Biomechanical models in the lower-limb exoskeletons development: a review.

IF 5.2 2区 医学 Q1 ENGINEERING, BIOMEDICAL Journal of NeuroEngineering and Rehabilitation Pub Date : 2025-01-24 DOI:10.1186/s12984-025-01556-5
Vahid Firouzi, Andre Seyfarth, Seungmoon Song, Oskar von Stryk, Maziar Ahmad Sharbafi
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Abstract

Lower limb exoskeletons serve multiple purposes, like supporting and augmenting movement. Biomechanical models are practical tools to understand human movement, and motor control. This paper provides an overview of these models and a comprehensive review of the current applications of them in assistive device development. It also critically analyzes the existing literature to identify research gaps and suggest future directions. Biomechanical models can be broadly classified as conceptual and detailed models and can be used for the design, control, and assessment of exoskeletons. Also, these models can estimate unmeasurable or hard-to-measure variables, which is also useful within the aforementioned applications. We identified the validation of simulation studies and the enhancement of the accuracy and fidelity of biomechanical models as key future research areas for advancing the development of assistive devices. Additionally, we suggest using exoskeletons as a tool to validate and refine these models. We also emphasize the exploration of model-based design and control approaches for exoskeletons targeting pathological gait, and utilizing biomechanical models for diverse design objectives of exoskeletons. In addition, increasing the availability of open source resources accelerates the advancement of the exoskeleton and biomechanical models. Although biomechanical models are widely applied to improve movement assistance and rehabilitation, their full potential in developing human-compatible exoskeletons remains underexplored and requires further investigation. This review aims to reveal existing needs and cranks new perspectives for developing more effective exoskeletons based on biomechanical models.

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下肢外骨骼发育的生物力学模型综述。
下肢外骨骼有多种用途,比如支持和增强运动。生物力学模型是理解人体运动和运动控制的实用工具。本文概述了这些模型,并全面回顾了目前它们在辅助装置开发中的应用。它也批判性地分析现有的文献,以确定研究差距和建议未来的方向。生物力学模型大致可分为概念模型和详细模型,可用于外骨骼的设计、控制和评估。此外,这些模型可以估计不可测量或难以测量的变量,这在上述应用程序中也很有用。我们确定了仿真研究的验证和提高生物力学模型的准确性和保真度是推动辅助设备发展的关键未来研究领域。此外,我们建议使用外骨骼作为验证和完善这些模型的工具。我们还强调探索针对病理步态的外骨骼基于模型的设计和控制方法,并利用生物力学模型实现外骨骼的多种设计目标。此外,增加开放资源的可用性加速了外骨骼和生物力学模型的进步。尽管生物力学模型被广泛应用于改善运动辅助和康复,但它们在开发与人类兼容的外骨骼方面的全部潜力仍未得到充分发掘,需要进一步研究。本文旨在揭示现有的需求,并为基于生物力学模型开发更有效的外骨骼开辟新的视角。
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来源期刊
Journal of NeuroEngineering and Rehabilitation
Journal of NeuroEngineering and Rehabilitation 工程技术-工程:生物医学
CiteScore
9.60
自引率
3.90%
发文量
122
审稿时长
24 months
期刊介绍: Journal of NeuroEngineering and Rehabilitation considers manuscripts on all aspects of research that result from cross-fertilization of the fields of neuroscience, biomedical engineering, and physical medicine & rehabilitation.
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