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Type :article
Subject :GV Recreation Leisure
ISSN :1742-6588
Main Author :Ali Md Nadzalan
Additional Authors :Tan, Kevin
Nur Ikhwan Mohamad
Title :The effects of loadings during forward lunge on force output in dominant and non-dominant leg
Place of Production :Tanjung Malim
Publisher :Fakulti Sains Sukan Dan Kejurulatihan
Year of Publication :2021
Notes :Journal of Physics: Conference Series
Corporate Name :Universiti Pendidikan Sultan Idris
Web Link :Click to view web link
PDF Full Text :Login required to access this item.

Abstract : Universiti Pendidikan Sultan Idris
The aim of this study was to determine and compare the force output during lunge exercises with different loadings; i) high load forward lunge (70% 1RM) and ii) low load forward lunge (30% 1RM). Thirty recreationally active, untrained men were recruited and were assigned to perform forward lunge with 70% 1RM (70FL) and 30% 1RM (30FL) with both their dominant and non-dominant leg. For both dominant and non-dominant leg, all the force variables during 70FL were significantly greater compared to 30FL. Results also showed that time to peak force and stance time was significantly shorter during 30FL compared to 70FL. Besides that, all the force variables were greater in the dominant limb compared to the non-dominant limb. Time to peak force and stance time were also shorter in dominant limb compared to the non-dominant limb. As the conclusion, assymetries exist among untrained men during forward lunge exercise for both low loads and high loads. ? Published under licence by IOP Publishing Ltd.

References

Maloney, S. J. (2018). Review of the Badminton Lunge and Specific Training Considerations. Strength & Conditioning Journal, 40(4).

McClellan, T., & Bugg, B. S. (1999). Lunge variations to enhance specificity in tennis. Strength & Conditioning Journal, 21(6).

Nadzalan, A. M., Mohamad, N. I., Lee, J. L. F., & Chinnasee, C. (2016). Relationship between lower body muscle architecture and lunges performance. Jurnal Sains Sukan & Pendidikan Jasmani, 5(2).

Nadzalan, A. M., Mohamad, N. I., Lee, J. L. F., & Chinnasee, C. (2018). Relationship between muscle architecture and badminton-specific physical abilities. Human Movement, 19(1).

Josephson, R. K. (1975). Extensive and intensive factors determining the performance of striated muscle. Journal of Experimental Zoology, 194(1).

Kuntze, G., Mansfield, N., & Sellers, W. (2010). A biomechanical analysis of common lunge tasks in badminton. Journal of sports sciences, 28(2).

Mohamad, N. I., Cronin, J. B., & Nosaka, K. K. (2012). Difference in kinematics and kinetics between high-and low-velocity resistance loading equated by volume: implications for hypertrophy training. The Journal of Strength & Conditioning Research, 26(1).

Haff, G. G., & Triplett, N. T. (Eds.). (2015). Essentials of strength training and conditioning 4th edition. Human kinetics.

Schmidtbleicher, D. (1992). Training for power events. Strength and power in sport, 1.

Cormie, P., McBride, J. M., & McCaulley, G. O. (2009). Power-time, force-time, and velocitytime curve analysis of the countermovement jump: impact of training. The Journal of Strength & Conditioning Research, 23(1).

Kellis, E., Arambatzi, F., & Papadopoulos, C. (2005). Effects of load on ground reaction force and lower limb kinematics during concentric squats. Journal of Sports Sciences, 23(10).

Zink, A. J., Perry, A. C., Robertson, B. L., Roach, K. E., & Signorile, J. F. (2006). Peak power, ground reaction forces, and velocity during the squat exercise performed at different loads. The Journal of Strength & Conditioning Research, 20(3).

Soriano, M. A., Jiménez-Reyes, P., Rhea, M. R., & Marín, P. J. (2015). The optimal load for maximal power production during lower-body resistance exercises: a meta-analysis. Sports Medicine, 45(8).

Hsieh, A., Huang, C. F., & Huang, C. C. (2012). The biomechanical analysis of roundhouse kick in taekwondo. In ISBS-Conference Proceedings Archive.

Niu, W., Wang, Y., He, Y., Fan, Y., & Zhao, Q. (2011). Kinematics, kinetics, and electromyogram of ankle during drop landing: a comparison between dominant and nondominant limb. Human movement science, 30(3).

Van der Harst, J. J., Gokeler, A., & Hof, A. L. (2007). Leg kinematics and kinetics in landing from a single-leg hop for distance. A comparison between dominant and non-dominant leg. Clinical biomechanics, 22(6).

Chinnasee, C., Nadzalan, A. M., Mohamad, N. I., Tan, K., Jutimoosik, J., Sirisathitkul, C., ... & Bunyavejchewin, P. (2018, May). Kinematics Analysis of Dominant and Non-Dominant Lower Limb during Knee Strike among MuayThai Beginners. In Journal of Physics: Conference Series.

Aziz, N.U.A., et al., (2019). The effects of elbow flexion angles on handgrip force production among trained women. International Journal of Innovative Technology and Exploring Engineering. 8(10).

Giakas, G. (2004). Innovative Analysis of Human Movement.


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