Derleme
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Futbolda Kavisli Sprint: Biyomekanik, Performans ve Pratik Uygulamalar

Yıl 2025, Cilt: 36 Sayı: 3, 202 - 210, 05.09.2025
https://doi.org/10.17644/sbd.1699001

Öz

Kavisli sprint, son yıllarda futboldaki yüksek şiddetli performansın temel bileşenlerinden biri olarak öne çıkmaktadır. Sprint performansının yalnızca doğrusal hareketlerle sınırlı olmadığı, özellikle gol girişimleri ve savunma aksiyonları gibi kritik anlarda oyuncuların farklı yönlere doğru kavisli hızlanmalar gerçekleştirdiği bilinmektedir. Her ne kadar doğrusal sprintler uzun süredir ayrıntılı biçimde incelenmiş ve antrenman programlarında yaygın biçimde kullanılıyor olsa da kavisli sprintin kendine özgü biyomekanik ve fizyolojik talepleri, spor bilimleri literatüründe ancak son dönemde araştırılmaya başlanmıştır. Bu derleme, futbolcularda kavisli sprint performansına ilişkin güncel literatürü; biyomekanik özellikler, nöromüsküler gereksinimler, performans belirleyicileri, yönsel asimetriler ve antrenman yaklaşımları çerçevesinde kapsamlı bir şekilde ele almaktadır. Ayrıca, bu alanda kullanılan yeni değerlendirme yöntemlerine dikkat çekilmekte ve gelecekteki araştırmalar için öneriler sunulmaktadır.

