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Hydrophobized metallic meshes can ease water droplet rolling.
Abubakar, Abba Abdulhamid; Yilbas, Bekir Sami; Al-Qahtani, Hussain; Mohammed, Anwaruddin Siddiqui.
Afiliação
  • Abubakar AA; Mechanical Engineering Department, KFUPM, Dhahran 31261, Kingdom of Saudi Arabia.
  • Yilbas BS; Mechanical Engineering Department, KFUPM, Dhahran 31261, Kingdom of Saudi Arabia and Center of Research Excellence in Renewable Energy (CoRE-RE), KFUPM, Dhahran 31261, Kingdom of Saudi Arabia. bsyilbas@kfupm.edu.sa and Senior Researcher at K. A. CARE Energy Research & Innovation Center at Dhahra
  • Al-Qahtani H; Mechanical Engineering Department, KFUPM, Dhahran 31261, Kingdom of Saudi Arabia.
  • Mohammed AS; Mechanical Engineering Department, KFUPM, Dhahran 31261, Kingdom of Saudi Arabia.
Soft Matter ; 17(31): 7311-7321, 2021 Aug 11.
Article em En | MEDLINE | ID: mdl-34286802
Rolling liquid droplets are of great interest for various applications including self-cleaning of surfaces. Interfacial resistance, in terms of pinning and shear rate, has a critical role in droplet rolling dynamics on hydrophobic surfaces. Lowering the interfacial resistance requires reducing the droplet wetting length and droplet fluid contact area on hydrophobic surfaces. The present study examines droplet rolling behavior on inclined hydrophobized metallic meshes, which facilitate reduced wetting length and contact area of droplets. Experiments are carried out using a high-speed recording facility to evaluate droplet translational and rolling velocities over various sizes of hydrophobized meshes. The flow field inside the droplet fluid is simulated in 3-dimensional space mimicking the conditions of experiments. The findings reveal that droplet translational velocity attains significantly higher values for hydrophobized meshes than plain hydrophobized metallic surfaces. Increasing the mesh size enhances the droplet velocity and reduces the droplet kinetic energy dissipation created by interfacial surface tension and shear forces. Increasing the droplet volume enhances the droplet velocity despite the fact that pinning and frictional forces increase at the liquid-mesh interface. Hence, for rolling droplets on the mesh surface, the increase in the gravitational force component becomes larger than the increase in interfacial pinning and frictional forces.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Soft Matter Ano de publicação: 2021 Tipo de documento: Article País de publicação: Reino Unido

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Soft Matter Ano de publicação: 2021 Tipo de documento: Article País de publicação: Reino Unido