
تعداد نشریات | 26 |
تعداد شمارهها | 395 |
تعداد مقالات | 3,459 |
تعداد مشاهده مقاله | 5,355,626 |
تعداد دریافت فایل اصل مقاله | 3,664,677 |
Relationships between Amortization Force and Kinetics Variables during Jumping and Landing | ||
Journal of Advanced Sport Technology | ||
دوره 8، شماره 4 - شماره پیاپی 19، اسفند 2024، صفحه 35-47 اصل مقاله (1.02 M) | ||
نوع مقاله: Original research papers | ||
شناسه دیجیتال (DOI): 10.22098/jast.2024.3597 | ||
نویسندگان | ||
Ali Fatahi1؛ Razieh Yousefian Molla* 1؛ Behshad Panjehzadeh1؛ Javad Sarvestan2؛ Philip Stainton3؛ Ambreen Chohan3 | ||
1Department of Sports Biomechanics, Central Tehran Branch, Islamic Azad University, Tehran, Iran | ||
2Department of Natural Sciences in Kinanthropology, Faculty of Physical Culture, Palacky University Olomouc, Olomouc, Czech Republic | ||
3Allied Health Research Unit, University of Central Lancashire, Preston, UK, PR1 2HE | ||
چکیده | ||
Objectives: Force-time curve variables of countermovement jump are utilized to assess neuromuscular and biomechanical features related to lower extremity dynamics. The amortization phase is the transition phase between eccentric and concentric muscle activity and it is related to performance during jumping and agility activities. This study determines the relationship between Amortization Force and kinetics variables during a jumping and landing task. Equipment and methods: Seventeen junior professional male volleyball players performed three counter-movement jumps with maximum effort. The function of the stretch-shortening cycle of the legs concerning the jumping movement has been evaluated using the block jump skill on a dual-force platform (Kistler, CH). Kinetics data from Force - Time curve variables were calculated in MATLAB programs software (Math Works Inc., Cambridge, MA, USA) for the best jump trial. Multiple Stepwise Regression analysis was used to estimate the relationship between amortization force and other kinetic variables during jumping and landing as well as the magnitude coefficient of each variable. Results: Significant relationship between amortization force and other kinetic variables in the first step of stepwise regression models (p<0.05). Conclusions: These data may suggest that conditioning coaches should identify their player’s preferred position and incorporate a specific training program to enhance the players' power. | ||
کلیدواژهها | ||
countermovement jump؛ center of mass؛ eccentric phase؛ concentric phase؛ amortization phase؛ force-time curve | ||
مراجع | ||
1. Mizuguchi, Satoshi (2012). "Net Impulse and Net Impulse Characteristics in Vertical Jumping". Electronic Theses and Dissertations. Paper 1459. DOI: https://dc.etsu.edu/etd/1459. 2. Kibele, A. (1998). Possibilities and limitations in the biomechanical analysis of CMJs: A methodological study. Journal of Applied Biomechanics, 14, 105-117. DOI: https://dc.etsu.edu/etd/1459. 3. Chavda, S., Bromley, T., Jarvis, P., Williams, S., Bishop, C., Turner, A. N., & Mundy, P. D. (2018). Force-time characteristics of the countermovement jump: Analyzing the curve in Excel. Strength & Conditioning Journal, 40(2), 67-77. DOI: 10.1519/SSC.000000000000035 4. Van Deventer, L., & Golding, D. (2016). Game changers. Hachette UK. DOI: %282016%29.+Game+changers.+Hachette+UK.&btnG= 5. Barker, Leland Adam, "Biomechanical Analysis of Jumping: The Influence of External Load and Countermovement Depth on Deceleration Strategies and Performance" (2018). UNLV Theses, Dissertations, Professional Papers, and Capstones. 