Kaynakça

  • Alt, T., Heinrich, K., Funken, J. ve Potthast, W. (2015). Lower extremity kinematics of athletics curve sprinting. Journal of Sports Sciences, 33(6), 552-560. https://doi.org/10.1080/02640414.2014.960881
  • Baena-Raya, A., Díez-Fernández, D. M., López-Sagarra, A., Martínez-Rubio, C., Soriano-Maldonado, A. ve Rodríguez-Pérez, M. A. (2023). Novel curvilinear sprint test in basketball: Reliability and comparison with linear sprint. The Journal of Strength & Conditioning Research, 37(9), e535-e540. https://doi.org/10.1519/JSC.0000000000004474
  • Barnes, C., Archer, D. T., Hogg, B., Bush, M. ve Bradley, P. (2014). The evolution of physical and technical performance parameters in the English Premier League. International Journal of Sports Medicine, 35(13), 1095-1100. https://doi.org/10.1055/s-0034-1375695
  • Bezodis, I. N., Kerwin, D. G. ve Salo, A. (2008). Lower-limb mechanics during the support phase of maximum-velocity sprint running. Medicine and Science in Sports and Exercise, 40(4), 707-715. https://doi.org/10.1249/MSS.0b013e318162d162
  • Bloomfield, J., Polman, R. ve O'Donoghue, P. (2007). Physical demands of different positions in FA Premier League soccer. Journal of Sports Science & Medicine, 6(1), 63.
  • Bradley, P. S., Di Mascio, M., Peart, D., Olsen, P. ve Sheldon, B. (2010). High-intensity activity profiles of elite soccer players at different performance levels. The Journal of Strength & Conditioning Research, 24(9), 2343-2351. https://doi.org/10.1519/jsc.0b013e3181aeb1b3
  • Brice, P., Smith, N. ve Dyson, R. (2008). Body segment orientations for curved running in soccer players. In Science and Football VI (pp. 44-49). Routledge.
  • Buchheit, M., Modunotti, M., Stafford, K., Gregson, W. ve Di Salvo, V. (2018). Match running performance in professional soccer players: effect of match status and goal difference. Sport Performance and Science Reports, 1(21), 1-3.
  • Caldbeck, P. ve Dos’ Santos (2022). A classification of specific movement skills and patterns during sprinting in English Premier League soccer. PLoS one, 17(11), e0277326. https://doi.org/10.1371/journal.pone.0277326
  • Faude, O., Koch, T. ve Meyer, T. (2012). Straight sprinting is the most frequent action in goal situations in professional football. Journal of Sports Sciences, 30(7), 625-631. https://doi.org/10.1080/02640414.2012.665940
  • Fílter, A., Beltrán-Garrido, V., Dos’Santos, T., Romero-Rodríguez, D., Requena, B., Loturco, I. ve Madruga-Parera, M. (2021). The relationship between performance and asymmetries in different multidirectional sprint tests in soccer players. Journal of Human Kinetics, 79, 155-164. https://doi.org/10.2478/hukin-2021-0069
  • Filter, A., Gantois, P., Henrique, R. S., Olivares-Jabalera, J., Robles-Rodríguez, J., Santalla, A., Requena, B. ve Nakamura, F. Y. (2022). How does curve sprint evolve across different age-categories in soccer players? Biology of Sport, 39(1), 53-58. https://doi.org/10.5114/biolsport.2022.102867
  • Fílter, A., Olivares, J., Santalla, A., Nakamura, F. Y., Loturco, I. ve Requena, B. (2023). New curve sprint test for soccer players: Reliability and relationship with linear sprint. In Science and Football (pp. 124-129). Routledge. https://doi.org/10.1080/02640414.2019.1677391
  • Filter, A., Olivares-Jabalera, J., Santalla, A., Morente-Sánchez, J., Robles-Rodríguez, J., Requena, B. ve Loturco, I. (2020). Curve sprinting in soccer: Kinematic and neuromuscular analysis. International Journal of Sports Medicine, 41(11), 744-750. https://doi.org/10.1055/a-1144-3175
  • Fitzpatrick, J. F., Linsley, A. ve Musham, C. (2019). Running the curve: a preliminary investigation into curved sprinting during football match-play. Sport Performance and. Science Reports, 55(1), 1-3.
