One-way fluid-structure interaction analysis of oar blade designs: evaluating hydrodynamic performance and structural flexibility
DOI:
https://doi.org/10.24191/jaeds.v6i2.184Keywords:
Rowing Blade, FSI, Fluid flow, Hydrodynamic pressure, Blade flexibilityAbstract
Rowing propulsion relies on complex interactions between the paddle blade and the water, where blade design is crucial in determining efficiency and performance. During the stroke, the oar blade interacts with the water and undergoes structural deformation under hydrodynamic forces. In an actual situation, hydraulic forces and structural responses occur simultaneously, requiring FSI for study and evaluation. Thus, this study aims to evaluate the fluid-structure interaction (FSI) characteristics of three widely used paddle blades, Macon, Big, and Fat blade, using a one-way FSI approach. Computational Fluid Dynamics (CFD) was used to analyse the fluid flow and pressure distribution around the blade, while Finite Element Analysis (FEA) evaluated the structural deformation under hydrodynamic forces. Results revealed the Macon blade produced the lowest propulsive force of 326N at 90º blade position. The Big and Fat blade showed a force increase at 36% and 52%, respectively, compared to the Macon blade. In terms of structure, the Macon blade experienced tip deflection of 46.7mm, and the Big and Fat blade experienced bending with displacements of 11.5mm and 13.6mm, respectively, combined with twisting due to the rotational structure. The flexible blades, such as the Macon, offer smoother transitions and enhanced energy absorption. These findings underscore the importance of balancing blade stiffness, design, and hydrodynamic aspects to enhance rowing performance, offering valuable insights into optimizing paddle blade design
Downloads
References
M. N. Harun, F. A. Nasruddin, and A. Syahrom, "Rowing biomechanics, physiology and hydrodynamic: A systematic review," International journal of sports medicine, vol. 43, no. 07, pp. 577-585, 2022.
N. Legge, C. Draper, K. Slattery, D. O’Meara, and M. Watsford, "On-water Rowing Biomechanical Assessment: A Systematic Scoping Review," Sports Medicine-Open, vol. 10, no. 1, p. 101, 2024.
A. A. Mohd Yusof, M. N. Harun, and A. Syahrom, "Computational Fluid Dynamic of Rowing Using Fluid-Structure Interaction," in Rowing Biomechanics and Hydrodynamics: Performance Enhancement Through Sport Engineering: Springer, 2025, pp. 47-53.
A. Thompson, Rowing Power. Publifye AS, 2025.
F. A. Nasruddin et al., "Biomechanical Influence of Anthropometry on Stroke Technique and Power Output in Malaysian Elite Rowers: A Motion and Force Analysis Approach," Gait & Posture, vol. 121, pp. 159-161, 2025.
V. Kleshnev and E. Andreeva, "Determining the effectiveness of oar blades in rowing," Theory and Practice of Physical Culture, no. 9, pp. 21-23, 2025.
W. van Nieuwburg et al., "Improving rowing performance by adjusting oar blade size and angle," Frontiers in Sports and Active Living, vol. 5, p. 1109494, 2023.
R. Cardoso et al., "Mechanics and energetic analysis of rowing with Big blades with Randall foils," International Journal of Sports Medicine, vol. 44, no. 14, pp. 1043-1048, 2023.
V. Kleshnev, "Efficiency of various blade types in rowing," Sports Biomechanics, pp. 1-11, 2026.
E. Grift, M. Tummers, and J. Westerweel, "Hydrodynamics of rowing propulsion," Journal of Fluid Mechanics, vol. 918, p. A29, 2021.
A. Yusof, A. H. Omar, A. Syahrom, and M. Harun, "Analysis of oar blade hydrodynamics for rowing propulsive mechanism: Experiment and computational fluid dynamics simulation," International Review of Mechanical Engineering, vol. 12, pp. 920-927, 2018.
A. Sliasas and S. Tullis, "A hydrodynamics-based model of a rowing stroke simulating effects of drag and lift on oar blade efficiency for various cant angles," Procedia Engineering, vol. 2, no. 2, pp. 2857-2862, 2010.
B. Elliott, A. Lyttle, and O. Birkett, "Rowing: The RowPerfect Ergometer: a training aid for on‐water single scull rowing," Sports Biomechanics, vol. 1, no. 2, pp. 123-134, 2002.
R. Cardoso et al., "Effect of Randall foils on the rowing propulsive cycle," Sports Biomechanics, pp. 1-10, 2024.
M. Hofmijster, J. De Koning, and A. Van Soest, "Estimation of the energy loss at the blades in rowing: common assumptions revisited," Journal of sports sciences, vol. 28, no. 10, pp. 1093-1102, 2010.
A. Sliasas and S. Tullis, "Modelling the effect of oar shaft bending during the rowing stroke," Proceedings of the Institution of Mechanical Engineers, Part P: Journal of Sports Engineering and Technology, vol. 225, pp. 265-270, 12/01 2011, doi: 10.1177/1754337111408187.
M. N. Macrossan, "The direction of the water force on a rowing blade and its effect on efficiency," 2008.
A. Leroyer et al., "Fluid-Structure Interaction and High-Performance Computing to serve sport performance in rowing," in 24ième Congrès Français de Mécanique, CFM 2019, 2019.
L. C. Pardini and L. G. B. Manhani, "Influence of the testing gage length on the strength, Young's modulus and Weibull modulus of carbon fibres and glass fibres," Materials research, vol. 5, pp. 411-420, 2002.
A. Coppel, T. Gardner, N. Caplan, and D. Hargreaves, "Simulating the fluid dynamic behaviour of oar blades in competition rowing," Proceedings of the Institution of Mechanical Engineers, Part P: Journal of Sports Engineering and Technology, vol. 224, no. 1, pp. 25-35, 2010.
N. Caplan and T. N. Gardner, "A fluid dynamic investigation of the Big Blade and Macon oar blade designs in rowing propulsion," Journal of sports sciences, vol. 25, no. 6, pp. 643-650, 2007.
M. Qi, W. Zhu, and S. Li, "The Effect of Torsional and Bending Stiffness on the Aerodynamic Performance of Flapping Wing," Aerospace, vol. 10, no. 12, p. 1035, 2023. [Online]. Available: https://www.mdpi.com/2226-4310/10/12/1035.
B. Laschowski, C. C. Hopkins, J. R. de Bruyn, and V. Nolte, "Modelling the deflection of rowing oar shafts," Sports Biomechanics, vol. 16, no. 1, pp. 76-86, 2017.
H. Alkhraisat, "Optimization of high modulus carbon oar-shaft using grey wolf optimizer," Arabian Journal for Science and Engineering, vol. 48, no. 2, pp. 2041-2060, 2023.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2026 Ab Aziz Mohd Yusof, Amir Aziz, Akbar Teguh Prakoso , Fakhrizal Azmy Nasruddin

This work is licensed under a Creative Commons Attribution 4.0 International License.