3213. DOI: 2591180b58f56753aae1b6aba78/1?pqorigsite=gscholar&cbl=18750 6. Meylan CMP, Nosaka K, Green J, and Cronin JB. (2011). The effect of three different start thresholds on the kinematics and kinetics of a countermovement jump. J Strength Cond 488 Res 25: 1164–1167. DOI: 10.1519/JSC.0b013e3181c699b9 7. Cormie, P., McGuigan, M. R., & Newton, R. U. (2010). Changes in the eccentric phase contribute to improved stretch-shortening cycle performance after training. Medicine & Science in Sports & Exercise, 42, 1731–1744. DOI: 10.1249/MSS.0b013e3181d392e8 8. Laffaye, G., Wagner, P. P., & Tombleson, T. I. L. (2014). Countermovement jump height: Gender and sport-specific differences in the force-time variables. Journal of Strength and Conditioning Research, 28, 1096–1105. DOI: 10.1519/JSC.0b013e3182a1db03 9. Riggs, M. P., & Sheppard, J. M. (2009). The relative importance of strength and power qualities to vertical jump height of elite beach volleyball players during the countermovement and squat jumps. Journal of Human Sport and Exercise, 4, 221–236. DOI: 10.4100/jhse.2009.43.04 10. Cronin JB, Bressel E, and Finn L. (2008). Augmented feedback reduces ground reaction forces in the landing phase of the volleyball spike jump. Journal of Sport Rehabilitation, 17: 148–159. DOI: 10.1123/jsr.17.2.148 11. McClay IR, Robinson JR, Andriacchi TP, Frederick EC, Gross T, Martin P, Valiant G, Williams KR, and Cavanagh PR. (1994). A profile of ground reaction forces in professional basketball. Journal of Applied Biomechanics. 10: 222–236. DOI: https://doi.org/10.1123/jab.10.3.222 12. Steele J and Milburn P. (1987). Ground reaction forces on landing in netball. J Hum Movement Studies, 13: 399–410, 1987. DOI: https:// 399%E2%80%93410%2C+1987.&btnG 13. Mothersole, G., Cronin, J. B., & Harris, N. K. (2014). Jump-landing program for females: Development of a systematic progression model. Strength and Conditioning Journal, 36(4), 52-64. DOI: https://journals.lww.com/nsca14. Claudino, J. G., Cronin, J., Mezencio, B., McMaster, D. T., McGuigan, M., Tricoli, V., & Serrao, J. C. (2017). The countermovement jumps to monitor neuromuscular status: A meta-analysis. Journal of Science and Medicine in Sport, 20, 397–402. DOI: https://doi.org/10.1016/j.jsams.2016.08.011 15. Kollias, I., Hatzitaki, V., Papaiakovou, G., & Giatsis, G. (2001). Using principal components analysis to identify individual differences in vertical jump performance. Research Quarterly for Exercise and Sport, 72, 63–67. DOI: https://doi.org/10.1080/02701367.2001.10608933 16. Toumi H, Thiery C, Maitre S, Martin A, Vanneuville G, Poumarat G. Training effects of amortization phase with eccentric/concentric variations--the vertical jump. Int J Sports Med. 2001 Nov;22(8):605-10. doi: 10.1055/s-2001-18525. PMID: 11719897. 17. Louder, Talin, "Establishing a Kinetic Assessment of Reactive Strength" (2017). All Graduate Theses and Dissertations. 6004. https://digitalcommons.usu.edu/etd/6004. 18. Sánchez-Sixto A., Harrison, A.J., &Floría, P. (2018). Larger Countermovement Increases the Jump Height of Countermovement Jump. Sports, 6, 131. DOI: https://doi.org/10.3390/sports6040131 19. Cormie, P., McBride, J. M., & McCaulley, G. O. (2009). Power-Time, Force-Time, and VelocityTime Curve Analysis of the Countermovement Jump: Impact of Training. Journal of Strength and Conditioning Research, 23(1), 177–186. DOI: https://journals.lww.com/nscajscr/fulltext/2009/01000/Optimal_Loading_for_Maximal_Power_Output_during.00028.aspx 20. Cormie, P., McGuigan, M. R., & Newton, R. U. (2010). Changes in the Eccentric Phase Contribute to Improved Stretch-Shorten Cycle Performance after Training. Medicine and Science in Sports and Exercise, 42(9), 1731–1744. DOI: https://doi.org/10.1249/MSS.0b013e3181d392e8. 21. Laffaye, G., & Wagner, P. (2013). The eccentric rate of force development determines jumping performance. Computer Methods in Biomechanics and Biomedical Engineering, 16(sup1), 82–83. https://doi.org/10.1080/10255842.2013.815839 22. Cuk, I.; Mirkov, D.; Nedeljkovic, A.; Kukolj, M.; Ugarkovic, D.; Jaric, S. (2016). Force-velocity property of leg muscles in individuals of different levels of physical fitness. Sports Biomechanics, 15, 207– 219. https://doi.org/10.1080/14763141.2016.1159724 23. Feeney, D.; Stanhope, S.J.; Kaminski, T.W.; Machi, A.; Jaric, S. Loaded vertical jumping: Forcevelocity relationship, work, and power. Journal of Applied Biomechanics. 