  • Fox, M. L. (1937). Relation between curvature and speed. Proceedings of the 17th Annual Meeting, Highway Research Board, Washington, DC
  • Grazioli, R., Soares, M. L. H., Schons, P., Preissler, A. B., Veeck, F., Benítez-Flores, S., Pinto, R. S. ve Cadore, E. L. (2024). Curve sprint performance and speed-related capabilities in professional soccer players. Journal of Bodywork and Movement Therapies, 40, 1034-1040. https://doi.org/10.1016/j.jbmt.2024.07.018
  • Haugen, T. A., Tønnessen, E., Hisdal, J. ve Seiler, S. (2014). The role and development of sprinting speed in soccer. International Journal of Sports Physiology and Performance, 9(3), 432-441. https://doi.org/10.1123/ijspp.2013-0121
  • Ishimura, K. ve Sakurai, S. (2016). Asymmetry in determinants of running speed during curved sprinting. Journal of Applied Biomechanics, 32(4), 394-400. https://doi.org/10.1123/jab.2015-0127
  • Judson, L. J., Churchill, S. M., Barnes, A., Stone, J. A., Brookes, I. G. ve Wheat, J. (2020). Kinematic modifications of the lower limb during the acceleration phase of bend sprinting. Journal of Sports Sciences, 38(3), 336-342. https://doi.org/10.1080/02640414.2019.1699006
  • Kobal, R., Freitas, T. T., Fílter, A., Requena, B., Barroso, R., Rossetti, M., Jorge, R. M., Carvalho, L., Pereira, L. A. ve Loturco, I. (2021). Curve sprint in elite female soccer players: relationship with linear sprint and jump performance. International Journal of Environmental Research and Public Health, 18(5), 2306. https://doi.org/10.3390/ijerph18052306
  • Loturco, I., Pereira, L. A., Fílter, A., Olivares-Jabalera, J., Reis, V. P., Fernandes, V., Freitas, T. T. ve Requena, B. (2020). Curve sprinting in soccer: Relationship with linear sprints and vertical jump performance. Biology of Sport, 37(3), 277-283. https://doi.org/10.5114/biolsport.2020.96271
  • Osgnach, C., Poser, S., Bernardini, R., Rinaldo, R. ve Di Prampero, P. E. (2010). Energy cost and metabolic power in elite soccer: a new match analysis approach. Medicine and Science in Sports and Exercise, 42(1), 170-178. https://doi.org/10.1249/mss.0b013e3181ae5cfd
  • Paz Paz, E. O., Pérez Soriano, P. ve Encarnación Martínez, A. M. (2024). Effects of the sprint curve on spatiotemporal parameters: a systematic review, 41(4), 204-209. https://doi.org/10.18176/archmeddeporte.00175
  • Sašek, M., Šarabon, N. ve Smajla, D. (2024). Exploring the relationship between lower limb strength, strength asymmetries, and curvilinear sprint performance: Findings from a pilot study. Science Progress, 107(2). https://doi.org/10.1177/00368504241247998
  • Solleiro-Duran, D., Cidre-Fuentes, P., Rey, E., Baena-Raya, A., Filter, A. ve Padrón-Cabo, A. (2024). Effects of linear versus curvilinear sprint training on multidirectional speed in young soccer players: a randomized parallel-group trial. Biology of Sport, 42(1), 89-97. https://doi.org/10.5114/biolsport.2025.139084
  • Stølen, T., Chamari, K., Castagna, C. ve Wisløff, U. (2005). Physiology of soccer: an update. Sports Medicine, 35, 501-536. https://doi.org/10.2165/00007256-200535060-00004
  • Tomporowski, P. D. (2003). Cognitive and behavioral responses to acute exercise in youths: A review. Pediatric Exercise Science, 15(4), 348-359. https://doi.org/10.1123/pes.15.4.348
  • Verheul, J., Nedergaard, N. J., Pogson, M., Lisboa, P., Gregson, W., Vanrenterghem, J. ve Robinson, M. A. (2021). Biomechanical loading during running: can a two mass-spring-damper model be used to evaluate ground reaction forces for high-intensity tasks? Sports Biomechanics, 20(5), 571-582. https://doi.org/10.1080/14763141.2019.1584238

