Investigation of Positional Differences in Fitness of Male University Ice Hockey Players and the Frequency, Time Spent and Heart Rate of Movement Patterns during Competition
Abstract
Background: Men’s university ice hockey has received little scientific attention over the past 30 years, a time in which the traits of the players and the demands of the game have evolved. Objectives: This study compared the physiological characteristics of university ice hockey players and examined the frequency and duration of the different movement patterns and heart rate (HR) responses during competition. Methods: Twenty male ice hockey players from the same team ( age ± SD = 22±2 years) underwent a fitness evaluation and were filmed and HR monitored during regular season games. Results: Forwards and defense had similar fitness and only differed on % fatigue index and peak heart during on-ice sprinting (P<0.05). Defense stood, glided and skated backwards more than forwards and forwards skated at a moderate intensity and glided forward more than defense (P<0.05). All players spent the majority of game time gliding forward (60% of the time) followed by skating forward at a moderate intensity (17%) and standing with little movement (9%). Average HR during the game reached 96 and 92 % and peak HR was 100 and 96 % of maximum in forwards and defense, respectively. Conclusions: Male university hockey players present with a high level of physical fitness in a variety of categories with few differences between forwards and defense. Movement patterns during games suggest that players are performing low to moderate intensity on-ice activities the majority of the time. Paradoxically, HR continues to climb to near maximum during on ice shifts.
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Atwal, S., Porter, J., & MacDonald, P. (2002). Cardiovascular effects of strenuous exercise in adult recreational hockey: the hockey heart study. Canadian Medical Association Journal, 166(3), 303-307.
Barris, S. & Button, C. (2008). A review of vision-based motion analysis in sport. Sports Medicine, 38(12), 1025-1043. http://dx.doi:10.2165/00007256-200838120-00006.
Beaver, W. L., Wasserman, K., & Whipp, B. J. (1986). A new method for detecting anaerobic threshold by gas exchange. Journal of Applied Physiology, 60, 2020-2027.
Bell, G., Snydmiller, G., & Game, A. (2008). An investigation of the type and frequency of movement patterns of national hockey league goaltenders. International Journal of Sports and Performance, 3, 80-87. http://dx.doi:org/10.1123/ijspp.3.1.80.
Bracko, M.R. (2001). On-ice performance characteristics of elite and non-elite woman’s ice hockey players. Journal of Strength and Conditioning Research, 15(1), 42-47.
Bracko, M. R., Fellingham, G. W., Hall, L. T., Fisher, A. G., & Cryer, W. (1998). Performance skating characteristics of professional ice hockey forwards. Sports Medicine, Training and Rehabilitation, 8(3), 251-263. http://dx.doi.org/10.1080/15438629809512531.
Buchheit, M., Laursen, P. B., & Ahmaidi, S. (2007). Parasympathetic reactivation after repeated sprint exercise. American Journal of Physiology – Heart and Circulatory Physiology, 293, H133-H141. http://dx.doi:10.1152ajpheart.00062.2007.
Burr, J., Jamnik, V., Baker, J., MacPherson, A., Gledhill, N., & McGuire, E. (2008). Relationship of physical fitness test results and hockey playing potential in elite-level ice hockey players. Journal of Strength and Conditioning Research, 22(5), 1535-1543. http://dx.doi:10.1519/jsc.0b013e318181ac20.
Canadian Society for Exercise Physiology (2013). CSEP-PATH Physical Activity Training for Health. Ottawa: Canadian Society for Exercise Physiology.
Cox, M. H., Miles, D. S., Verde, T. J., & Rhodes, E. C. (1995). Applied physiology of ice hockey. Sports Medicine, 19(3), 184-201. http://dx.doi: 10.2165/00007256-199519030-00004.
Dobson, B. P. & Keogh, J. W. L. (2007). Methodological issues for the application of time-motion analysis research. Strength and Conditioning Journal, 29(2), 48-55.
Falinger, C. M., Kruisselbrink, L.D., & Fowles, J. R. (2007). Relationships to skating performance in competitive hockey players. Strength and Conditioning Journal, 21(3), 915-922.
Fernandez-Fernandez, J., Boullosa, D.A., Sanz-Rivas, D., Abreu, L., Filaire, E., & Mendez-Villanueva, A. (2014). Psychophysiological stress response during training and competition young female competitive tennis players. International Journal of Sports Medicine, 36(1), 22-28. http://dx.doi: 10.1055/s0034-1384544.
Forbes, S. C., Kennedy, M. D., & Bell, G. J. (2013). Time-motion analysis, heart rate, and physiological characteristics of international canoe polo athletes. Journal of Strength and Conditioning Research, 27(10), 2816-2822.
Game, A., Voaklander, D., Syrotuik, D., & Bell, G. (2003). Incidence of exercise-induced bronchospasm and exercise induced hypoxaemia in female varsity hockey players. Research in Sports Medicine, 11: 11-21. http://dx.doi: 10.1080/15438620390192971.
Geithner, C. A., Lee, A. M., & Bracko, M. R. (2006). Physical and performance differences among forwards, defensemen, and goalies in elite women’s ice hockey. Journal of Strength and Conditioning Research, 20(3), 500-505.
Gilenstam, K. M., Thorsen, K., & Henriksson-Larsen. (2011). Physiological correlates of skating performance in women’s and men’s ice hockey. Journal of Strength and Conditioning Research, 25(8), 2133-2142.
