer the potential to enhance two-phase heat transfer. However, the mechanisms behind these enhancements are not well-understood due to insufficient diagnostic methods, leading to reliance on trial-and-error surface development. We introduce in situ boroscopy to investigate microscale bubble dynamics during flow boiling nucleation and subsequent flow regime development. This method was applied in saturated flow boiling experiments within chemically etched aluminum and copper tubes. Although the surfaces have self-similar surface structures, our findings revealed varied heat transfer coefficient enhancements, with increases of up to 391% on aluminum and 41% on copper. Using boroscopy, we identified key mechanisms of heat transfer enhancement. We further used mercury porosimetry to determine the impact of pore size distribution on thermal performance. The boroscopy technique introduced here not only elucidates the underlying processes of flow boiling heat transfer enhancement but also has potential applications for the study of other two-phase phenomena.
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