La correlación entre la fuerza de los isquiotibiales nórdicos y el rendimiento en agilidad y velocidad en atletas nacionales de bádminton
DOI:
https://doi.org/10.18633/biotecnia.v27.2554Palabras clave:
Fuerza Excéntrica, Métricas de Rendimiento, Optimización del EntrenamientoResumen
El propósito de esta investigación es determinar la conexión entre la potencia de los isquiotibiales nórdicos y el rendimiento en agilidad y velocidad entre los jugadores nacionales turcos de bádminton. En el estudio participaron 11 jugadores y 6 jugadoras nacionales de bádminton. La fuerza de los músculos isquiotibiales de los atletas se midió utilizando la máquina H-Bord. Además, el rendimiento en agilidad se evaluó utilizando la prueba T de agilidad, y el rendimiento en sprint de 10 m se midió utilizando una fotocélula electrónica. Un análisis de los resultados del estudio reveló una diferencia estadísticamente significativa entre la fuerza muscular isquiotibial NİPecc(a) y NİPecc(b) y las puntuaciones de la prueba T y del sprint de 10 m en cuanto a la variable de género. En conclusión, esta investigación analizó los efectos de la fuerza de los isquiotibiales nórdicos en el rendimiento de agilidad y velocidad en atletas de bádminton e identificó una fuerte correlación negativa entre estas variables. En este contexto, se sugiere que los programas de entrenamiento dirigidos a mejorar la fuerza muscular excéntrica pueden ayudar a optimizar el rendimiento en agilidad y velocidad, particularmente en el deporte del bádminton.
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Abián, P., Del Coso, J., Salinero, J.J., Gallo-Salazar, C., Areces, F., Ruiz Vicente, D., Lara, B., Soriano, L., Muñoz, V., Lorenzo-Capella, I. and Abián-Vicén, J. 2016. Muscle damage produced during a simulated badminton match in competitive male players. Research in Sports Medicine (Print), 24:1 104-117. https:// doi.org/10.1080/15438627.2015.1076416
Akarcesme, C., Cengizel, E., Alvurdu, S., Bağcı, E., Altundağ, E., Cengizel, C.O. and Şenel, Ö. 2024. Reliability and validity of the new portable Nordic hamstring test device (IVMES H-Bord). Proceedings of the Institution of Mechanical Engineers, Part P: Journal of Sports Engineering and Technology. https://doi.org/10.1177/17543371241239725
Altundağ, E., Kayhan, M. and Şinoforoğlu, T. 2024. Investigation of the relationship between hamstring strength and vertical jump performance across various sports disciplines. Journal of Physical Education & Sports Science, 18:3, 597-608.
Bautista, I.J., Vicente-Mampel, J., Baraja-Vegas, L., Segarra, V., Martín, F. and Van Hooren, B. 2021. The effects of the Nordic hamstring exercise on sprint performance and eccentric knee flexor strength: A systematic review and meta-analysis of intervention studies among team sport players. Journal of science and medicine in sport, 24:9, 931-938. https://doi.org/10.1016/j.jsams.2021.03.009
Bhosale, N., Yeole, U. and Chavarkar, M. 2020. Effect of plyometric training on jumping performance and agility in badminton players. Indian Journal of Public Health Research & Development, 11, 532-537.
Borghuis, J., Hof, A.L. and Lemmink, K.A. 2008. The importance of sensory-motor control in providing core stability: implications for measurement and training. Sports medicine (Auckland, N.Z.), 38:11, 893-916. https://doi.org/10.2165/00007256-200838110-00002
Bourne, M.N., Opar, D.A., Williams, M.D. and Shield, A.J. 2015. Eccentric knee flexor strength and risk of hamstring injuries in rugby union: A prospective study. The American Journal of Sports Medicine, 43:11, 2663-2670. https://doi. org/10.1177/0363546515599633
Brughelli, M., Cronin, J., Levin, G. and Chaouachi, A. 2008. Understanding change of direction ability in sport: a review of resistance training studies. Sports Medicine (Auckland, N.Z.), 38:12, 1045-1063. https://doi.org/10.2165/00007256200838120-00007
Cabello Manrique, D. and González-Badillo, J.J. 2003. Analysis of the characteristics of competitive badminton. British Journal of Sports Medicine, 37:1, 62-66. https://doi.org/10.1136/bjsm.37.1.62
Delahunt, E., McGroarty, M., De Vito, G. and Ditroilo, M. 2016. Nordic hamstring exercise training alters knee joint kinematics and hamstring activation patterns in young men. European Journal of Applied Physiology, 116:4, 663672. https://doi.org/10.1007/s00421-015-3325-3 Demirhan, F., Taştekin, N. and Süt, N. 2021. An evaluation of vertical jump height and isokinetic knee strength of active volleyball and basketball players. Sport Sciences, 16:1, 1-12.