Curve Sprint in Soccer: Biomechanics, Performance, and Practical Applications

Yıl 2025, Cilt: 36 Sayı: 3, 202 - 210, 05.09.2025
https://doi.org/10.17644/sbd.1699001

Öz

Curve sprint has emerged in recent years as a fundamental component of high-intensity performance in soccer. It is well established that sprinting in the game is not limited to linear movements; rather, during critical moments such as goal-scoring opportunities or defensive recoveries, players often accelerate along curved trajectories. While linear sprinting has been extensively studied and systematically incorporated into training programs, the unique biomechanical and physiological demands of curve sprinting have only recently garnered attention within sports science. This review comprehensively examines the current literature on curve sprint performance in soccer, focusing on biomechanical characteristics, neuromuscular demands, performance determinants, directional asymmetries, and training strategies. Furthermore, it highlights emerging assessment tools and proposes directions for future research in this evolving field.

Kaynakça

  • Alt, T., Heinrich, K., Funken, J. ve Potthast, W. (2015). Lower extremity kinematics of athletics curve sprinting. Journal of Sports Sciences, 33(6), 552-560. https://doi.org/10.1080/02640414.2014.960881
  • Baena-Raya, A., Díez-Fernández, D. M., López-Sagarra, A., Martínez-Rubio, C., Soriano-Maldonado, A. ve Rodríguez-Pérez, M. A. (2023). Novel curvilinear sprint test in basketball: Reliability and comparison with linear sprint. The Journal of Strength & Conditioning Research, 37(9), e535-e540. https://doi.org/10.1519/JSC.0000000000004474
  • Barnes, C., Archer, D. T., Hogg, B., Bush, M. ve Bradley, P. (2014). The evolution of physical and technical performance parameters in the English Premier League. International Journal of Sports Medicine, 35(13), 1095-1100. https://doi.org/10.1055/s-0034-1375695
  • Bezodis, I. N., Kerwin, D. G. ve Salo, A. (2008). Lower-limb mechanics during the support phase of maximum-velocity sprint running. Medicine and Science in Sports and Exercise, 40(4), 707-715. https://doi.org/10.1249/MSS.0b013e318162d162
  • Bloomfield, J., Polman, R. ve O'Donoghue, P. (2007). Physical demands of different positions in FA Premier League soccer. Journal of Sports Science & Medicine, 6(1), 63.
  • Bradley, P. S., Di Mascio, M., Peart, D., Olsen, P. ve Sheldon, B. (2010). High-intensity activity profiles of elite soccer players at different performance levels. The Journal of Strength & Conditioning Research, 24(9), 2343-2351. https://doi.org/10.1519/jsc.0b013e3181aeb1b3
  • Brice, P., Smith, N. ve Dyson, R. (2008). Body segment orientations for curved running in soccer players. In Science and Football VI (pp. 44-49). Routledge.
  • Buchheit, M., Modunotti, M., Stafford, K., Gregson, W. ve Di Salvo, V. (2018). Match running performance in professional soccer players: effect of match status and goal difference. Sport Performance and Science Reports, 1(21), 1-3.
  • Caldbeck, P. ve Dos’ Santos (2022). A classification of specific movement skills and patterns during sprinting in English Premier League soccer. PLoS one, 17(11), e0277326. https://doi.org/10.1371/journal.pone.0277326
  • Faude, O., Koch, T. ve Meyer, T. (2012). Straight sprinting is the most frequent action in goal situations in professional football. Journal of Sports Sciences, 30(7), 625-631. https://doi.org/10.1080/02640414.2012.665940
  • Fílter, A., Beltrán-Garrido, V., Dos’Santos, T., Romero-Rodríguez, D., Requena, B., Loturco, I. ve Madruga-Parera, M. (2021). The relationship between performance and asymmetries in different multidirectional sprint tests in soccer players. Journal of Human Kinetics, 79, 155-164. https://doi.org/10.2478/hukin-2021-0069
  • Filter, A., Gantois, P., Henrique, R. S., Olivares-Jabalera, J., Robles-Rodríguez, J., Santalla, A., Requena, B. ve Nakamura, F. Y. (2022). How does curve sprint evolve across different age-categories in soccer players? Biology of Sport, 39(1), 53-58. https://doi.org/10.5114/biolsport.2022.102867
  • Fílter, A., Olivares, J., Santalla, A., Nakamura, F. Y., Loturco, I. ve Requena, B. (2023). New curve sprint test for soccer players: Reliability and relationship with linear sprint. In Science and Football (pp. 124-129). Routledge. https://doi.org/10.1080/02640414.2019.1677391
  • Filter, A., Olivares-Jabalera, J., Santalla, A., Morente-Sánchez, J., Robles-Rodríguez, J., Requena, B. ve Loturco, I. (2020). Curve sprinting in soccer: Kinematic and neuromuscular analysis. International Journal of Sports Medicine, 41(11), 744-750. https://doi.org/10.1055/a-1144-3175
