The Effect of the Swimmer’s Trunk Oscillation on Dolphin Kick Performance Using a Computational Method with Multi-Body Motion: A Case Study
Abstract
:1. Introduction
2. Numerical Method
2.1. Swimmer Model and Motion Capture
2.2. Governing Equations
2.3. Motion Control
2.4. Computational Domain and Numerical Simulation
3. Results and Discussion
3.1. Validation of the Velocity
3.2. Net Streamwise Forces
3.3. The Swimming Velocity
3.4. Joint Moments
3.5. Visualization of the Flow Field
3.6. Discussion
3.7. Limitations and Prospects
4. Conclusions
- (1)
- The hydrodynamic characteristics (drag, thrust, mean swimming velocity, joint moments, flow field visualization, etc.) of the dolphin kick were successfully investigated, especially the joint moments. This method may be helpful for swimmers to improve their performance and training.
- (2)
- The maximum drag and thrust force increased as the amplitude of trunk oscillations increased, which led to the increase in mean swimming velocity. It is, therefore, recommended that swimmers should try to achieve a larger amplitude of trunk oscillations to improve swimming performance.
- (3)
- As the amplitude of trunk oscillations increased, the moments of lower limb joints (ankles, knees, hips, and upper waist) also increased. When the mean swimming velocity increased from 1.42 m/s in Variant 1 to 2 m/s in Variant 5, the maximum positive moments of joints increased by about 24.7% for the ankles, 27.4% for the knees, −3.9% for the hips, and 5.8% for the upper waist, whereas the maximum negative moments of joints increased by about 64.5% for the ankles, 28.1% for the knees, 23.1% for the hips, and 10.1% for the upper waist. These suggest that swimmers should increase strength training for their ankles, knees, and upper waist during the upkick. Moreover, extra strength training is recommended for the ankles, knees, hips, and upper waist during the downkick.
- (4)
- As the mean swimming velocity increased with the lager trunk oscillation, the angle of the upward vortex increased, as well as the x-direction displacement of the upward and downward vortices. Therefore, the behavior of the vortex generated by the feet may be related to effective dolphin kicks, which are worth studying further to explore its mechanical mechanism.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Variant 1 | Variant 2 | Variant 3 | Variant 4 | Variant 5 | |
---|---|---|---|---|---|
19.13° | 21.53° | 23.92° | 26.31° | 28.70° | |
Mean swimming velocity (m/s) | 1.42 | 1.57 | 1.79 | 1.93 | 2.00 |
Variant Number | Maximum Moment (N · m) | Ankles | Keens | Hips | Upper Waist |
---|---|---|---|---|---|
Variant 1 | positive | 74.74 | 250 | 647.2 | 945 |
negative | −51.14 | −310 | −589.2 | −886.5 | |
Variant 2 | positive | 77.8 | 250 | 648.1 | 994 |
negative | −57.59 | −313.7 | −585.9 | −884.4 | |
Variant 3 | positive | 80.89 | 249.3 | 647.2 | 986.8 |
negative | −65.66 | −346.1 | −632.4 | −895.6 | |
Variant 4 | positive | 84.73 | 274 | 638 | 986.9 |
negative | −76.2 | −378.3 | −692 | −886.7 | |
Variant 5 | positive | 93.22 | 318.5 | 621.8 | 1000 |
negative | −84.12 | −397.2 | −725.4 | −976.3 |
Variant Number | Angle of Upward Vortex θ (°) | X-Direction Displacement of Upward Vortex (m) | X-Direction Displacement of Downward Vortex (m) |
---|---|---|---|
Variant 1 | 44.47 | 0.4585 | 0.5310 |
Variant 2 | 45.02 | 0.4990 | 0.6266 |
Variant 3 | 46.09 | 0.5484 | 0.6760 |
Variant 4 | 47.07 | 0.5519 | 0.6325 |
Variant 5 | 51.71 | 0.5802 | 0.7457 |
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Chen, Z.; Li, T.; Yang, J.; Zuo, C. The Effect of the Swimmer’s Trunk Oscillation on Dolphin Kick Performance Using a Computational Method with Multi-Body Motion: A Case Study. Int. J. Environ. Res. Public Health 2022, 19, 4969. https://doi.org/10.3390/ijerph19094969
Chen Z, Li T, Yang J, Zuo C. The Effect of the Swimmer’s Trunk Oscillation on Dolphin Kick Performance Using a Computational Method with Multi-Body Motion: A Case Study. International Journal of Environmental Research and Public Health. 2022; 19(9):4969. https://doi.org/10.3390/ijerph19094969
Chicago/Turabian StyleChen, Zhiya, Tianzeng Li, Jin Yang, and Chuan Zuo. 2022. "The Effect of the Swimmer’s Trunk Oscillation on Dolphin Kick Performance Using a Computational Method with Multi-Body Motion: A Case Study" International Journal of Environmental Research and Public Health 19, no. 9: 4969. https://doi.org/10.3390/ijerph19094969
APA StyleChen, Z., Li, T., Yang, J., & Zuo, C. (2022). The Effect of the Swimmer’s Trunk Oscillation on Dolphin Kick Performance Using a Computational Method with Multi-Body Motion: A Case Study. International Journal of Environmental Research and Public Health, 19(9), 4969. https://doi.org/10.3390/ijerph19094969