Edouard, P., Mendiguchia, J., Lahti, J., Arnal, P.J., Gimenez, P., Jiménez-Reyes, P., Brughelli, M., Samozino, P. and Morin, J.B. 2018. Sprint acceleration mechanics in fatigue conditions: Compensatory role of gluteal muscles in horizontal force production and potential protection of hamstring muscles. Frontiers in Physiology, 9, 1706. https://doi.org/10.3389/fphys.2018.01706
Faude, O., Meyer, T., Rosenberger, F., Fries, M., Huber, G. and Kindermann, W. 2007. Physiological characteristics of badminton match play. European Journal of Applied Physiology, 100:4, 479-485. https://doi.org/10.1007/s00421007-0441-8
Fernandez-Fernandez, J., Loturco, I., Hernández-Davó, J.L., Nakamura, F.Y., García-Tormo, V., Álvarez-Dacal, F. and García-López, J. 2022. On-court change of direction test: An effective approach to assess COD performance in badminton players. Journal of Human Kinetics, 82, 155-164. https://doi.org/10.2478/hukin-2022-0042
Franchi, M.V., Reeves, N.D. and Narici, M.V. 2017. Skeletal muscle remodeling in response to eccentric vs. concentric loading: Morphological, molecular, and metabolic adaptations. Frontiers in Physiology, 8, 447. https://doi.org/10.3389/ fphys.2017.00447
Garrow, J.S. and Webster, J. 1985. Quetelet’s index (W/H2) as a measure of fatness. International journal of obesity, 9:2, 147153.
Hader, K., Palazzi, D.A. and Buchheit, M. 2015. Change of direction speed in soccer: How much braking is enough? Kinesiology, 47, 67-74.
Higashihara, A., Nagano, Y., Ono, T. and Fukubayashi, T. 2018. Differences in hamstring activation characteristics between the acceleration and maximum-speed phases of sprinting. Journal of Sports Sciences, 36:12, 1313-1318. https://doi.org/10.1080/02640414.2017.1375548
Horníková, H. and Zemková, E. 2021. Relationship between physical factors and change of direction speed in team sports. Applied Sciences, 11:2, 655. https://doi.org/10.3390/app11020655
Ishøi, L., Aagaard, P., Nielsen, M.F., Thornton, K.B., Krommes, K.K., Hölmich, P. and Thorborg, K. 2019. The influence of hamstring muscle peak torque and rate of torque development for sprinting performance in football players: A cross-sectional study. International Journal of Sports Physiology and Performance, 14:5, 665-673. https://doi.org/10.1123/ijspp.2018-0464
Ishøi, L., Hölmich, P., Aagaard, P., Thorborg, K., Bandholm, T. and Serner, A. 2018. Effects of the Nordic hamstring exercise on sprint capacity in male football players: a randomized controlled trial. Journal of Sports Sciences, 36:14, 1663-1672. https://doi.org/10.1080/02640414.2017.1409609
iVMES Spor Teknolojiler A.Ş. 2024. [cited 2024 June 26]. Available from: https://www.ivmes.com/tr/urunler/h-bord/
Jiang, D., Liu, Z., Ling, X., Dai, J., Long, L., Lu, Y. and Zhou, S. 2023. Investigating the impact of inter-limb asymmetry in hamstring strength on jump, sprint, and strength performance in young athletes: comparing the role of gross force. Frontiers in physiology, 14, 1185397. https://doi.org/10.3389/fphys.2023.1185397
Krommes, K., Petersen, J., Nielsen, M.B., Aagaard, P., Hölmich, P. and Thorborg, K. 2017. Sprint and jump performance in elite male soccer players following a 10-week Nordic hamstring exercise protocol: a randomised pilot study. BMC research notes, 10:1, 669. https://doi.org/10.1186/s13104-017-2986-x
Laffaye, G., Phomsoupha, M. and Dor, F. 2015. Changes in the game characteristics of a badminton match: A longitudinal study through the olympic game finals analysis in men’s singles. Journal of sports science & medicine, 14:3, 584-590.
