A numerical simulation study on the reduction performance of ship resistance with bionic hydrofoil appendages

With stringent ship energy-efficiency and emission requirements, ship rapidity has gained attention, and Computational Fluid Dynamics (CFD) is key for resistance prediction. Inspired by humpback whale pectoral-fin leading-edge tubercles, this study proposes bionic hydrofoil appendages at the bow and stern to reduce ship resistance. The Reynolds-Averaged Navier-Stokes (RANS) method, standard k-epsilon (k-ϵ) turbulence model, and the Volume of Fluid (VOF) method free-surface capture were used to calculate total resistance and flow fields for the KRISO container ship (KCS) model at six conditions near the design speed (Froude number, Fr = 0.26), with grid independence verification. Results show that for Fr = 0.20–0.30, total resistance with the bionic hydrofoil is significantly lower than with a standard hydrofoil. Resistance reduction increases with speed, achieving net reduction versus the bare hull at Fr ≥ 0.28. The mechanism reduces bow wave height and mitigates flow interference from standard hydrofoils, demonstrating broader applicability and offering a new hull resistance-reduction approach.

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Publication Details

Journal
Ships and Offshore Structures
Published
2026-10-07
DOI
https://doi.org/10.1080/17445302.2026.2741717
Primary Topic
Ship Hydrodynamics and Maneuverability
Type
article
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article

A numerical simulation study on the reduction performance of ship resistance with bionic hydrofoil appendages

任承科, Jie Li, Weizhuang Ma, Shuo Wen
Ships and Offshore Structures
Ship Hydrodynamics and Maneuverability
article

A numerical simulation study on the reduction performance of ship resistance with bionic hydrofoil appendages

任承科, Jie Li, Weizhuang Ma, Shuo Wen
article en

Abstract

With stringent ship energy-efficiency and emission requirements, ship rapidity has gained attention, and Computational Fluid Dynamics (CFD) is key for resistance prediction. Inspired by humpback whale pectoral-fin leading-edge tubercles, this study proposes bionic hydrofoil appendages at the bow and stern to reduce ship resistance. The Reynolds-Averaged Navier-Stokes (RANS) method, standard k-epsilon (k-ϵ) turbulence model, and the Volume of Fluid (VOF) method free-surface capture were used to calculate total resistance and flow fields for the KRISO container ship (KCS) model at six conditions near the design speed (Froude number, Fr = 0.26), with grid independence verification. Results show that for Fr = 0.20–0.30, total resistance with the bionic hydrofoil is significantly lower than with a standard hydrofoil. Resistance reduction increases with speed, achieving net reduction versus the bare hull at Fr ≥ 0.28. The mechanism reduces bow wave height and mitigates flow interference from standard hydrofoils, demonstrating broader applicability and offering a new hull resistance-reduction approach.

Ships and Offshore Structures
Shandong University of Science and Technology (CN)
Openalex Percentile: Top 94%
Ship Hydrodynamics and Maneuverability
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A numerical simulation study on the reduction performance of ship resistance with bionic hydrofoil appendages — 任承科, Jie Li, et al. · Ships and Offshore Structures (2026) | TGRS Research Map | TGRS