Peer-reviewed publication

2021 · Volume 44 · Issue 2 · Article 25

Droplet rolling angle model of micro-nanostructure superhydrophobic coating surface

Authors and affiliations

  • Jinyu ChenSchool of Electrical and Electronic Engineering, Huazhong University of Science and Technology (HUST), Wuhan 430074, China
  • Junwu Chen *School of Electrical and Electronic Engineering, Huazhong University of Science and Technology (HUST), Wuhan 430074, ChinaDSAN NEW MATERIALS core team
  • Lee Li *School of Electrical and Electronic Engineering, Huazhong University of Science and Technology (HUST), Wuhan 430074, China
  • Shengwu WangSchool of Electrical and Electronic Engineering, Huazhong University of Science and Technology (HUST), Wuhan 430074, China
  • Yi XieState Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology (WUT), Wuhan 430074, ChinaDSAN NEW MATERIALS core team

DSAN NEW MATERIALS core team participation

Research experience connected with DSAN NEW MATERIALS' technical leadership.

Co-authored by DSAN NEW MATERIALS leaders Junwu Chen and Yi Xie; the studied primer and topcoat are linked to material participation related to DSAN NEW MATERIALS in the paper.

Junwu Chen

corresponding author · project administration · validation · supervision

Paper affiliation: Huazhong University of Science and Technology

Yi Xie

resources

Paper affiliation: Wuhan University of Technology

01

Publisher abstract

Original abstract

The droplet rolling angle is one of the important indicators to measure the coating's hydrophobic performance, but the specific factors affecting the droplet rolling angle on the micro-nanostructured superhydrophobic coating surface are not yet known. Based on the rolling mechanism of droplets on rough surfaces, and from the perspective of coating microscopic energy conservation, this paper points out that the micron-scale morphology and the nanoscale morphology can comprehensively affect the droplet rolling angle. From the above perspective, a mathematical model of the droplet rolling angle on the micro-nanostructure superhydrophobic coating surface was established. The model shows that the droplet rolling angle is positively correlated with the ratio of nano-sized pillar width to spacing, the ratio of micron-sized papilla radius to spacing, and the liquid-gas interfacial tension, and is negatively correlated to the droplet intrinsic contact angle, droplet volume and droplet density. The droplet rolling angle calculated by the presented model is in good agreement with the experimentally tested results. This model can provide good accuracy in predicting the droplet rolling angle on the micro-nanostructured superhydrophobic coating surface.

02

DSAN NEW MATERIALS editorial interpretation

Why this research matters to material applications.

This paper provides a quantitative link between micro/nanoscale geometry, liquid properties and droplet mobility. Its authorship by Junwu Chen and Yi Xie and its recorded material-supply connection make it relevant to DSAN NEW MATERIALS coating design and evaluation, while project-specific performance must still be verified on the actual substrate and operating condition.

This explanation was prepared by DSAN NEW MATERIALS for engineering orientation. The original paper remains the authoritative source.

03

Research highlights

Key findings reported in the paper.

  1. 01

    The study establishes a rolling-angle model from the perspective of microscopic energy conservation.

  2. 02

    The model connects rolling angle with nanopillar spacing, micropapilla geometry, intrinsic contact angle, droplet volume, density and liquid-gas interfacial tension.

  3. 03

    Calculated rolling angles agree with the reported experimental measurements.

  4. 04

    The model provides a quantitative method for evaluating self-cleaning behavior on micro-nanostructured superhydrophobic coatings.

04

Paper navigation

Contents of the publication.

  1. 1 Introduction
  2. 2 Preparation and performance of micro-nanostructure superhydrophobic coating
  3. 3 Model of droplet rolling angle on micro-nanostructure superhydrophobic coating surface
  4. 4 Calculation and analysis of factors affecting droplet rolling angle
  5. 4.1 Ratio of nano-sized pillar width to spacing
  6. 4.2 Ratio of micron-sized papilla radius to spacing
  7. 4.3 Droplet intrinsic contact angle
  8. 4.4 Droplet volume
  9. 4.5 Droplet type
  10. 5 Model experimental verification
  11. 5.1 Experimental samples and instruments
  12. 5.2 Experimental method
  13. 5.3 Experimental results and analysis
  14. 6 Conclusion

05

Cite this research

Copy or export a checked citation record.

Chen J, Chen J, Li L, Wang S, Xie Y. Droplet rolling angle model of micro-nanostructure superhydrophobic coating surface. European Physical Journal E. 2021;44(2):25. doi:10.1140/epje/s10189-021-00036-7.

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