举重鞋不同中底材料对抓举发力阶段运动员足部力学响应特性的影响
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1.北京体育大学 运动人体科学学院,北京;2.安踏中国有限公司 创新实验室,厦门

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Effect of Different Midsole Materials in Weightlifting Shoes on the Mechanical Response Characteristics of Athletes' Feet During the Snatch Force Generation Phase
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1.Sport Science School,Beijing Sport University, Beijing,China;2.Anta China Co,LTD Innovation Laboratory, Xiamen,China

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    摘要:

    目的 建立足-举重鞋耦合模型,探讨中底材料变化如何影响抓举发力阶段的足部生物力学,优化举重鞋关键参数设置,降低运动员足踝损伤风险。方法 使用有限元方法构建足-举重鞋有限元模型并进行仿真计算,使用运动生物力学方法获取抓举动作运动学和动力学数据,使用统计方法验证模型有效性、对比抓举发力阶段举重鞋不同材料对运动员足底应力分布、骨骼应力、软组织应力及中底应变的影响。结果 中底热塑性聚氨酯(TPU)杨氏模量20MPa时运动员足底应力峰值达到最小,随后中底TPU杨氏模量的增大,足底应力峰值也随之增大;足部骨骼应力集中分布在足前掌第三、四和五跖骨处,第四跖骨出现应力峰值;中底杨氏模量的增大,跖骨区应力峰值逐渐降低,软组织应力峰值逐渐增大,中底应变降低。结论 中等硬度中底材料杨氏模量20-25MPa在减小足底压力和预防足踝骨骼损伤方面具有优势。

    Abstract:

    Objective To develop a foot-weightlifting shoe coupling model to explore how changes in midsole materials influence the biomechanics of the foot during the force generation phase of the snatch. The goal is to optimize key parameters of weightlifting shoe design to reduce the risk of foot and ankle injuries in athletes. Methods A finite element model of the foot-weightlifting shoe system was constructed and simulated using finite element analysis (FEA). Biomechanical methods were used to collect kinematic and kinetic data from the snatch movement, and statistical analysis was employed to validate the model's accuracy. Comparative analyses were then conducted to assess the effects of different midsole materials on plantar stress distribution, skeletal stress, soft tissue stress, and midsole strain during the force generation phase. Results When the Young's modulus of the thermoplastic polyurethane (TPU) midsole was set to 20 MPa, the peak plantar stress on the athlete's foot was minimized. However, as the Young's modulus of the TPU midsole increased, the peak plantar stress also rose. Skeletal stress was primarily concentrated in the third, fourth, and fifth metatarsals, with a peak stress observed at the fourth metatarsal. Additionally, increasing the midsole's Young's modulus led to a decrease in peak stress in the metatarsal region, an increase in peak soft tissue stress, and a reduction in midsole strain. Conclusions Midsole materials with moderate hardness, specifically a Young's modulus of 20-25 MPa, show advantages in reducing plantar pressure and preventing bone injuries in the foot and ankle.

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  • 收稿日期:2024-09-26
  • 最后修改日期:2024-11-13
  • 录用日期:2024-11-13
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