Department of Agricultural and Biological Engineering, Mississippi State University, Mississippi, MS 39762; Center of Advanced Vehicular System (CAVS), Mississippi State University, Mississippi, MS 39762.
Center of Advanced Vehicular System (CAVS), Mississippi State University, Mississippi, MS 39762.
J Biomech Eng. 2021 Sep 1;143(9). doi: 10.1115/1.4050667.
Computational approaches, especially finite element analysis (FEA), have been rapidly growing in both academia and industry during the last few decades. FEA serves as a powerful and efficient approach for simulating real-life experiments, including industrial product development, machine design, and biomedical research, particularly in biomechanics and biomaterials. Accordingly, FEA has been a "go-to" high biofidelic software tool to simulate and quantify the biomechanics of the foot-ankle complex, as well as to predict the risk of foot and ankle injuries, which are one of the most common musculoskeletal injuries among physically active individuals. This paper provides a review of the in silico FEA of the foot-ankle complex. First, a brief history of computational modeling methods and finite element (FE) simulations for foot-ankle models is introduced. Second, a general approach to build an FE foot and ankle model is presented, including a detailed procedure to accurately construct, calibrate, verify, and validate an FE model in its appropriate simulation environment. Third, current applications, as well as future improvements of the foot and ankle FE models, especially in the biomedical field, are discussed. Finally, a conclusion is made on the efficiency and development of FEA as a computational approach in investigating the biomechanics of the foot-ankle complex. Overall, this review integrates insightful information for biomedical engineers, medical professionals, and researchers to conduct more accurate research on the foot-ankle FE models in the future.
在过去几十年中,计算方法,特别是有限元分析(FEA),在学术界和工业界都得到了迅速发展。FEA 是一种强大而有效的模拟真实实验的方法,包括工业产品开发、机械设计和生物医学研究,特别是在生物力学和生物材料领域。因此,FEA 已成为模拟和量化足踝复合体生物力学以及预测足踝损伤风险的首选高保真度软件工具之一,而足踝损伤是活跃人群中最常见的肌肉骨骼损伤之一。本文对足踝复合体的计算机有限元分析进行了综述。首先,简要介绍了计算建模方法和足踝模型的有限元(FE)模拟的历史。其次,提出了一种构建 FE 足踝模型的一般方法,包括准确构建、校准、验证和验证 FE 模型在适当模拟环境中的详细步骤。第三,讨论了足踝 FE 模型的当前应用以及未来的改进,特别是在生物医学领域。最后,对 FEA 作为一种研究足踝复合体生物力学的计算方法的效率和发展进行了总结。总的来说,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见地的信息,以便他们在未来对足踝 FE 模型进行更准确的研究。