A biomechanical examination of the differences between active flexibility and mobility in artistic gymnastics. Differences between active flexibility and mobility

Autores/as

  • Milaim Berisha Universidad Gelisim de Estambul
  • Gökçe Oktay Universidad Gelisim de Estambul

Palabras clave:

Biomechanics, Artistic gymnastics, Range of motion, Mobility, Active flexibility, Functional flexibility

Resumen

Purpose: the study's aim is to make a biomechanical examination of the inclusion of active flexibility in artistic gymnastic movements requiring mobility (actively moving through a range of motion), flexibility and other motor abilities such as force, power, etc. Methods: the study included 20 girl gymnasts aged 7-9 years old, with a body height of 140.7±10.2, weight of 34.1±6.4, and body mass index of 17.6±3.0. Data collection in the study was made by using a performance test developed by the World Gymnastics Federation, including the Forward-Backward Split, Side Spit, Arm-Trunk Angle Backward, Leg Raise forward, Leg Raise Sideward, Angle Degree of the Leg Split Position in Cartwheel, and Arm-Upper Body Angle Backward in Bridge Technique. In the data analysis of the variables in the study, the Kinovea 0.8.15 and SPSS 24 software programs were used. Results: the results of the study showed statistically significant differences between active flexibility and mobility (p<0.05). While the range of motion was found to be high during the application of techniques requiring active flexibility, it was observed that the range of motion was lower in techniques requiring mobility. Conclusion: having good flexibility does not necessarily mean that an athlete will have good mobility. Being aware of the differences between active flexibility and mobility is crucial to clarify functional flexibility, which positively affects solving confusion in training programs that aim to improve the flexibility and mobility performance of gymnasts.

|Resumen
= 504 veces | PDF
= 303 veces| | HTML (ENGLISH)
= 59 veces|

Descargas

Los datos de descargas todavía no están disponibles.

Citas

Ayala, F., & de Baranda, P. S. (2010). Effect of 3 different active stretch durations on hip flexion range of motion. The Journal of Strength & Conditioning Research, 24(2), 430- 436. https://doi.org/10.1519/jsc.0b013e3181c0674f

Barnes, C. J., Van Steyn, S. J., & Fischer, R. A. (2001). The effects of age, sex, and shoulder dominance on range of motion of the shoulder. Journal of Shoulder and Elbow Surgery, 10(3), 242-246. https://doi.org/10.1067/mse.2001.115270

Berisha, M., & Mosier, W. (2020). The psychology of motor learning in artistic gymnastics. In G. Özen G. & M. Dindar (Eds.), Multidisciplinary research in sports sciences II (Chapter 31, pp.505-529). İstanbul: Efe Akademi Publisher. Council of Europe (2021). Enlarged Partial Agreement on Sport (EPAS). https://www.coe.int/en/web/sport/epas/

Council of Europe Committee of Ministers. Recommendation No. R (87) 9 of the Committee of Ministers to Member States on the Eurofit Tests of Physical Fitness. https://rm.coe.int/native/09000016804f9d3d

Davis, D. S., Ashby, P. E., McCale, K. L., McQuain, J. A., & Wine, J. M. (2005). The effectiveness of 3 stretching techniques on hamstring flexibility using consistent stretching parameters. The journal of Strength and Conditioning Research, 19, 27-32.

https://doi.org/10.1519/14273.1

Fink, H., Hofmann, D., López, L. O. (2015). Age group development and competition program for women’s artistic gymnastics. Switzerland: Fédération Internationale De Gymnastique. www.fig-gymnastics.com

Fink, H., Hofmann, D., (2015). Age group development and competition program for men’s artistic gymnastics. Switzerland: Fédération Internationale De Gymnastique. www.fig-gymnastics.com

Haser, C., Stöggl, T., Kriner, M., Mikoleit, J., Wolfahrt, B., Scherr, J., & Pfab, F. (2017). Effect of dry needling on thigh muscle strength and hip flexion in elite soccer players. Medicine and Science in Sports and Exercise, 49(2), 378-383.

http://ghislainerobert.com/wp-content/uploads/2017/02/Dry-Needling.pdf

Holt, J., Holt, L. E. & Pelham, T. W. (1995). Flexibility redefined. In ISBS - Conference Proceedings Archive (pp.170-174). International Society of Biomechanics in Sport. https://ojs.ub.uni-konstanz.de/cpa/article/view/2972/2818

Hrysomallis, C. (2009). Hip adductors' strength, flexibility, and injury risk. The Journal of Strength & Conditioning Research, 23(5), 1514-1517. https://doi.org/10.1519/JSC.0b013e3181a3c6c4

Irwin, G., Hanton, S., & Kerwin, D. G. (2005). The conceptual process of skill progression development in artistic gymnastics. Journal of Sports Sciences, 23(10), 1089-1099. https://doi.org/10.1080/02640410500130763

Kinovea 0.8.15 2006-2011 (2021). https://www.kinovea.org/

Koçak, Ö. (2019). The effect of artistic gymnastics training on some physical fitness parameters of girls 7-9 years old (Unpublished Master Thesis). Çanakkale Onsekiz Mart University/ Institute of Health Sciences, Çanakkale.

Meister, K., Day, T., Horodyski, M., Kaminski, T. W., Wasik, M. P., & Tillman, S. (2005). Rotational motion changes in the glenohumeral joint of the adolescent/Little Leaguebaseball player. The American Journal of Sports Medicine, 33(5), 693-698. https://doi.org/10.1177/0363546504269936

Moreside, J. M., & McGill, S. M. (2012). Hip joint range of motion improvements using three different interventions. The Journal of Strength & Conditioning Research, 26(5), 1265-1273. https://doi.org/10.1519/JSC.0b013e31824f2351

Moreside, J. M., & McGill, S. M. (2013). Improvements in hip flexibility do not transfer to mobility in functional movement patterns. The Journal of Strength & Conditioning Research, 27(10), 2635-2643.

https://doi.org/10.1519/JSC.0b013e318295d521

Oliver, G. D., Downs, J. L., Barbosa, G. M., & Camargo, P. R. (2020). Descriptive profile of shoulder range of motion and strength in youth athletes participating in overhead sports. International Journal of Sports Physical Therapy, 15(6), 1090.

https://doi.org/10.26603/ijspt20201090

Prassas, S., Kwon, Y. H., & Sands, W. A. (2006). Biomechanical research in artistic gymnastics: a review. Sports Biomechanics, 5(2), 261-291. https://doi.org/10.1080/14763140608522878

Süzen, L. (2013). Hareket sistemi anatomisi ve kinesiyoloji [Anatomy of the Motion system and Kinesiology]. Istanbul: Nobel Tıp Kitabevleri.

Yiğitbaş, A.H. (2020). Investigation of the effect of recreational ballet and gymnastics training on balance, flexibility and joint mobility in children between 6-8 years (Unpublished Master Thesis). Hasan Kalyancu University, Institute of Health Sciences, Gaziantep.

Publicado

2021-06-03

Cómo citar

Berisha, M., & Oktay, G. (2021). A biomechanical examination of the differences between active flexibility and mobility in artistic gymnastics. Differences between active flexibility and mobility . VIREF Revista De Educación Física, 10(2), 145–155. Recuperado a partir de https://revistas.udea.edu.co/index.php/viref/article/view/345797

Número

Sección

Informe de investigación