Comparación de la amortiguación durante la marcha con calzado de montaña respecto a la marcha sin calzado

Autores

  • Jesús Cámara Universidad del País Vasco.

Palavras-chave:

botas de montaña, fuerza de impacto, gradiente de carga, plantillas viscoelásticas

Resumo

Los objetivos del presente estudio fueron determinar la influencia de las botas de montaña y de las plantillas viscoelásticas durante la marcha sobre la producción de la fuerza de impacto y sobre su gradiente de carga. 11 sujetos sanos y físicamente activos formaron parte del estudio. Se registraron la producción de la fuerza de impacto y su gradiente de carga durante la marcha sin calzado y durante la marcha con botas de montaña y con tres plantillas viscoelásticas. Las botas de montaña redujeron la producción de la fuerza de impacto. Las plantillas Sorbothane Composite © e Integrale © implantadas en las botas ayudaron a reducir en mayor medida la producción de esta fuerza.

Biografia do Autor

Jesús Cámara, Universidad del País Vasco.

Doctor por la Universidad del País Vasco (Euskal Herriko Unibertsitatea). Licenciado en Ciencias de la Actividad Física y del Deporte por la Universidad del País Vasco - Euskal Herriko Unibertsitatea.

Referências

AGUINALDO, A.; LITAVISH, M.; MORALES, A. Comparison of transient force attenuation between three types of heel cushions used in athletic footwear. Gait and Posture, Oxford, v. 16, n. 1, p. 100-101, mar., 2002.

ALCÁNTARA, E. et al. Influence of age, gender, and obesity on the mechanical properties of the heel pad under walking impact conditions. Journal of Applied Biomechanics, Champaign, v. 18, p. 345-356, feb., 2002.

CÁMARA, J. La influencia de las botas de bombero sobre la biomecánica de la marcha. 2006. 203 p. Tesis de doctorado. Departamento de Fisiología, Universidad del País Vasco / Euskal Herriko Unibertsitatea, Bilbao, 2006.

CÁMARA, J.; GAVILANES, B. The influence of firemen boots on the fore-aft ground reaction force during walking. Gait and Posture, Oxford, v. 21, n. S1, p. 144-145, apr., 2005.

CAVANAGH, P. R.; WILLIAMS, K. R.; CLARK, T. E. A comparison of ground reaction forces during walking barefoot and in shoes. In: MORECKI, A.; FIDELUS, K., et al (Ed.). Biomechanics VII-B. Baltimore: University Park Press, 1979. p.151.

COLLINS, J. J.; WHITTLE, M. W. Impulsive forces during walking and their clinical implications. Clinical Biomechanics, New York, v. 4, p. 179- 187, feb., 1989.

DERRICK, T. et al. Proceedings of the XVIV ISBS Symposium. Spectral decomposition of vertical ground reaction force curves. Lisboa: Edicoes FMH., 1996. 169 p.

EBERHART, H. D.; INMAN, V. T.; BRESLER, B. The principal elements in human locomotion. In: KLOPSTEG, P. E. Human Limbs and their substitutes. New York: Harper, 1951. 345 p.

FREDERICK, E. C. Measuring the effects of shoes and surfaces on the economy locomotion. In: NIGG, B. M.; KERR, A. M. (Ed.). Biomechanical aspects of sports shoes and playing surfaces. Calgary: University Printing, 1983. 93 p.

FREDERICK, E. C.; HAGY, J. L.; MANN, R. A. Predicting vertical impact force in running. Journal of Biomechanics, New York, v. 14, n. 7, p. 498- 502, jan., 1981.

GERRITSEN, K.; VAN DER BOGERT, A.; NIGG, B. M. Direct dynamics simulation of the impact phase in heel-toe running. Journal of Biomechanics, New York, n. 28, p. 661-668, jun., 1995.

GILL, H. S.; O´CONNOR, J. J. Heelstrike and the pathomechanics of osteoarthrosis: a pilot gait study. Journal of Biomechanics, New York, v. 36, p. 1625-1631, nov., 2003.

HRELJAC, A. Technique impacts overuse injuries in runners. Journal of Biomechanics, New York, v. 36, p. 845-849, nov., 2002.

HRELJAC, A.; MARSHALL, R. N. Algorithms to determine event timing during normal walking using kinematic data. Journal of Biomechanics, New York, v. 33, p. 783-786, jun., 2000.

JOHNSON, G. R. The use of spectral analysis to assess the performance of shock absorbing footwear. New England Journal of Medicine, Massachussets, v. 15, p. 117-122, nov., 1986.

JOHNSON, G. R. Measurement of shock acceleration during walking and running using the Shock Meter. Clinical Biomechanics, New York, v. 5, p. 47-50, oct., 1990.

JORGENSEN, U.; BOJSEN-MOLLER, F. Shock absobency of factors in the shoe/heel interaction - with special focus on role of the heel pad. Foot & Ankle, Thousand Oaks, v. 9, n. 11, p. 294-299, jan., 1989.

JORGENSEN, U.; EKSTRAND, J. Significance of heel pad confinement for the shock absorption at heel strike. International Journal of Sports Medicine, New York, v. 9, p. 468-473, oct., 1988.

