In microchannel flow boiling, bubble nucleation, growth and flow regime development are highly influenced by channel cross-section and physical phenomena underlying this mechanism are far from being well-established. Relative effects of different forces acting on wall-liquid and liquid-vapor interface of a confined bubble play an important role in heat transfer performances. Therefore, fundamental investigations are necessary to develop enhanced microchannel heat transfer surfaces. Force analysis of vapor bubble dynamics in flow boiling Silicon Nanowire (SiNW) microchannels has been performed based on theoretical, experimental and visualization studies. The relative effects of different forces on flow regime, instability and heat transfer performances of flow boiling in Silicon Nanowire microchannels have been identified. Inertia, surface tension, shear, buoyancy, and evaporation momentum forces have significant importance at liquid-vapor interface as discussed earlier by several authors. However, no comparative study has been done for different surface properties till date. Detailed analyses of these forces including contact angle and bubble flow boiling characteristics have been conducted in this study. A comparative study between Silicon Nanowire and Plainwall microchannels has been performed based on force analysis in the flow boiling microchannels. In addition, force analysis during instantaneous bubble growth stage has been performed. Compared to Plainwall microchannels, enhanced surface rewetting and critical heat flux (CHF) are owing to higher surface tension force at liquid-vapor interface and Capillary dominance resulting from Silicon Nanowires. Whereas, low Weber number in Silicon Nanowire helps maintaining uniform and stable thin film and improves heat transfer performances. Moreover, force analysis during instantaneous bubble growth shows the dominance of surface tension at bubble nucleation and slug/transitional flow which resulted higher heat transfer contact area, lower thermal resistance and higher thin film evaporation. Whereas, inertia force is dominant at annular flow and it helps in bubble removal process and rewetting.
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ASME 2016 5th International Conference on Micro/Nanoscale Heat and Mass Transfer
January 4–6, 2016
Biopolis, Singapore
Conference Sponsors:
- Heat Transfer Division
ISBN:
978-0-7918-4965-1
PROCEEDINGS PAPER
Force Analysis of Bubble Dynamics in Flow Boiling Silicon Nanowire Microchannels
Tamanna Alam,
Tamanna Alam
University of South Carolina, Columbia, SC
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Wenming Li,
Wenming Li
University of South Carolina, Columbia, SC
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Fanghao Yang,
Fanghao Yang
IBM T. J. Watson Research Center, Yorktown Heights, NY
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Ahmed Shehab Khan,
Ahmed Shehab Khan
University of South Carolina, Columbia, SC
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Yan Tong,
Yan Tong
University of South Carolina, Columbia, SC
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Jamil Khan,
Jamil Khan
University of South Carolina, Columbia, SC
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Jing Li,
Jing Li
City University of Hong Kong, Hong Kong, China
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Zuankai Wang,
Zuankai Wang
City University of Hong Kong, Hong Kong, China
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Chen Li
Chen Li
University of South Carolina, Columbia, SC
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Tamanna Alam
University of South Carolina, Columbia, SC
Wenming Li
University of South Carolina, Columbia, SC
Fanghao Yang
IBM T. J. Watson Research Center, Yorktown Heights, NY
Ahmed Shehab Khan
University of South Carolina, Columbia, SC
Yan Tong
University of South Carolina, Columbia, SC
Jamil Khan
University of South Carolina, Columbia, SC
Jing Li
City University of Hong Kong, Hong Kong, China
Zuankai Wang
City University of Hong Kong, Hong Kong, China
Chen Li
University of South Carolina, Columbia, SC
Paper No:
MNHMT2016-6714, V001T03A009; 9 pages
Published Online:
March 15, 2016
Citation
Alam, T, Li, W, Yang, F, Khan, AS, Tong, Y, Khan, J, Li, J, Wang, Z, & Li, C. "Force Analysis of Bubble Dynamics in Flow Boiling Silicon Nanowire Microchannels." Proceedings of the ASME 2016 5th International Conference on Micro/Nanoscale Heat and Mass Transfer. Volume 1: Micro/Nanofluidics and Lab-on-a-Chip; Nanofluids; Micro/Nanoscale Interfacial Transport Phenomena; Micro/Nanoscale Boiling and Condensation Heat Transfer; Micro/Nanoscale Thermal Radiation; Micro/Nanoscale Energy Devices and Systems. Biopolis, Singapore. January 4–6, 2016. V001T03A009. ASME. https://doi.org/10.1115/MNHMT2016-6714
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