DOI QR코드

DOI QR Code

등속성 무릎 굴곡과 신전 시 외측 및 양측운동의 역학적 특성

Mechanical Properties of Unilateral & Bilateral Movement in Isokinetic Knee Extension and Flexion

  • 발행 : 2008.09.30

초록

본 연구는 외측운동과 비교하여 양측운동의 운동형태와 속도에 따른 역학적 특성을 규명하는데 그 목적이 있다. 이를 위해 13명의 20-30대 남성을 대상으로 좌우 외발과 양발의 등속성 무릎 굴곡과 신전을 3가지 속도(120, 240, $450^{\circ}$/s)에서 실시하였다. 분석 결과, 3가지 속도의 무릎의 굴곡과 신전에서 대체적으로 외측운동의 합보다 양측운동에서의 역학적 출력(토크와 파워)이 감소하는 양측운동손실이 나타났다. 그러나 $450^{\circ}$/s의 신전에서는 양측운동에서 오히려 토크의 증가하는 양측운동강화가 나타났다. 특히 동일 근육에서 발생하는 각 개인의 양측운동지수는 운동속도가 변하더라도 일정 부분 유의한 상관을 보였다(120신전-240신전, 120굴곡-240굴곡, 240굴곡-450굴곡). 반면 굴곡과 신전과 같이 주동근이 다른 운동에서 집단 전체의 양측운동지수는 속도에 따라 유사한 패턴의 경향을 보였으나 각 개인의 양측운동지수는 유의한 상관이 나타나지 않았다. 이를 통해 각 개인의 근신경적 특성이 양측운동의 결과를 좌우하는 주요한 요인이 될 수 있음을 추측할 수 있다.

Y. W. KIM, Y. J. KIM, Mechanical Properties of Unilateral & Bilateral Movements in Isokinetic Knee Extension and Flexion. Korean Journal of Sport Biomechanics, Vol. 18, No. 3, pp. 83-92, 2008. The purpose of this study was to examine the mechanical properties and patterns of bilateral and unilateral movement under varying velocities and movement patterns. The unilateral and bilateral isokinetic knee extension and flexion were taken for three speeds of 13 healthy male subjects. Although there was bilateral facilitation at the speed of $450^{\circ}$/s for the bilateral movement of knee extension, as a whole there was less resultant torque and power of bilateral movement than summed unilateral under knee flexion and extension of 3 velocity condition. There was significant correlations between bilateral deficits within individuals observed for an the same movement($120^{\circ}-240^{\circ}$ flexion, $120-240^{\circ}$ extension, $240^{\circ}-450^{\circ}$ extension), which means that same agonist was recruited. On the contrary, although there was a tendency of a similar pattern of the individuals bilateral deficit according to the varying velocities, there was not a significant correlations between bilateral deficits of flexion and extension within individual, which means that different agonist was recruited. With the analyses of this results the individuals neuromuscular characteristics and the effecting factors for bilateral movement can be speculated upon.