KELLER, T. S. et al. Relationship between vertical ground reaction force and speed during walking, slow jogging, and running. Clinical Biomechanics, New York, n. 11, p. 253-259, feb., 1996.

KIPPEN, C. Insoling materials in foot orthosis manufacture - a review. Chiropodist, Oxford, n. 4, p. 83-88, may, 1989.

KOUKOUBIS, T. D.; KYRIAZIS, V.; RIGAS, C. The influence of mountain boots on gait. Journal of Orthopaedic Traumatology, Albany, v. 4, p. 81- 83, feb., 2003.

LAFORTUNE, M. A.; HENNING, E. M. Cushioning properties of footwear during walking: accelerometer and force platform measurements. Clinical Biomechanics, New York, v. 7, p. 181- 184, apr. 1992.

LIGHT, L. H.; MACLELLAN, G. E.; KLENERMAN, L. Skeletal transients on heel strike in normal walking with different footwear. Journal of Biomechanics, Champaign, v. 13, p. 477-480, jan. 1980.

MERCER, J. A.; VANCE, J. Spring-boots can reduce impact in runners. Biomechanics, Thorofare, n. 27, feb, 2002.

NIGG, B.; COLE, G.; BRUGGEMANN, P. Impact forces during heel-toe running. Journal of Applied Biomechanics, Champaign, v. 11, p. 407-432, jul., 1995.

NIGG, B. Biomechanics of running shoes. Champaign, IL.: Human Kinetic Publishers, 1986.

NIGG, B. Biomechanical aspects of playing surfaces. Journal of Sports Science, London, v. 5, n. 2, p. 117-145, sep. 1987.

OEFFINGER, D. et al. Comparison of gait with and without shoes in children. Gait and Posture, Oxford, v. 9, p. 95-100, jan., 1999.

PRATT, D. J.; REES, P. H.; RODGERS, C. Assessment of some shock absorbing insoles (technical note). Prosthetics and Orthotics International, Philadelphia, v. 10, p. 43-45, may, 1986.

RÖÖSER, B.; EKBLADH, R.; LIDGREN, L. The shock-absorbing effect of soles and insoles. International Orthopaedics, Berlin, v. 12, p. 335- 338, oct., 1988.

SHORTEN, M. R.; WINSLOW, D. S. Spectral Analysis of Impact Shock During Running. International Journal of Sport Biomechanics, Champaign, n. 8, p. 288-304, feb., 1992.

SMEATHERS, J. E. Transient vibrations caused by heel strike. Proceedings of the Institution of Mechanical Engineers, v. 203, n. 4, p. 181-186, 1989.

VERDINI, F. et al. Analysis of ground reaction forces by means of wavelet transform. Clinical Biomechanics, New York, v. 15, p. 607-610, mar., 2000.

VOLOSHIN, A.; WOSK, A. Influence of artificial shock absorbers on human gait. Clinical Orthopaedics, Philadelphia, v. 160, p. 52-56, oct., 1981.

VOLOSHIN. An. In Vivo Study of Low back Pain and Shock Absorption in the Human Locomotor System. Journal of Biomechanics, New York, v. 15, n. 1, p. 21-27, feb. 1982.

VOLOSHIN, A.; WOSK, J.; BRULL, M. Force Wave 43 Transmission Through the Human Locomotor System. Journal of Biomechanical Engineering, Philadelphia, v. 103, p. 48-50, apr., 1981.

WAKELING, J. M.; LIPHARDT, A. M.; NIGG, B. M. Muscle activity reduces soft-tissue resonance at heel-strike during walking. Journal of Biomechanics, New York, n. 36, p. 1761-1769, dec., 2003.

WANG, C. L. et al. Mechanical properties of heel pads reconstructed with flaps. The Journal of Bone And Joint Surgery, Austin, v. 81, n. 2, p. 207-211, nov., 1999.

WHITTLE, M. W. Force Platform Measurement of the Heelstrike Transient in normal walking. Gait and Posture, Oxford, v. 5, p. 173-174, dec., 1997.

WHITTLE, M.W. Generation and attenuation of transient impulsive forces beneath the foot: a review. Gait and Posture, Oxford, n. 10, p. 264- 275, sep., 1999.

WOODARD, C. M.; JAMES, M. K.; MESSIER, S. P. Computational Methods Used in the Determination of Loading Rate: Experimental and Clinical Implications. Journal of Applied Biomechanics, Champaign, v. 15, p. 404-417, apr., 1999.

WOSK, J.; VOLOSHIN, A. Wave attenuation in skeletons of young healthy persons. Journal of Biomechanics, New York, v. 14, n. 4, p. 261-267, feb., 1981.

Publicado

2015-06-22

Como Citar

Cámara, J. (2015). Comparación de la amortiguación durante la marcha con calzado de montaña respecto a la marcha sin calzado. Revista Universitaria De La Educación Física Y El Deporte, (4), 37–43. Recuperado de http://190.64.86.34:8095/ojs/index.php/rev1/article/view/36

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