Lee, J.J.J. and Loh, W.P. 2019. A state-of-the-art review on badminton lunge attributes. Computers in biology and medicine, 108, 213-222. https://doi.org/10.1016/j.compbiomed.2019.04.003
Markovic, G., Sarabon, N., Boban, F., Zoric, I., Jelcic, M., Sos, K. and Scappaticci, M. 2020. Nordic hamstring strength of highly trained youth football players and its relation to sprint performance. Journal of Strength and Conditioning research, 34:3, 800-807. https://doi.org/10.1519/JSC.0000000000002800
Medeiros, D.M., Marchiori, C. and Baroni, B.M. 2020. Effect of Nordic hamstring exercise training on knee flexors Eeccentric strength and fascicle length: A systematic review and meta-analysis. Journal of sport rehabilitation, 30:3, 482491. https://doi.org/10.1123/jsr.2019-0388
Mohamed Prince, M. 2019. Enhance reaction time for the masses and elite goalkeepers via smartphone and Blazepod. International Journal of Physiology, Nutrition and Physical Education, 2, 7-9.
Morin, J.B., Gimenez, P., Edouard, P., Arnal, P., Jiménez-Reyes, P., Samozino, P., Brughelli, M. and Mendiguchia, J. 2015. Sprint acceleration mechanics: The major role of hamstrings in horizontal force production. Frontiers in physiology, 6, 404. https://doi.org/10.3389/fphys.2015.00404
Paterson, S., Mcmaster, D.T. and Cronin, J.B. 2016. Assessing change of direction ability in badminton athletes. Strength and Conditioning Journal, 38, 18-30.
Pauole, K., Madole, K.D., Garhammer, J.J., Lacourse, M.G. and Rozenek, R. 2000. Reliability and validity of the T‐test as a measure of agility, leg power, and leg speed in college‐aged men and women. Journal of Strength and Conditioning Research, 14, 443-450.
Phomsoupha, M. and Laffaye, G. 2015. The science of badminton: game characteristics, anthropometry, physiology, visual fitness and biomechanics. Sports medicine (Auckland, N.Z.), 45:4, 473-495. https://doi.org/10.1007/s40279-014-0287-2
Sheppard, J.M. and Young, W.B. 2006. Agility literature review: classifications, training and testing. Journal of sports sciences, 24:9, 919-932. https://doi.org/10.1080/02640410500457109
Steff, N., Badau, D. and Badau, A. 2024. Improving agility and reactive agility in basketball players U14 and U16 by implementing fitlight technology in the sports training process. Applied Sciences. 14:9,3597. https://doi.org/10.3390/app14093597
Suarez-Arrones, L., Lara-Lopez, P., Rodriguez-Sanchez, P., Lazaro-Ramirez, J.L., Di Salvo, V., Guitart, M., Fuentes-Nieto, C., Rodas, G. and Mendez-Villanueva, A. 2019. Dissociation between changes in sprinting performance and Nordic hamstring strength in professional male football players. PloS one, 14:3, e0213375. https://doi.org/10.1371/journal.pone.0213375
van Dyk, N., Bahr, R., Burnett, A.F., Whiteley, R., Bakken, A., Mosler, A., Farooq, A. and Witvrouw, E. 2017. A comprehensive strength testing protocol offers no clinical value in predicting risk of hamstring injury: a prospective cohort study of 413 professional football players. British journal of sports medicine, 51:23, 1695-1702. https://doi.org/10.1136/ bjsports-2017-097754
Whyte, E., O’Connor, S., Tobin Jones, H., McBride, C., O’Flynn, A., Quinn, O. and Behan, F. 2024. The relationship between hamstring strength tests and sprint performance in female Gaelic footballers: A correlation and linear regression analysis. PloS one, 19:6, e0302901. https://doi.org/10.1371/journal.pone.0302901
Young, W.B., James, R. and Montgomery, I. 2002. Is muscle power related to running speed with changes of direction?. The Journal of sports medicine and physical fitness, 42:3, 282288.
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