2016, 32, 120–127. https://doi.org/10.1123/jab.2015-0136 24. Samozino, P.; Rejc, E.; Di Prampero, P.E.; Belli, A.; Morin, J.B. Optimal force-velocity profile in ballistic movements—Altius: Citius or fortius? Medicine and Science in Sports and Exercise. 2012, 44, 313– 322. 10.1249/MSS.0b013e31822d757a 25. Moir, G.L.; Gollie, J.M.; Davis, S.E.; Guers, J.J.,Witmer, C.A. (2012). The effects of load on the system and lower-body joint kinetics during jump squats. Sports Biomechanics, 11, 492–506. https://doi.org/10.1080/14763141.2012.725426 26. Herzog, W., Schappacher, G., DuVall, M., Leonard, T. R., & Herzog, J. A. (2016). Residual Force Enhancement Following Eccentric Contractions: A New Mechanism Involving Titin. Physiology, 31(4), 300– 312. https://doi.org/10.1152/physiol.00049.2014 27. Earp, J. E., Newton, R. U., Cormie, P., & Blazevich, A. J. (2016). Faster Movement Speed Results in Greater Tendon Strain during the Loaded Squat Exercise. Frontiers in Physiology, 7, 366. https://doi.org/10.3389/fphys.2016.00366. 28. Devita, P., & Skelly, W. A. (1992). Effect of landing stiffness on joint kinetics and energetics in the lower extremity. Medicine & Science in Sports & Exercise., 24(1), 108–115. https://citeseerx.ist.psu.edu/document?repid=rep1&type=pdf&doi=c5bd21a017359beffd35577e2fab65260a0 ed6ea 29. Hewett, T. E., Myer, G. D., Ford, K. R., Heidt, R. S., Colosimo, A. J., McLean, S. G., Succop, P. (2005). Biomechanical measures of neuromuscular control and valgus loading of the knee predict anterior cruciate ligament injury risk in female athletes: A prospective study. American Journal of Sports Medicine, 33(4), 492–501. https://doi.org/10.1177/0363546504269591. 30. Pollard, C. D., Sigward, S. M., & Powers, C. M. (2010). Limited hip and knee flexion during landing is associated with increased frontal plane knee motion and moments. Clinical Biomechanics, 25(2), 142–146. 31. Konow, N., Azizi, E., & Roberts, T. J. (2012). Muscle power attenuation by tendon during energy dissipation. Proceedings.Biological Sciences. The Royal Society, 279(1731), 1108–1113. https://doi.org/10.1098/rspb.2011.1435. 32. Roberts, T. J., & Konow, N. (2013). How tendons buffer energy dissipation by muscle. Exercise and Sport Sciences Reviews, 41. 10.1097/JES.0b013e3182a4e6d5 33. (4), 186–193. https://doi.org/10.1097/JES.0b013e3182a4e6d5 [doi]. 34. Earp, J. E., Newton, R. U., Cormie, P., & Blazevich, A. J. (2017). The Influence of External Load on Quadriceps Muscle and Tendon Dynamics during Jumping. Medicine and Science in Sports and Exercise, 49(11), 2250–2259. https://doi.org/10.1249/MSS.0000000000001361. 35. Ganiv, LM. (2008). Three different methods of calculating vertical jump height from force platform data in men and Women. Measurement in Physical Education and Exercise Science, 12: 207–218. https://doi.org/10.1080/10913670802349766 36. Tillman MD, Hass CJ, Brunt D, Bennett GR. (2004). Jumping and Landing Techniques in Elite Women's Volleyball. Journal of Sports Science and Medicine. 1; 3(1):30-6. PMID: 24497818. https://pmc.ncbi.nlm.nih.gov/articles/PMC3896111/ 37. Cormie, P., McGuigan, M.R. and Newton, R.U. (2011) Developing maximal neuromuscular power: part 2 - training considerations for improving maximal power production. Sports Medicine 41, 125-146. https://link.springer.com/article/10.2165/11538500-000000000-00000 38. Stone, M.H., O'Bryant, H.S., Hornsby, G., Cunanan, A., Mizuguchi, S., Suarez, D.G., South, S., Marsh, D.J., Haff, G.G., Ramsey, M.W., Beckham, G.K., Santana, H.A.P., Wagle, J.P., Stone, M.E. and Pierce, K.P. (2019) The use of the isometric mid-thigh pull in the monitoring of weightlifters: 25+ years of experience. UKSCA J 54, 10-26. https:// -637049202162995958. 