Gledhill, N. & Jamnik, V. (2007). Detailed assessment protocols for NHL entry draft players. Toronto: York University.
Green, H., Bishop, P., Houston, M., McKillop, R., Norman, R., & Stothart, P. (1976). Time-motion and physiological assessments of ice hockey performance. Journal of Applied Physiology, 40(2), 159-163.
Jackson, J., Snydmiller, G., Game, A., Gervais, P., & Bell, G. (2016). Movement characteristics and heart rate profiles displayed by female university ice hockey players. International Journal of Kinesiology & Sport Science, 4(1), 43-54. http://dx.doi:10.7575/aiac.ijkss.v.4n.1p.43.
Lafontaine, D., Lamontagne, M., & Lockwood, K. (1998). Time-motion analysis of ice-hockey skills during games. International Symposium on Biomechanics in Sport, 16, 481-484.
Lee, C. L., Lin, J. C., & Cheng, C. F. (2011). Effect of caffeine ingestion after creatine supplementation on intermittent high-intensity sprint performance. European Journal of Applied Physiology, 111, 1669-1677. http://dx.doi: 10.1070/s00421-010-1792-0.
Little, T., & Williams, A. (2007). Effects of sprint duration and exercise: rest ratio on repeated sprint performance and physiological responses in professional soccer players. Journal of Strength and Conditioning Research, 21(2), 646-648.
Meckel, Y., Casorla, T. & Eliakim, A. (2009). The influence of basketball dribbling on repeated sprints. International Journal of Coaching Science, 3(2), 43-56.
Montgomery, D. L. (1988). Physiology of ice hockey. Sports Medicine, 5, 99-126. http://dx.doi: 10.2165/00007256-198805020-00003.
Montgomery, D. L. (2006). Physiological profile of professional hockey players – a longitudinal comparison. Applied Physiology, Nutrition and Metabolism, 31(3), 181-185. http://dx.doi:10.1139/H06-012.
Peterson, B. J., Fitzgerald, J. S. Dietz, C. C., Ziegler, K. S., Ingraham, S. J., Baker, S. E., & Snyder, E. M. (2015). Aerobic capacity is associated with improved repeated shift performance in hockey. Journal of Strength and Conditioning Research, 29(6), 1465-1472.
Peyer, K. L., Pivarnik, J. M., Eisenmann, J. C., & Vorkapich, M. (2011). Journal of Strength and Conditioning Research, 25(5), 1183-1192.
Quinney, H. A., Smith, D., & Wenger, H. A. (1984). A field test for the assessment of abdominal muscular endurance in professional ice hockey players. Journal of Orthopeadic and Sports Physical Therapy, 6, 30-33. http://dx.doi: 10.2519/jospt.1984.6.1.30.
Quinney, H. A., Dewart, R., Game, A., Snydmiller, G., Warburton, D., & Bell, G. (2008). A 26 year physiological description of a National Hockey League team. Applied Physiology, Nutrition and Metabolism, 33(4), 753-760. http://dx.doi:10.1139/H08-051.
Ransdell, L. B. & Murray, T. (2011). A physical profile of elite female ice hockey players from the USA. Journal of Strength and Conditioning Research, 25(9), 2358-2363.
Sayers, S. P, Harackiewicz, D. V, Harman, E. A., Frykman, P. N, & Rosenstein, M. T. (1999). Cross-validation of three jump power equations. Medicine and Science in Sport and Exercise, 31(4): 572-577. http://dx.doi: 10.1097/00005768-199904000-00013.
Seliger, V., Kostka, V., Grusova, D., Kovac, J., Machovcova, J., Pauer, M., & Urbankova, R. (1972). Energy expenditure and physical fitness of ice-hockey players. European Journal of Applied Physiology, 30(4), 283-291. http://dx.doi: 10.1007/BF00696119.
Spiering, B. A., Wilson, M. H., Judelson, D. A., & Rundell, K. W. (2003). Evaluation of cardiovascular demands of game play and practice in Women’s Ice Hockey. Journal of Strength and Conditioning Research, 17(2), 329-333.
Stanula, A. & Roczniok, R. (2014). Game intensity analysis of elite adolescent ice hockey players. Journal of Human Kinetics, 44, 211-221. http://dx.doi: 10.2478/hukin-2014-0126.
Taylor, J. Basketball: Applying time motion data to conditioning. (2003). Strength and Conditioning Journal, 25(2), 57-64.
Thoden, J. S. & Jette, M. (1975). Aerobic and anaerobic activity patterns in junior and professional hockey. Movement (Special Hockey), 2, 145-153.
Vescovi, J. D., Murray, T. M., Fiala, K.A., & Vanheest, J. L. (2006). Off-ice performance and draft status of elite ice hockey players. International Journal of Sports, Physiology and Performance, 1, 207-221. http://dx.doi: org/10.1123/ijspp.1.3.207.
Wilson, K., Snydmiller, G., Game, A., Quinney, H. A., & Bell, G. (2010). The development and reliability of a repeated anaerobic cycling test in female ice hockey players. Journal of Strength and Conditioning Research, 24(2), 580-584.
Yuhasz, M. (1996). Physical fitness and sports appraisal laboratory manual. London: The University of Western Ontario.
DOI: https://doi.org/10.7575/aiac.ijkss.v.5n.3p.6
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