키워드

참고문헌

  1. 김용운(2008). 하지의 비대칭성이 수직점프의 수행력에 미치는 영향. 한국운동역학회지, 18(1), 179-190. https://doi.org/10.5103/KJSB.2008.18.1.179
  2. Brown, L. E., Whitehurst, M., Gilbert, R., & Findley, B. W.(1994). Effect of Velocity on the Bilateral Deficit During Dynamic Knee Extension and Flexion Exercise in Females. Isokinetics And Exercise Science, 4(4), 153-156
  3. Challis, J. H.(1998). An investigation of the influence of bi-lateral deficit on human jumping. Human Movement Science, 17(3), 307-325. https://doi.org/10.1016/S0167-9457(98)00002-5
  4. Cresswell, A. G., & A. H. Ovendal(2002). Muscle activation and torque development during maximal unilateral and bilateral isokinetic knee extensions. Journal of Sports Medicine and Physical Fitness, 42(1), 19-25.
  5. Daniel, G. D., Kristin, J. S., Clifford, W. M., & Julia, C. G.(2006). The effects of isokinetic contraction velocity on concentric and eccentric strength of the biceps brachii. Journal of Strength and Conditioning Research, 20(2), 390-395 https://doi.org/10.1519/R-16154.1
  6. Enoka, R. M.(1988). Muscle strength and its development. New perspectives. Sports Medicine, 6(3), 146-168. https://doi.org/10.2165/00007256-198806030-00003
  7. Hay, D., V. A. de Souza, V. A., & Fukashiro, S.(2006). Human bilateral deficit during a dynamic multi-joint leg press movement. Human Movement Science, 25(2), 181-191. https://doi.org/10.1016/j.humov.2005.11.007
  8. Howard, J. D., & Enoka, R. M.(1991). Maximum bilateral contractions are modified by neurally mediated interlimb effects. Journal of Applied Physiology, 70(1), 306-316.
  9. Iossifidou, A. N., & Baltzopoulos, V.(2000). Peak power assessment in isokinetic dynamometry. European Journal of Applied Physiology, 82(1), 158-160. https://doi.org/10.1007/s004210050667
  10. Jakobi, J. M., & Chilibeck, P. D.(2001). Bilateral and unilateral contractions: possible differences in maximal voluntary force. Canadian Journal of Applied Physiology, 26(1), 12-33. https://doi.org/10.1139/h01-002
  11. Jakobi, J. M., & E. Cafarelli(1998). Neuromuscular drive and force production are not altered during bilateral contractions. Journal of Applied Physiology, 84(1), 200-206.
  12. Kawakami, Y., Sale, D. G., MacDougall, J. D., & Moroz, J. S.(1998). Bilateral deficit in plantar flexion: relation to knee joint position, muscle activation, and reflex excitability. European Journal of Applied Physiology & Occupational Physiology, 77(3), 212-216. https://doi.org/10.1007/s004210050324
  13. Koh, T. J., Grabiner, M. D., & Clough, C. A.(1993). Bilateral deficit is larger for step than for ramp isometric contractions. Journal of Applied Physiology, 74, 1200-1205.
  14. Komi, P. V.(1992) Strength and power in sport. International Federation of Sports Medicine. IOC Medical Commission.
  15. Kuruganti, U., & K. Seaman(2006). The bilateral leg strength deficit is present in old, young and adolescent females during isokinetic knee extension and flexion. European Journal of Applied Physiology, 97(3), 322-326. https://doi.org/10.1007/s00421-006-0188-7
  16. McLean, S. P., Vint, P. F., & Stember, A. J.(2006). Submaximal expression of the bilateral deficit. Research Quarterly for Exercise and Sport, 77(3), 340-350. https://doi.org/10.1080/02701367.2006.10599368
  17. Mcquade, K., Harris-Love, M. L., & Whitall, J.(2008). Maximal voluntary isometric elbow flexion force during unilateral versus bilateral contractions in individuals with chronic stroke. Journal of Applied Biomechanics, 24, 69-74.
  18. Ohtsuki, T.(1983). Decrease in human voluntary isometric arm strength induced by simultaneous bilateral exertion. Behavioural Brain Research, 7(2), 165-178. https://doi.org/10.1016/0166-4328(83)90190-0
  19. Osternig, L. R., Hamill, J., Sawhill, J. A., & Bates, B. T.(1983). Influence of torque and limb speed on power production in isokinetic exercise. American Journal of Physical Medicine, 62(4), 163-171.
  20. Osternig, L. R.(2000). Assessing human performance. In Isokinetics in Human Performance, ed. by Brown, L. E. Champaigh, IL: Human Kinetics.
  21. Owings, T. M., & Grabiner, M. D.(1998). Fatigue effects on the bilateral deficit are speed dependent. Medicine and Science in Sports and Exercise, 30(8), 1257-1262. https://doi.org/10.1097/00005768-199808000-00012
  22. Perrine, J. J., & Edgerton, V. R.(1978). Muscle force-velocity relationships under isokinetic loading. Medicine and Science in Sports, 10(3), 159-166.
  23. Thorstensson, A., Grimby, G., & Karlsson, J.(1976). Force-velocity relations and fiber composition in human knee extensor muscles. Journal of Applied Physiology, 40(1), 12-16.
  24. van Soest, A. J., Roebroeck, M. E, Bobbert, M. F., Huijing, P. A., & van Ingen Schenau G. J.(1985). A comparison of one-legged and two-legged countermovement jumps. Medicine and Science in Sports and Exercise, 17(6), 635-639. https://doi.org/10.1249/00005768-198512000-00002
  25. Vandervoort, A. A., Sale, D. G., & Moroz, J.(1984). Comparison of motor unit activation during unilateral and bilateral leg extension. Journal of Applied Physiology: Respiratory, Environmental & Exercise Physiology, 56(1), 46-51.
  26. Vandervoort, A. A., Sale, D. G., & Moroz, J.(1987). Strength-velocity relationship and fatiguability of unilateral versus bilateral arm extension. European Journal of Applied Physiology, 56(2), 201-205. https://doi.org/10.1007/BF00640644
  27. Vint, P. F., & Hinrichs, R. N.(1998). The bilateral deficit is not solely responsible for the relative decrements in two-legged vertical jumping performances. Preceeding in North American Congress on Biomechanics, 473-474.