| 注册
首页|期刊导航|实验流体力学|水下超疏水锥形阵列表面剪切流动减阻及气膜稳定性研究

水下超疏水锥形阵列表面剪切流动减阻及气膜稳定性研究

李昊洋 高翔 张福建 张忠强

实验流体力学2026,Vol.40Issue(4):64-75,12.
✕
实验流体力学2026,Vol.40Issue(4):64-75,12.DOI:10.11729/syltlx20250105

水下超疏水锥形阵列表面剪切流动减阻及气膜稳定性研究

Underwater drag reduction and gas film stability of superhydrophobic conical array surface under shear flow

李昊洋 1高翔 1张福建 1张忠强1

作者信息

  • 1. 江苏大学 机械工程学院,镇江 212013
  • 折叠

摘要

Abstract

Microstructured superhydrophobic surfaces represent an effective approach for drag reduction and reducing energy consumption of underwater vehicles.However,the gas film stability on microstructured surfaces remains insufficient,particularly under hydrodynamic shear conditions,which can lead to premature failure of drag reduction performance.Here,a superhydrophobic conical array surface(CAS)is proposed to enable effective underwater drag reduction in Couette flow and enhance the stability of the gas-film by altering the cone structure.The gas-liquid two-phase-flow over CAS in a planar Couette flow configuration is investigated by COMSOL multiphysics.The key parameters,such as the cone height,inclination angle,and wettability,are analyzed to investigate their effects on the flow velocity,slip length,and drag reduction performance.The results demonstrate that the CAS induces a significant boundary slip velocity,effectively reducing hydrodynamic drag under laminar flow conditions.The slip length exhibits a positive correlation with the cone height,while drag reduction increases with an increase in the inclination angle.The inclined CAS configuration enhances the contact-line pinning effect,and thus further improves the gas-film stability under fluid shear conditions,enhancing sustained drag reduction.These findings provide a theoretical basis for designing and manufacturing functional drag reduction superhydrophobic surfaces for underwater applications.

关键词

锥形阵列表面/减阻/滑移长度/气膜稳定性

Key words

conical array surface/drag reduction/slip length/gas film stability

分类

化学化工

引用本文复制引用

李昊洋,高翔,张福建,张忠强..水下超疏水锥形阵列表面剪切流动减阻及气膜稳定性研究[J].实验流体力学,2026,40(4):64-75,12.

基金项目

江苏省前沿技术研发计划(BF2024047) (BF2024047)

国家自然科学基金面上项目(12272151) (12272151)

国家自然科学基金重大项目(92248301) (92248301)

江苏省高等学校自然科学基金项目(24KJB460010) (24KJB460010)

实验流体力学

1672-9897

访问量0
|
下载量0
段落导航相关论文