Influence of Neuromuscular Activity and Technical Determinants on Scull Rowing Performance
Abstract
:1. Introduction
2. Materials and Methods
2.1. Participants
2.2. Test Procedure
2.3. Data Collection
2.4. Data Analysis
2.5. Statistics
3. Results
3.1. Rowing Kinematics
3.2. Rowing Neuromuscular Activations
3.3. Effect of Technical Determinants on Performance
3.4. Effect of Neuromuscular Activations on Performance
4. Discussion
5. Limitations
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Base Variable | Description | Name Used |
---|---|---|
Wrist flexion angle | Value at catch (°) | WriCatch |
Value at finish (°) | WriFinish | |
Range of motion over the cycle (°) | WriRoM | |
Elbow flexion angle | Value at catch (°) | ElbCatch |
Value at finish (°) | ElbFinish | |
Range of motion over the cycle (°) | ElbRoM | |
Shoulder flexion angle | Value at catch (°) | ShoCatch |
Value at finish (°) | ShoFinish | |
Range of motion over the cycle (°) | ShoRoM | |
Angle WRT vertical: thoracic spine (T6 level) | Value at catch (°) | T6Catch |
Value at finish (°) | T6Finish | |
Range of motion over the cycle (°) | T6RoM | |
Angle WRT vertical: lumbar spine (L2 level) | Value at catch (°) | L2Catch |
Value at finish (°) | L2Finish | |
Range of motion over the cycle (°) | L2RoM | |
Angle WRT vertical: pelvis | Value at catch (°) | PelvCatch |
Value at finish (°) | PelvFinish | |
Range of motion over the cycle (°) | PelvRoM | |
Stroke angle length | Maximum oar angle–minimum oar angle (°) | Length |
Asymmetry computed as the difference between right and left Length (°) | LengthAs | |
Catch slip angle | Computed as the difference between the minimum oar angle at catch and the angle at which the force applied exceeds 20 kg (°) | CSA |
Asymmetry computed as the difference between right and left CSA (°) | CSAAs | |
Finish slip angle | Computed as the difference between the maximum oar angle at finish and the angle at which the force decreases below 15 kg (°) | FSA |
Asymmetry computed as the difference between right and left FSA (°) | FSAAs | |
Stroke effective angle | Length–(CSA + FSA) | EFA |
Asymmetry computed as the difference between right and left effective angle (°) | EFAAs | |
Negative peak of boat acceleration | Most negative value of the boat acceleration signal, after catch in Figure A1 (m/s2) | mAcc |
Total oar force curve (starboard + board) | Time from the catch to the curve peak, expressed as percentage of the drive phase (%) | ForceT2P |
Mean-to-peak, ratio average force in the drive phase over maximum value | ForceM2P | |
Angle at which the peak force occurs (°) | ForceAP | |
Muscle activations | RMS of the normalized EMG signals in each of the 8 zones of the drive and recovery phases |
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Pitto, L.; Ertel, G.N.; Simon, F.R.; Gauchard, G.C.; Mornieux, G. Influence of Neuromuscular Activity and Technical Determinants on Scull Rowing Performance. Appl. Sci. 2024, 14, 9055. https://doi.org/10.3390/app14199055
Pitto L, Ertel GN, Simon FR, Gauchard GC, Mornieux G. Influence of Neuromuscular Activity and Technical Determinants on Scull Rowing Performance. Applied Sciences. 2024; 14(19):9055. https://doi.org/10.3390/app14199055
Chicago/Turabian StylePitto, Lorenzo, Geoffrey N. Ertel, Frédéric R. Simon, Gérome C. Gauchard, and Guillaume Mornieux. 2024. "Influence of Neuromuscular Activity and Technical Determinants on Scull Rowing Performance" Applied Sciences 14, no. 19: 9055. https://doi.org/10.3390/app14199055
APA StylePitto, L., Ertel, G. N., Simon, F. R., Gauchard, G. C., & Mornieux, G. (2024). Influence of Neuromuscular Activity and Technical Determinants on Scull Rowing Performance. Applied Sciences, 14(19), 9055. https://doi.org/10.3390/app14199055