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Drag reduction capacity of multi-scale and multi-level riblet in turbulent flow

  • Dengke Chen*
  • , Wenhao Li
  • , Yichen Zhao
  • , Jinhai Liu
  • , Xianxian Cui
  • , Zehui Zhao
  • , Xiaolin Liu
  • , Huawei Chen*
  • *Corresponding author for this work
  • Ludong University
  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

For high-speed moving objects, drag reduction has been a prolonged major challenge. To address this problem, passive and negative strategies have been proposed in the preceding decades. The integration of creatures and nature has been continuously perfected during biological evolution. Unique structure characteristics, material properties, and special functions of marine organisms can provide inexhaustible inspirations to solve this intractable problem of drag reduction. Therefore, a simple and low-cost laser ablation method was proposed. A multi-scale and multi-level riblet (MSLR) surface inspired by the denticles of the sharkskin was fabricated by controlling the density of the laser path and ablation times. The morphology and topographic features were characterised using an electron microscope and a scanning white-light interfering profilometer. Then, the drag reduction capacity of the bionic riblet surface was measured in a circulating water tunnel. Finally, the mechanism of drag reduction was analysed by the computational fluid dynamics (CFD) method. The results show that the MSLR surface has a stable drag reduction capacity with an increase in Reynold (Re) number which was contributed by high-low velocity stripes formed on the MSLR surface. This study can provide a reference for fabricating spatial riblets with efficient drag reduction at different values of Re and improving marine antifouling.

Original languageEnglish
Pages (from-to)7-15
Number of pages9
JournalBiosurface and Biotribology
Volume10
Issue number1
DOIs
StatePublished - Mar 2024

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 14 - Life Below Water
    SDG 14 Life Below Water

Keywords

  • BIOMIMICS
  • BIONIC STRUCTURE
  • DRAG REDUCTION

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