Kayak blade–hull interactions: A body force approach for self-propelled simulations

Author:

Banks Joseph1,Phillips Alexander B1,Turnock Stephen R1,Hudson Dominic A1,Taunton Dominic J1

Affiliation:

1. Fluid Structure Interactions Research Group, Faculty of Engineering and the Environment, University of Southampton, Southampton, UK

Abstract

A sprint kayak experiences an unsteady flow regime due to the local influence of the paddle. However, kayak designs are usually optimised for steady-state, naked hull resistance. To determine whether unsteady paddle effects need to be included in kayak design, the hydrodynamic interactions between a kayak paddle and a hull are assessed using computational fluid dynamics. A body force model of a drag-based paddle stroke is developed using a blade element approach and validated against experimental data. This allows the paddle-induced local velocities to be simulated without the need to fully resolve the detailed flow around a moving paddle geometry. The increase in computational cost, compared to the naked hull simulation, is 8%. A case study investigating the impact of different paddle techniques on the hydrodynamic forces acting on a self-propelled kayak is conducted. A 0.23% difference in self-propelled resistance was observed, while an estimated 0.5% additional increase can be attributed to paddle-induced draught increases. An estimate of small changes in resistance on race times indicates that reductions of even a fraction of a percent are worth pursuing, indicating that the developed methodology may provide a useful design tool in the future.

Publisher

SAGE Publications

Subject

General Engineering

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. One-Dimensional Mathematical Model for Kayak Propulsion;Applied Sciences;2021-11-05

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3. Dynamic simulation of flat water kayaking using a coupled biomechanical-smoothed particle hydrodynamics model;Human Movement Science;2019-04

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