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Pool-Boiling Heat-Transfer Enhancement on Cylindrical Surfaces with Hybrid Wettable Patterns
Published on: April 10, 2017
Wicking Enhanced Critical Heat Flux for Highly Wetting Fluids on Structured Surfaces.
Md Mahamudur Rahman1, Shakerur Ridwan2, Donald Fehlinger2
1Department of Mechanical Engineering, University of Texas El Paso, El Paso, Texas 79968, United States.
Structured superhydrophilic surfaces significantly enhance critical heat flux (CHF) in pool boiling. A validated correlation now applies to nonaqueous liquids, expanding CHF enhancement possibilities.
Area of Science:
- Heat Transfer
- Surface Science
- Fluid Dynamics
Background:
- Micro/nano-scale structures enhance critical heat flux (CHF) in pool boiling.
- Prior work established a correlation between wicking rate and CHF enhancement for structured superhydrophilic surfaces using water.
- The applicability of this correlation to nonaqueous liquids was not previously demonstrated.
Purpose of the Study:
- To demonstrate the applicability of a previously developed nondimensional CHF correlation to nonaqueous liquids.
- To validate the correlation using a highly wetting fluid (FC-72) and structured surfaces.
- To investigate the CHF enhancement potential of various micro/nano-scale and hierarchical structures.
Main Methods:
- Fabrication and testing of numerous structured superhydrophilic surfaces with micro/nano-scale and hierarchical features.
- Modification of the experimental procedure to accommodate highly wetting fluids like FC-72.
- Quantification of liquid wicking rates and measurement of critical heat flux (CHF).
Main Results:
- Hierarchical structured surfaces achieved the highest CHF enhancement, reaching up to 200%.
- A simple experimental modification allowed for the use of FC-72 without affecting wicking rate quantification.
- The study successfully demonstrated the validity of the nondimensional CHF correlation for nonaqueous liquids.
Conclusions:
- The developed nondimensional CHF correlation is applicable to a wide range of nonaqueous liquids.
- Structured superhydrophilic surfaces, particularly hierarchical ones, offer significant potential for enhancing CHF.
- The experimental methodology is adaptable for testing highly wetting fluids, broadening the scope of CHF research.

