4.5 Article

Development and Validation of a Subject-Specific Coupled Model for Foot and Sports Shoe Complex: A Pilot Computational Study

期刊

BIOENGINEERING-BASEL
卷 9, 期 10, 页码 -

出版社

MDPI
DOI: 10.3390/bioengineering9100553

关键词

finite element modeling; foot; sports shoe; biomechanics; contact interaction; balanced standing; model validation

资金

  1. Major Program of the National Social Science Foundation of China [19ZDA352]
  2. Zhejiang Province Science Fund for Distinguished Young Scholars [R22A021199]
  3. Public Welfare Science and Technology Project of Ningbo, China [2021S133]
  4. K. C. Wong Magna Fund in Ningbo University
  5. China Scholarship Council (CSC)

向作者/读者索取更多资源

In this study, a 3D finite element coupled model was developed and validated for investigating the biomechanical interactions between the foot and sports shoe complex during balanced standing. The simulation results showed good consistency with experimental data, indicating the potential applications of the model in optimizing footwear design.
Nowadays, footwear serves an essential role in improving athletic performance and decreasing the risk of unexpected injuries in sports games. Finite element (FE) modeling is a powerful tool to reveal the biomechanical interactions between foot and footwear, and establishing a coupled foot-shoe model is the prerequisite. The purpose of this pilot study was to develop and validate a 3D FE coupled model of the foot and sports shoe complex during balanced standing. All major foot and shoe structures were constructed based on the participant's medical CT images, and 3D gait analysis was conducted to define the loading and boundary conditions. Sensitivity analysis was applied to determine the optimum material property for shoe sole. Both the plantar and shoe sole areas were further divided into four regions for model validation, and the Bland-Altman method was used for consistency analysis between methods. The simulated peak plantar and sole pressure distribution showed good consistency with experimental pressure data, and the prediction errors were all less than 10% during balanced standing with only two exceptions (medial and lateral forefoot regions). Meanwhile, the Bland-Altman analysis demonstrated a good agreement between the two approaches. The sensitivity analysis suggested that shoe sole with Young's modulus of 2.739 MPa presented the greatest consistency with the measured data in our scenario. The established model could be used for investing the complex biomechanical interactions between the foot and sports shoe and optimizing footwear design, after it has been fully validated in the subsequent works under different conditions.

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