Recurrent filmwise and dropwise condensation on a beetle mimetic surface.

@article{Hou2015RecurrentFA,
  title={Recurrent filmwise and dropwise condensation on a beetle mimetic surface.},
  author={Youmin Hou and Miao Yu and Xuemei Chen and Zuankai Wang and Shuhuai Yao},
  journal={ACS nano},
  year={2015},
  volume={9 1},
  pages={
          71-81
        }
}
Vapor condensation plays a key role in a wide range of industrial applications including power generation, thermal management, water harvesting and desalination. Fast droplet nucleation and efficient droplet departure as well as low interfacial thermal resistance are important factors that determine the thermal performances of condensation; however, these properties have conflicting requirements on the structural roughness and surface chemistry of the condensing surface or condensation modes (e… 

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References

SHOWING 1-10 OF 80 REFERENCES
Jumping-droplet-enhanced condensation on scalable superhydrophobic nanostructured surfaces.
TLDR
This work shows that silanized copper oxide surfaces created via a simple fabrication method can achieve highly efficient jumping-droplet condensation heat transfer and promises a low cost and scalable approach to increase efficiency for applications such as atmospheric water harvesting and dehumidification.
Modeling and Optimization of Superhydrophobic Condensation
Superhydrophobic micro/nanostructured surfaces for dropwise condensation have recently received significant attention due to their potential to enhance heat transfer performance by shedding water
Spatial Control of Heterogeneous Nucleation on the Superhydrophobic Nanowire Array
Condensation is a common phenomenon and is widely exploited in power generation and refrigeration devices. Although drop-wise condensation offers high heat and mass transfer rates, it is extremely
Supernucleating surfaces for nucleate boiling and dropwise condensation heat transfer
Roughness-based superhydrophobic surfaces have been extensively studied over the past decade. The primary objective in most of those studies has been to mimic nature, e.g. lotus leaves, to produce
Electric-field-enhanced condensation on superhydrophobic nanostructured surfaces.
TLDR
Characterizing individual droplet trajectories during condensation on superhydrophobic nanostructured copper oxide (CuO) surfaces shows that this vapor flow entrainment dominates droplet motion for droplets smaller than R ≈ 30 μm at moderate heat fluxes, and demonstrates electric-field-enhanced condensation, whereby an externally applied electric field prevents jumping droplet return.
Effect of droplet morphology on growth dynamics and heat transfer during condensation on superhydrophobic nanostructured surfaces.
TLDR
Insight is provided into the previously unidentified role of droplet wetting morphology on growth rate, as well as the need to design Cassie stable nanostructured surfaces with tailored droplet morphologies to achieve enhanced heat and mass transfer during dropwise condensation.
Flow condensation on copper-based nanotextured superhydrophobic surfaces.
TLDR
The results underscore the need to investigate superhydrophobic surfaces under stringent and realistic flow condensation conditions before drawing conclusions regarding their performance in practically relevant condensation applications.
How nanorough is rough enough to make a surface superhydrophobic during water condensation
Nanostructured surfaces which manifest superhydrophobic properties during water condensation have a potential to dramatically enhance energy efficiency in power generation and desalination systems.
Dropwise Condensation Modeling Suitable for Superhydrophobic Surfaces
A mathematical model is developed to represent and predict the dropwise condensation phenomenon on nonwetting surfaces having hydrophobic or superhydrophobic (contact angle greater than 150 deg)
The effect of relative humidity on dropwise condensation dynamics
...
1
2
3
4
5
...