39. Suarez, D.G., Mizuguchi, S., Hornsby, W.G., Cunanan, A.J., Marsh, D.J. and Stone, M.H. (2019) Phasespecific changes in rate of force development and muscle morphology throughout a block periodized training cycle in weightlifters. Sports 7, 129. https://doi.org/10.3390/sports7060129 40. Suchomel, T.J., Nimphius, S. and Stone, M.H. (2016a). The importance of muscular strength in athletic performance. Sports Medicine 46, 1419-1449. https:/ 10.1007/s40279-016-0486-0 41. Suchomel, T. J., Sole, C. J., Bellon, C. R., & Stone, M. H. (2020). Dynamic Strength Index: Relationships with Common Performance Variables and Contextualization of Training Recommendations. Journal of Human Kinetics, 74, 59–70. https://doi.org/10.2478/hukin-2020-0014. 42. Haff, GG, Kirksey, KB, Stone, MH, Warren, BJ, Johnson, RL, Stone, M, O’Bryant, H, and Proulx, C. (2000). The effect of 6 weeks of creatine monohydrate supplementation on dynamic rate of force development. Journal of Strength and Conditioning Research 14: 426–433. https:// 2000/11000/the_effect_of_6_weeks_of_creatine_monohydrate.10.aspx 43. Kawamori, N, Rossi, SJ, Justice, BD, Haff, EE, Pistilli, EE, O’Bryant, HS, Stone, MH, and Haff, GG. (2006). https://journals.lww.com/nsca-jscr/abstract/2006/08000 44. Lees, A, Vanrenterghem, J, and De Clercq, D. (2004). Understanding how an arm swing enhances performance in the vertical jump. Journal of Biomechanics, 37: 1929–1940. https://doi.org/10.1016/j.jbiomech.2004.02.021 45. Marcora, S and Miller, MK. (2000). The effect of knee angle on the external validity of isometric measures of lower body neuromuscular function. J Sports Sci 18: 313–319. https://doi.org/10.1080/026404100402377 46. Wilson, G, Lyttle, A, Ostrowski, K, and Murphy, A. (1995). Assessing dynamic performance: A comparison of rate of force development tests. Journal of Strength and Conditioning Research, 9: 176–181. https://journals.lww.com/nsca-jscr/abstract/1995/08000. 47. Sarvestan, J., Cheraghi, M., Sebyani, M., Shirzad, E., & Svoboda, Z. (2018). Relationships between force-time curve variables and jump height during countermovement jumps in young elite volleyball players. Acta Gymnica, 48(1), 9–14. http://10.5507/ag.2018.003 48. Sarvestan, J., Cheraghi, M., Shirzad, E., & Svoboda, Z. (2019a). Experience-related impacts on jump performance of elite and collegiate basketball players; investigation on force-time curvature variables. Sport Mont, 17(2), 23–28. DOI: 10.26773/smj.190604 49. Alemdaroğlu, U. (2012). The relationship between muscle strength, anaerobic performance, agility, sprint ability, and vertical jump performance in professional basketball players. Journal of Human Kinetics, 31,149–158. doi: 10.2478/v10078-012-0016-6 50. Rice PE, Goodman CL, Capps CR, Triplett NT, Erickson TM, McBride JM. (2017). Force- and power-time curve comparison during jumping between strength-matched male and female basketball players. European Journal Sport Science.17(3):286-293. doi:10.1080/17461391.2016.1236840. PMID: 27691454. 51. Dowling, J. J., & Vamos, L. (1993). Identification of kinetic and temporal factors related to vertical jump performance. Journal of Applied Biomechanics, 9(2): 95-110. DOI: https://doi.org/10.1123/jab.9.2.95 52. Kibele, A. Possibilities and limitations in the biomechanical analysis of countermovement jumps A methodological study. (1998). Journal of Applied Biomechanics, 14: 105–117. DOI: https://doi.org/10.1123/jab.14.1.105 53. World Medical Association. (2018). World Medical Association Declaration of Helsinki. Bulletin of the World Health Organization.; World Health Organization. https://doi.org/S0042-96862001000400016. 54. Giatsis, G., Panoutsakopoulos, V. and Kollias, I.A., 2018. Biomechanical differences of arm swing countermovement jump on sand and rigid surface performed by elite beach volleyball players. Journal of sports sciences, 36(9), pp.997-1008. https://doi.org/10.1080/02640414.2017.1348614 | ||
آمار تعداد مشاهده مقاله: 143 تعداد دریافت فایل اصل مقاله: 38 |