The effects of brake pedaling speed on onset time of muscle contraction in the lower extremity during driving task

운전 시 브레이크 페달링 속도가 하지 근수축 개시시간에 미치는 영향

  • Sung, Gil-Hee (Department of Physical Therapy, College of Medical Science, Catholic University of Daegu) ;
  • Hwang, Yoon-Tae (Department of Physical Therapy, Gangneung Yeongdong College) ;
  • Park, Ji-Won (Department of Physical Therapy, College of Medical Science, Catholic University of Daegu) ;
  • Shin, Hwa-Kyung (Department of Physical Therapy, College of Medical Science, Catholic University of Daegu)
  • 성길희 (대구가톨릭대학교 의료과학대학 물리치료학과) ;
  • 황윤태 (강릉영동대학 물리치료과) ;
  • 박지원 (대구가톨릭대학교 의료과학대학 물리치료학과) ;
  • 신화경 (대구가톨릭대학교 의료과학대학 물리치료학과)
  • Received : 2010.07.15
  • Accepted : 2011.02.11
  • Published : 2011.02.25

Abstract

Purpose: Driving is essential to maintain independent living status in modern times. Many patients want to know when they can drive again, but it's only possible if they have the ability to control lower extremity muscles. In this study, we compared the effects of velocity on onset time of lower extremity muscles during driving tasks. Methods: Twelve participants (5 male, 7 female) were enrolled. EMGs were used to test the onset time of lower extremity muscles; tibialis anterior, soleus, rectus femoris. To analyze the data, we used two way ANOVA. Results: According to brake pedaling velocity, there was a significant difference in brake response time (p<0.05). Further, when comparing the lower extremity muscles, there was a significant difference in onset time (p<0.05). The order of muscle recruitment was tibialis anterior, rectus femoris, and soleus for achieving maximal velocity, but the order was rectus femoris, tibialis anterior, soleus for achieving submaximal velocity. Conclusion: Brake pedaling velocity has significant effects on onset time of muscle contractions in the lower extremities. We suggested that a future study needs more subjects and more detailed research such as evaluat-ions of visuo-motor coordination and fine motor dexterity.

Keywords

References

  1. Rapport LJ, Bryer RC, Hanks RA. Driving and community integration after traumatic brain injury. Arch Phys Med Rehabil. 2008;89(5):922-30. https://doi.org/10.1016/j.apmr.2008.01.009
  2. Ponsford AS, Viitanen M, Lundberg C et al. Assessment of driving after stroke-a pluridisciplinary task. Accid Anal Prev. 2008;40(2):452-60. https://doi.org/10.1016/j.aap.2007.07.015
  3. Shin HK, Lee HC. Characteristics of brake response time during the driving performance in the elderly. J Kor Soc Phys Ther. 2009;21(3):81-5. https://doi.org/10.1589/jpts.21.81
  4. Kim JY, Seo KB. The Effect of the heel rest on the lower leg muscle activity and fatigue during repetitive pedaling. Journal of the Ergonomics Society of Korea. 2005;24(4): 55-62. https://doi.org/10.5143/JESK.2005.24.4.055
  5. Rouffet DM, Mornieux G, Zameziati K et al. Timing of muscle activation of the lower limbs can be modulated to maintain a constant pedaling cadence. J Electromyogr Kinesiol. 2009;19(6)1100-7. https://doi.org/10.1016/j.jelekin.2008.11.014
  6. Gong WT, Han JT, Ro HL. The influence of contract-relax exercise on functional leg length inequality and muscle activity. J Kor Soc Phys Ther. 2009;21(1):49-56. https://doi.org/10.1589/jpts.21.49
  7. Harrison DD, Harrison SO, Croft AC et al. Sitting biomechanics, part II: optimal car driver's seat and optimal driver's spinal model. J Manipulative Physiol Ther. 2000;23(1):37-47. https://doi.org/10.1016/S0161-4754(00)90112-X
  8. Di Fabio RP. Reliability of computerized surface electromyography for determining the onset of muscle activity. Phys Ther. 1987;67(1):43-8. https://doi.org/10.1093/ptj/67.1.43
  9. Jung YJ, Cho SH, Lee JH et al. Reliability of the onset time determinations during maximal isometric contraction in surface EMG. KAUTPT. 2003;10(1):51-62.
  10. Chae YW, Kim MH, Cho BM. The effect of anticipatory postural adjustment on balance performance in postural disturbance. J Kor Soc Phys Ther. 2000;12(1):65-71.
  11. Massion J. Movement, posture and equilibrium: interaction and coordination. Prog Neurobiol. 1992;38(1):35-56. https://doi.org/10.1016/0301-0082(92)90034-C
  12. Stevens VK, Coorevits PL, Bouche KG et al. The influence of specific training on trunk muscle recruitment patterns in healthy subjects during stabilization exercises. Man Ther. 2007;12(3):271-9. https://doi.org/10.1016/j.math.2006.07.009
  13. Boulias C, Meikle B, Pauley T et al. Return to driving after lower-extremity amputation. Arch Phys Med Rehabil. 2006;87(9):1183-8. https://doi.org/10.1016/j.apmr.2006.06.001
  14. Rapport LJ, Hanks RA, Bryer RC. Barriers to driving and community integration after traumatic brain injury. J Head Trauma Rehabil. 2006;21(1):34-44. https://doi.org/10.1097/00001199-200601000-00004
  15. Klimkeit EI, Bradshaw JL, Charlton J et al. Driving ability in Parkinson's disease: current status of research. Neurosci Biobehav Rev. 2009;33(3):223-31. https://doi.org/10.1016/j.neubiorev.2008.08.005