  • Fitzpatrick, J. F., Linsley, A. ve Musham, C. (2019). Running the curve: a preliminary investigation into curved sprinting during football match-play. Sport Performance and. Science Reports, 55(1), 1-3.
  • Fox, M. L. (1937). Relation between curvature and speed. Proceedings of the 17th Annual Meeting, Highway Research Board, Washington, DC
  • Grazioli, R., Soares, M. L. H., Schons, P., Preissler, A. B., Veeck, F., Benítez-Flores, S., Pinto, R. S. ve Cadore, E. L. (2024). Curve sprint performance and speed-related capabilities in professional soccer players. Journal of Bodywork and Movement Therapies, 40, 1034-1040. https://doi.org/10.1016/j.jbmt.2024.07.018
  • Haugen, T. A., Tønnessen, E., Hisdal, J. ve Seiler, S. (2014). The role and development of sprinting speed in soccer. International Journal of Sports Physiology and Performance, 9(3), 432-441. https://doi.org/10.1123/ijspp.2013-0121
  • Ishimura, K. ve Sakurai, S. (2016). Asymmetry in determinants of running speed during curved sprinting. Journal of Applied Biomechanics, 32(4), 394-400. https://doi.org/10.1123/jab.2015-0127
  • Judson, L. J., Churchill, S. M., Barnes, A., Stone, J. A., Brookes, I. G. ve Wheat, J. (2020). Kinematic modifications of the lower limb during the acceleration phase of bend sprinting. Journal of Sports Sciences, 38(3), 336-342. https://doi.org/10.1080/02640414.2019.1699006
  • Kobal, R., Freitas, T. T., Fílter, A., Requena, B., Barroso, R., Rossetti, M., Jorge, R. M., Carvalho, L., Pereira, L. A. ve Loturco, I. (2021). Curve sprint in elite female soccer players: relationship with linear sprint and jump performance. International Journal of Environmental Research and Public Health, 18(5), 2306. https://doi.org/10.3390/ijerph18052306
  • Loturco, I., Pereira, L. A., Fílter, A., Olivares-Jabalera, J., Reis, V. P., Fernandes, V., Freitas, T. T. ve Requena, B. (2020). Curve sprinting in soccer: Relationship with linear sprints and vertical jump performance. Biology of Sport, 37(3), 277-283. https://doi.org/10.5114/biolsport.2020.96271
  • Osgnach, C., Poser, S., Bernardini, R., Rinaldo, R. ve Di Prampero, P. E. (2010). Energy cost and metabolic power in elite soccer: a new match analysis approach. Medicine and Science in Sports and Exercise, 42(1), 170-178. https://doi.org/10.1249/mss.0b013e3181ae5cfd
  • Paz Paz, E. O., Pérez Soriano, P. ve Encarnación Martínez, A. M. (2024). Effects of the sprint curve on spatiotemporal parameters: a systematic review, 41(4), 204-209. https://doi.org/10.18176/archmeddeporte.00175
  • Sašek, M., Šarabon, N. ve Smajla, D. (2024). Exploring the relationship between lower limb strength, strength asymmetries, and curvilinear sprint performance: Findings from a pilot study. Science Progress, 107(2). https://doi.org/10.1177/00368504241247998
  • Solleiro-Duran, D., Cidre-Fuentes, P., Rey, E., Baena-Raya, A., Filter, A. ve Padrón-Cabo, A. (2024). Effects of linear versus curvilinear sprint training on multidirectional speed in young soccer players: a randomized parallel-group trial. Biology of Sport, 42(1), 89-97. https://doi.org/10.5114/biolsport.2025.139084
  • Stølen, T., Chamari, K., Castagna, C. ve Wisløff, U. (2005). Physiology of soccer: an update. Sports Medicine, 35, 501-536. https://doi.org/10.2165/00007256-200535060-00004
  • Tomporowski, P. D. (2003). Cognitive and behavioral responses to acute exercise in youths: A review. Pediatric Exercise Science, 15(4), 348-359. https://doi.org/10.1123/pes.15.4.348
  • Verheul, J., Nedergaard, N. J., Pogson, M., Lisboa, P., Gregson, W., Vanrenterghem, J. ve Robinson, M. A. (2021). Biomechanical loading during running: can a two mass-spring-damper model be used to evaluate ground reaction forces for high-intensity tasks? Sports Biomechanics, 20(5), 571-582. https://doi.org/10.1080/14763141.2019.1584238
Toplam 29 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Antrenman, Motor Kontrol, Spor Biliminde Biyomekanik
Bölüm Makaleler
Yazarlar

Emrah Korkmaz 0000-0001-9894-2730

Ş. Alpan Cinemre 0000-0003-4955-2394

Savaş Kudaş 0000-0001-5756-6898

Hüseyin Çelik 0000-0001-8316-6468

Yayımlanma Tarihi 5 Eylül 2025
Gönderilme Tarihi 14 Mayıs 2025
Kabul Tarihi 11 Temmuz 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 36 Sayı: 3

Kaynak Göster

APA Korkmaz, E., Cinemre, Ş. A., Kudaş, S., Çelik, H. (2025). Futbolda Kavisli Sprint: Biyomekanik, Performans ve Pratik Uygulamalar. Spor Bilimleri Dergisi, 36(3), 202-210. https://doi.org/10.17644/sbd.1699001

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