Ice hockey skate starts: a comparison of high and low calibre skaters
Tóm tắt
Từ khóa
Tài liệu tham khảo
Hamel J (2011) What is the maximum speed ice hockey players reach? https://www.quora.com/What-is-the-maximum-speed-ice-hockey-players-reach . Accessed 3 Mar 2016
NHL (2015) NHL Skills Competition All-Time Results, 1990–2012. http://www.nhl.com/ice/page.htm?id=67157 . Accessed 3 Mar 2016
Marino G (1995) Biomechanics of power skating: past research, future trends. In: Proceedings of the XIII international symposium for biomechanics in sport, International Society for Biomechanics in Sport. Lakehead University, Thunder Bay, ON, pp 246–252
Lafontaine D (2007) Three-dimensional kinematics of the knee and ankle joints for three consecutive push-offs during ice hockey skating starts. Sports Biomech 6(3):391–406. doi: 10.1080/14763140701491427
McPherson MN, Wrigley A, Montelpare WJ, Pearsall D, Ashare A (2004) The biomechanical characteristics of development-age hockey players: determining the effects of body size on the assessment of skating technique. In: Safety in ice hockey, pp 272–287
Shackel B (2008) A biomechanical comparison of starting technique in speed skating and hockey. M.Sc. thesis, University of Manitoba
Buckeridge E, LeVangie MC, Stetter B, Nigg SR, Nigg BM (2015) An on-ice measurement approach to analyse the biomechanics of ice hockey skating. PLoS One 10(5):e0127324. doi: 10.1371/journal.pone.0127324
Dewan C, Pearsall D, Turcotte R (2004) Ankle kinematics during forward hockey skating: acceleration to constant velocity. In: International Society for the Biomechanics of Sport, pp 387–390
Zuiker T (2014) The effects of different speed skating push-off techniques on the mechanical power, power distribution and energy expenditure. Dissertation, Delft University of Technology
Upjohn T, Turcotte R, Pearsall DJ, Loh J (2008) Three-dimensional kinematics of the lower limbs during forward ice hockey skating. Sports Biomech 7(2):206–221. doi: 10.1080/14763140701841621
Stidwill TJ, Pearsall D, Turcotte R (2010) Comparison of skating kinetics and kinematics on ice and on a synthetic surface. Sports Biomech 9(1):57–64
Stull JD, Philippon MJ, LaPrade RF (2011) “At-risk” positioning and hip biomechanics of the Peewee ice hockey sprint start. Am J Sports Med 39(Suppl):29S–35S. doi: 10.1177/0363546511414012
de Koning J, Thomas R, Berger M, de Groot G, van Ingen Schenau G (1995) The start in speed skating: from running to gliding. Med Sci Sports Exerc 27(12):1703–1708
Chang R, Turcotte R, Pearsall D (2009) Hip adductor muscle function in forward skating. Sports Biomech 8(3):212–222. doi: 10.1080/14763140903229534
Oxford Metrics Ltd (1999) Plug-in Gait. Oxford Metrics Ltd, Oxford
Ernst M, Götze M, Müller R, Blickhan R (2014) Vertical adaptation of the center of mass in human running on uneven ground. Hum Mov Sci 38:293–304. doi: 10.1016/j.humov.2014.05.012
Myklebust H, Gloersen O, Hallen J (2015) Validity of ski skating center of mass displacement measured by a single inertial measurement unit. J Appl Biomech. doi: 10.1123/jab.2015-0081
Baker R, Finney L, Orr J (1999) A new approach to determine the hip rotation profile from clinical gait analysis data. Hum Mov Sci 18(5):655–667. doi: 10.1016/S0167-9457(99)00027-5
Robertson DGE, Dowling JJ (2003) Design and responses of Butterworth and critically damped digital filters. J Electromyogr Kinesiol 13(6):569–573. doi: 10.1016/S1050-6411(03)00080-4
Dixon PC, Tisseyre M, Damavandi M, Pearsall DJ (2011) Inter-segment foot kinematics during cross-slope running. Gait Posture 33(4):640–644. doi: 10.1016/j.gaitpost.2011.02.010
Zeni JA Jr, Richards JG, Higginson JS (2008) Two simple methods for determining gait events during treadmill and overground walking using kinematic data. Gait Posture 27(4):710–714. doi: 10.1016/j.gaitpost.2007.07.007
Hreljac A, Marshall RN (2000) Algorithms to determine event timing during normal walking using kinematic data. J Biomech 33(6):783–786
Dixon PC, Loh JJ, Michaud-Paquette Y, Pearsall DJ (2016) biomechZoo: an open-source toolbox for the processing, analysis, and visualization of biomechanical movement data. Comput Methods Progr Biomed. doi: 10.1016/j.cmpb.2016.11.007
Armstrong RA (2014) When to use the Bonferroni correction. Ophthalmic Physiol Opt 34(5):502–508. doi: 10.1111/opo.12131
Grieve AP (1984) Tests of sphericity of normal distributions and the analysis of repeated measures designs. Psychometrika 49(2):257–267. doi: 10.1007/bf02294176
Saibene F, Minetti AE (2003) Biomechanical and physiological aspects of legged locomotion in humans. Eur J Appl Physiol 88(4–5):297–316
Nagahara R, Matsubayashi T, Matsuo A, Zushi K (2014) Kinematics of transition during human accelerated sprinting. Biol Open 3(8):689–699. doi: 10.1242/bio.20148284
Marino G (1983) Selected mechanical factors associated with acceleration in ice skating. Res Q Exerc Sport 54(3):234–238
Owings TM, Grabiner MD (2004) Step width variability, but not step length variability or step time variability, discriminates gait of healthy young and older adults during treadmill locomotion. J Biomech 37(6):935–938. doi: 10.1016/j.jbiomech.2003.11.012
Arellano CJ, Kram R (2011) The effects of step width and arm swing on energetic cost and lateral balance during running. J Biomech 44(7):1291–1295. doi: 10.1016/j.jbiomech.2011.01.002
Pearsall D, Turcotte R, Lefebvre R, Bateni H, Nicolaou M, Montgomery D, Chang R (2001) Kinematics of the foot and ankle in forward ice hockey skating. In: ISBS-conference Proceedings archive, vol 1
Stidwill T, Turcotte R, Dixon P, Pearsall D (2009) Force transducer system for measurement of ice hockey skating force. Sports Eng 12(2):63–68. doi: 10.1007/s12283-009-0033-4