Author:
Song Yang,Cen Xuanzhen,Sun Dong,Bálint Kovács,Wang Yan,Chen Hairong,Gao Shunxiang,Bíró István,Zhang Ming,Gu Yaodong
Abstract
AbstractUsing a curved carbon-fiber plate (CFP) in running shoes may offer notable performance benefit over flat plates, yet there is a lack of research exploring the influence of CFP geometry on internal foot loading during running. The objective of this study was to investigate the effects of CFP mechanical characteristics on forefoot biomechanics in terms of plantar pressure, bone stress distribution, and contact force transmission during a simulated impact peak moment in forefoot strike running. We employed a finite element model of the foot-shoe system, wherein various CFP configurations, including three stiffnesses (stiff, stiffer, and stiffest) and two shapes (flat plate (FCFP) and curved plate (CCFP)), were integrated into the shoe sole. Comparing the shoes with no CFP (NCFP) to those with CFP, we consistently observed a reduction in peak forefoot plantar pressure with increasing CFP stiffness. This decrease in pressure was even more notable in a CCFP demonstrating a further reduction in peak pressure ranging from 5.51 to 12.62%, compared to FCFP models. Both FCFP and CCFP designs had a negligible impact on reducing the maximum stress experienced by the 2nd and 3rd metatarsals. However, they greatly influenced the stress distribution in other metatarsal bones. These CFP designs seem to optimize the load transfer pathway, enabling a more uniform force transmission by mainly reducing contact force on the medial columns (the first three rays, measuring 0.333 times body weight for FCFP and 0.335 for CCFP in stiffest condition, compared to 0.373 in NCFP). We concluded that employing a curved CFP in running shoes could be more beneficial from an injury prevention perspective by inducing less peak pressure under the metatarsal heads while not worsening their stress state compared to flat plates.
Funder
Research Academy of Medicine Combining Sports, Ningbo
Research Grants Council
Shenzhen Research Fund
Zhejiang Provincial Natural Science Foundation of China for Distinguished Young Scholars
Zhejiang Provincial Natural Science Foundation
Zhejiang Rehabilitation Medical Association Scientific Research Special Fund
the Project of NINGBO Leading Medical &Health Discipline
Public Welfare Science & Technology Project of Ningbo, China
Zhejiang Provincial Key Research and Development Program of China
Ningbo Natural Science Foundation
Publisher
Springer Science and Business Media LLC
Reference32 articles.
1. Nigg, B. M. et al. Highlighting the present state of biomechanics in shoe research (2000–2023). Footwear Sci. 1, 1–11 (2023).
2. Hunter, I. et al. Running economy, mechanics, and marathon racing shoes. J. Sports Sci. 37, 2367–2373 (2019).
3. Barnes, K. R. & Kilding, A. E. A randomized crossover study investigating the running economy of highly-trained male and female distance runners in marathon racing shoes versus track spikes. Sports Med. 49, 331–342 (2019).
4. Cigoja, S. et al. The effects of increased midsole bending stiffness of sport shoes on muscle-tendon unit shortening and shortening velocity: A randomised crossover trial in recreational male runners. Sports Med. 6, 1–11 (2020).
5. Cigoja, S. et al. Does increased midsole bending stiffness of sport shoes redistribute lower limb joint work during running? J. Sci. Med. Sport 22, 1272–1277 (2019).
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