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Fractal Model for Drag Reduction on Multiscale Nonwetting Rough Surfaces
1Advanced Materials and Technologies Laboratory, Department of Mechanical Engineering, Virginia Polytechnic Institute and State University, Blacksburg, Virginia 24061-0238, United States.
Langmuir : the ACS Journal of Surfaces and Colloids
|November 16, 2020
Summary
Rough surfaces can reduce fluid drag by alternating no-slip and free shear conditions. A fractal model analyzes the Cassie state stability and drag reduction for hydrophobic and superhydrophobic surfaces.
Area of Science:
- Fluid dynamics
- Surface science
- Tribology
Background:
- Rough surfaces create alternating no-slip and free shear boundary conditions, potentially reducing fluid drag.
- The Cassie state of wettability depends on the balance between dynamic and capillary pressures, influencing drag reduction.
Purpose of the Study:
- Develop an analytical model using fractal geometry to quantify Cassie state stability and drag reduction.
- Investigate the impact of surface fractal parameters and Reynolds number on drag reduction and friction factor for laminar flow.
Main Methods:
- Utilized a fractal representation of rough surface topography to develop an analytical model.
- Conducted a systematic study on drag reduction and friction factor for laminar flow in a rectangular channel.
- Extended the classical Moody diagram to include hydrophobic and superhydrophobic surfaces.
Main Results:
- Quantified the stability of the Cassie state and its relation to drag reduction.
- Developed friction factor curves and regime maps for hydrophobic and superhydrophobic surfaces.
- Demonstrated that superhydrophobic surfaces do not consistently provide optimal drag reduction.
Conclusions:
- The fractal model provides a method to predict drag reduction on rough, nonwetting surfaces.
- Regime maps guide the selection of surfaces for effective drag reduction.
- The model's applicability to fabricated surfaces like copper, aluminum, and zinc oxide is discussed.
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