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http://dx.doi.org/10.5103/KJSB.2016.26.1.39

Kinematic Comparisons of Kettlebell Two-Arm Swings by Skill Level  

Back, Chang-Yei (Department of Physical Education, Graduate School, Chonnam National University)
Joo, Ji-Yong (Department of Physical Education, Graduate School, Chonnam National University)
Kim, Young-Kwan (Department of Physical Education, College of Education, Chonnam National University)
Publication Information
Korean Journal of Applied Biomechanics / v.26, no.1, 2016 , pp. 39-50 More about this Journal
Abstract
Objective: The purposes of this study were to compare the kinematics of a two-arm kettlebell swing between experts and beginners and to identify the correct postures and biomechanical key points in an attempt to prevent sports injuries induced by a kettlebell swing. Methods: Four experts (height, $169.7{\pm}1.5cm$; weight, $70.5{\pm}1.8kg$; age, $32.0{\pm}1.0years$) licensed to teach kettlebell exercises and three beginners (height, $173.7{\pm}4.1cm$; weight, $78.3{\pm}3.8kg$; age, $30.0{\pm}1.4years$) with no kettlebell exercise experience participated in this study. Each participant performed 15 repetitions of a two-arm kettlebell swing using a 16-kg weight. Joint angles, angular velocities, and peak angular velocity sequences were calculated and compared between the two groups. Results: Large ranges of motion (ROM) of the pelvic angle and hip joints were detected in the experts, while beginners showed greater ROM of the shoulder joint. Peak angular velocity magnitudes and sequences were significantly different between the two groups. Experts lifted the kettlebell upward using the hip joints, pelvis, and shoulder joints (proximal to distal order) sequentially and lowered it using the reverse order of peak angular velocities from the shoulder to hip joints. Conclusion: Mobility of the pelvic segment and hip joint are required, while stability of the other joints is needed to produce appropriate two-arm kettlebell swings. The activation and coordination of the gluteal and hamstring muscles are key points in kettlebell exercises.
Keywords
Two-arm kettlebell swing; Kinematics; Multi-joint coordination; Pelvis; Hip;
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Times Cited By KSCI : 3  (Citation Analysis)
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1 Cho, W. R. (2015). Comparison of core muscle activation during three hip drive motion exercise. Unpublished master thesis. Korea National Sport University. Seoul, Korea.
2 Cook, G. (2012). Movement: Functional movement systems, Washington, D.C.: On Target Publications.
3 Health chosun (2015). Health chosun press release. (http://health.chosun.com/site/data/html_dir/2015/06 /19/2015061900834.html.).
4 Jay, K., Frisch, D., Hansen, K., Zebis, M. K., Andersen, C. H., Mortensen, O. S. & Andersen, L. L. (2011). Kettlebell training for musculoskeletal and cardiovascular health: A randomized controlled trial. Environ & Health, 37(3), 196-203.
5 Jung, G., Kang, S. & Choi, H. (2010). Kettlebell quick result. Seoul: Wisdom House.
6 Kim, Y. K. (2014). The Effect of Different Warm-up Procedures on Bat Speed in Baseball. Korean Journal of Sport Biomechanics. 23(2), 91-97.   DOI
7 Kim, Y. W., Yoon, T. J. & Seo, J. S. (2005). Effects of preparatory movements on performance of sideward responsive propulsion movement. Korean Journal of Sport Biomechanics. 15(3), 9-19.   DOI
8 Lake, J. P. & Lauder, M. A. (2012a). Mechanical demands of kettlebell swing exercise. Journal of Strength & Conditioning Research, 26(12), 3209-3216.   DOI
9 Lake, J. P. & Lauder, M. A. (2012b). Kettlebell swing training improves maximal and explosive strength. Journal of Strength & Conditioning Research, 26(8), 2228-2233.   DOI
10 Matthews, M. & Cohen, D. (2013). The Modified Kettlebell Swing. Strength & Conditioning Journal, 35(1), 79-81.   DOI
11 McGill, S. M. & Marshall, L. W. (2012). Kettlebell swing, snatch, and bottoms-up carry: Back and hipmuscle activation, motion, and low backloads. Journal of Strength & Conditioning Research, 26(1), 16-27.   DOI
12 Micheal, A. C., Scott, C. L. & Brian, G. S. (2010). NASM essentials of corrective exercise training. New York, N.Y.: Jones & Bartlett Learning.
13 Mullineauz, D. R., Bartlett, R. M. & Bennett, S. (2001). Research design and statistics in biomechanical and motor control. Journal of Sports Science, 19, 739-760.   DOI
14 Randell, A. D., Cronin, J. B., Keogh, J. W. & Gill, N. D. (2010). Transference of strength and power adaptation to sports performance-horizontal and vertical force production. Strength & Conditioning Journal, 32(4), 100-106.   DOI
15 Schnettler, C., Porcari, J., Foste, C. & Anders, M. (2010). Kettlebells: Twice the results in half the time. ACE Fitness Matters, 16, 6-10.
16 Tsatsouline, P. (2006). Enter the kettlebell. Washington, D.C.: Dragon door publications.
17 Yoon, C. J. & Chae, W. S. (2008). The process of the kinematics coordination and control of Dollyochagi motion Taekwondo. Korean Journal of Sport Biomechanics. 18(2), 95-104.   DOI
18 Zebis, M., K., Skotte, J., Andersen, C. H., Mortensen, P., Petersen, H. H., Viskær, T. C., Jensen, T. L., Bencke, J. & Andersen, L. L. (2013). Kettlebell swing targets semitendinosus and supine leg curl targets biceps femoris: An EMG study with rehabilitation implications. British Association of Sport and Medicine, 47(18), 1192-1198.   DOI