Influence of the structural components of artificial turf systems on impact attenuation in amateur football players
Sánchez-Sánchez J, Gallardo-Guerrero AM, García-Gallart A, Sánchez-Sáez JA, Felipe JL, Encarnación-Martínez A
Scientific reports · 4 citations
Review labels
Neutral facts our review recorded about how this study was done. They describe method, never whether we like the result.
How it was studied
- Design
- Controlled clinical trial (classified by our AI screen)
- Studied in
- People
- Main outcome
- Mechanisms only
Who paid for it
- Funding
- Funding not disclosed
Publication
- Published
- 2019-05-23 · Sci Rep · vol. 9 · issue 1 · p. 7774
- Publisher
- Nature Portfolio
- Cited
- 8 citations · more than 58% of similar papers · 0.4× the field average
- References
- 58 works
- Access
- Open access (journal) · CC-BY
- Research areas
- Sports injuries and prevention · Sports Performance and Training · Lower Extremity Biomechanics and Pathologies
- Keywords
- Football players, Amateur, Accelerometer, Sprint, Football, Attenuation, Acceleration, Materials science, Animal science, Physics, Medicine, Biology, Physical therapy, Geography, Optics, Archaeology
- MeSH
- humans, running, acceleration, soccer, floors and floorcoverings, adult, male, young adult, athletes, biomechanical phenomena
6 authors
From ES
- Javier Sánchez‐Sánchez · correspondingUniversidad Europea de Madrid
- Ana María Gallardo GuerreroUniversidad Católica de Murcia
- Antonio García-GallartUniversidad Católica de Murcia
- Juan Antonio Sánchez-SáezUniversidad Católica de Murcia
- José Luis FelipeUniversidad Europea de Madrid
- Alberto Encarnación‐MartínezUniversitat de València
Abstract
The purpose of this research was to evaluate the influence of the structural components of different 3rd generation artificial turf football field systems on the biomechanical response of impact attenuation in amateur football players. A total of 12 amateur football players (24.3 ± 3.7 years, 73.5 ± 5.5 kg, 178.3 ± 4.1 cm and 13.7 ± 4.3 years of sport experience) were evaluated on three third generation artificial turf systems (ATS) with different structural components. ATS were composed of asphalt sub-base and 45 mm of fibre height with (ATS1) and without (ATS2) elastic layer or compacted granular sub-base, 60 mm of fibre height without elastic layer (ATS3). Two triaxial accelerometers were firmly taped to the forehead and the distal end of the right tibia of each individual. The results reveal a higher force reduction on ATS3 in comparison to ATS1 (+6.24%, CI95%: 1.67 to 10.92, ES: 1.07; p < 0.05) and ATS2 (+21.08%, CI95%: 16.51 to 25.66, ES: 2.98; p < 0.05) elastic layer. Tibia acceleration rate was lower on ATS3 than ATS1 (-0.32, CI95%: -0.60 to -0.03, ES: 4.23; p < 0.05) and ATS2 (-0.35, CI95%: -0.64 to -0.06; ES: 4.69; p < 0.05) at 3.3 m/s. A very large correlation (r = 0.7 to 0.9; p < 0.05) was found between energy restitution and fibre height in both head and tibial peak acceleration and stride time. In conclusion, structural components (fibre height, infill, sub-base and elastic layer) determine the mechanical properties of artificial turf fields. A higher force reduction and lower energy restitution diminished the impact received by the player which could protect against injuries associated with impacts compared to harder artificial turf surfaces.
Abstract via Europe PMC. Copyright remains with the authors or publisher (CC BY).
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