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1
Foot tissue stress in chronic ankle instability during the stance phase of cutting.在切入动作的站立阶段,慢性踝关节不稳时足部组织的应力。
Med Biol Eng Comput. 2025 May;63(5):1507-1519. doi: 10.1007/s11517-024-03276-9. Epub 2025 Jan 15.
2
The impact of toe spring and foot strike angle on forefoot running biomechanics: a finite element analysis.趾屈角和着地角度对前脚掌跑步生物力学的影响:有限元分析
Comput Methods Biomech Biomed Engin. 2024 Sep 16:1-11. doi: 10.1080/10255842.2024.2402860.
3
Running Shoes of the Postmodern Footwear Era: A Narrative Overview of Advanced Footwear Technology.后现代鞋类时代的跑鞋:高级鞋类技术的叙事概述。
Int J Sports Physiol Perform. 2024 Aug 7;19(10):975-986. doi: 10.1123/ijspp.2023-0446. Print 2024 Oct 1.
4
Curved carbon-plated shoe may further reduce forefoot loads compared to flat plate during running.在跑步时,弯曲的碳纤维鞋底可能比平底鞋进一步减少前足的负荷。
Sci Rep. 2024 Jun 8;14(1):13215. doi: 10.1038/s41598-024-64177-3.
5
Can the Entire Function of the Foot Be Concentrated in the Forefoot Area during the Running Stance Phase? A Finite Element Study of Different Shoe Soles.在跑步支撑阶段,足部的全部功能能否集中在前脚掌区域?不同鞋底的有限元研究。
J Hum Kinet. 2023 Nov 28;92:5-17. doi: 10.5114/jhk/174311. eCollection 2024 Apr.
6
A hybrid statistical morphometry free-form deformation approach to 3D personalized foot-ankle models.一种混合统计形态计量自由形态变形方法,用于 3D 个性化足踝模型。
J Biomech. 2024 May;168:112120. doi: 10.1016/j.jbiomech.2024.112120. Epub 2024 Apr 23.
7
Effects of different contact angles during forefoot running on the stresses of the foot bones: a finite element simulation study.前足跑步时不同接触角对足部骨骼应力的影响:一项有限元模拟研究
Front Bioeng Biotechnol. 2024 Feb 8;12:1337540. doi: 10.3389/fbioe.2024.1337540. eCollection 2024.
8
Towards functionally individualised designed footwear recommendation for overuse injury prevention: a scoping review.迈向针对过度使用损伤预防的功能个性化设计鞋类推荐:一项范围综述
BMC Sports Sci Med Rehabil. 2023 Nov 11;15(1):152. doi: 10.1186/s13102-023-00760-x.
9
Effects of Midsole Hardness on the Mechanical Response Characteristics of the Plantar Fascia during Running.中底硬度对跑步过程中足底筋膜力学响应特性的影响
Bioengineering (Basel). 2023 Apr 27;10(5):533. doi: 10.3390/bioengineering10050533.
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The influence of running shoe with different carbon-fiber plate designs on internal foot mechanics: A pilot computational analysis.不同碳纤维板设计的跑鞋对足部内部力学的影响:初步计算分析。
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跑步鞋生物力学中有限元分析的系统评价:对与跑步相关的肌肉骨骼损伤的见解

A Systematic Review of Finite Element Analysis in Running Footwear Biomechanics: Insights for Running-Related Musculoskeletal Injuries.

作者信息

Song Yang, Cen Xuanzhen, Wang Meizi, Gao Zixiang, Tan Qitao, Sun Dong, Gu Yaodong, Wang Yan, Zhang Ming

机构信息

Department of Biomedical Engineering, The Hong Kong Polytechnic University, Hong Kong SAR, China.

Faculty of Sports Science, Ningbo University, Ningbo, China.

出版信息

J Sports Sci Med. 2025 Jun 1;24(2):370-387. doi: 10.52082/jssm.2025.370. eCollection 2025 Jun.

DOI:10.52082/jssm.2025.370
PMID:40469859
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12131137/
Abstract

This study presented a systematic review of recent advancements in the application of finite element (FE) methods to running and running shoe biomechanics. It focused on outlining the general approach to build foot-running shoe FE models, exploring their current applications and challenges, and providing directions for future research. The review also aimed to highlight the gap between theoretical mechanical responses in simulations and real-world manifestations of running-related musculoskeletal injuries (RRMI). A comprehensive search of electronic databases, including Web of Science, PubMed, and Scopus, identified 12 eligible articles for inclusion in this review. Current studies have examined the effects of various running shoe design features and conditions on the mechanical response of internal foot tissues using foot-running shoe FE models. These models have gradually evolved from simplified local representations to more realistic and comprehensive models, with the incorporation of experimental data enhancing simulation accuracy. However, to further improve simulation outcomes, key advancements are proposed to reduce development time and enhance model robustness. These include high-fidelity 3D model development, personalized shape transformation, AI-driven automated reconstruction, comprehensive dynamic running simulations, and improved validation methods. More importantly, future research needs to bridge the gap between FE simulations and RRMI risk by addressing the complexities of bone fracture criteria and conducting localized assessments of bone properties. Overall, this review provided valuable insights for biomedical engineers, medical professionals, and researchers, facilitating more accurate investigations of foot-running shoe FE models. Ultimately, these advancements aim to improve footwear design and training programs to reduce the risk of RRMI.

摘要

本研究对有限元(FE)方法在跑步及跑鞋生物力学应用中的最新进展进行了系统综述。它着重概述了构建足部 - 跑鞋有限元模型的一般方法,探讨其当前应用及挑战,并为未来研究提供方向。该综述还旨在突出模拟中的理论力学响应与跑步相关肌肉骨骼损伤(RRMI)的现实表现之间的差距。通过对包括科学网、PubMed和Scopus在内的电子数据库进行全面检索,确定了12篇符合条件的文章纳入本综述。当前研究已使用足部 - 跑鞋有限元模型研究了各种跑鞋设计特征和条件对足部内部组织力学响应的影响。这些模型已从简化的局部表示逐渐演变为更真实、更全面的模型,实验数据的纳入提高了模拟精度。然而,为进一步改善模拟结果,提出了关键进展以减少开发时间并增强模型稳健性。这些包括高保真3D模型开发、个性化形状变换、人工智能驱动的自动重建、全面的动态跑步模拟以及改进的验证方法。更重要的是,未来研究需要通过解决骨折标准的复杂性并对骨特性进行局部评估来弥合有限元模拟与RRMI风险之间的差距。总体而言,本综述为生物医学工程师、医学专业人员和研究人员提供了有价值的见解,有助于更准确地研究足部 - 跑鞋有限元模型。最终,这些进展旨在改进鞋类设计和训练计划,以降低RRMI风险。