Design optimization platform for assistive wearable devices applied to a knee damper exoskeleton.

IF 2.8 Q2 ENGINEERING, BIOMEDICAL
Wearable technologies Pub Date : 2025-07-10 eCollection Date: 2025-01-01 DOI:10.1017/wtc.2025.10016
Asghar Mahmoudi, Stephan Rinderknecht, Andre Seyfarth, Maziar A Sharbafi
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引用次数: 0

Abstract

Designing optimal assistive wearable devices is a complex task, often addressed using human-in-the-loop optimization and biomechanical modeling approaches. However, as the number of design parameters increases, the growing complexity and dimensionality of the design space make identifying optimal solutions more challenging. Predictive simulation, which models movement without relying on experimental data, provides a powerful tool for anticipating the effects of assistive devices on the human body and guiding the design process. This study aims to introduce a design optimization platform that leverages predictive simulation of movement to identify the optimal parameters for assistive wearable devices. The proposed approach is specifically capable of dealing with the challenges posed by high-dimensional design spaces. The proposed framework employs a two-layered optimization approach, with the inner loop solving the predictive simulation of movement and the outer loop identifying the optimal design parameters of the device. It is utilized for designing a knee exoskeleton with a damper to assist level-ground and downhill gait, achieving a significant reduction in normalized knee load peak value by for level-ground and by for downhill walking, along with a decrease in the cost of transport. The results indicate that the optimal device applies damping torques to the knee joint during the Stance phase of both movement scenarios, with different optimal damping coefficients. The optimization framework also demonstrates its capability to reliably and efficiently identify the optimal solution. It offers valuable insight for the initial design of assistive wearable devices and supports designers in efficiently determining the optimal parameter set.

应用于膝关节减振器外骨骼的辅助可穿戴设备设计优化平台。
设计最佳的辅助可穿戴设备是一项复杂的任务,通常使用人在环优化和生物力学建模方法来解决。然而,随着设计参数数量的增加,设计空间的复杂性和维度的增加使得识别最佳解决方案更具挑战性。预测仿真是一种不依赖实验数据的运动模型,为预测辅助设备对人体的影响和指导设计过程提供了有力的工具。本研究旨在引入一个设计优化平台,利用运动预测模拟来识别辅助可穿戴设备的最佳参数。所提出的方法特别能够处理高维设计空间带来的挑战。该框架采用两层优化方法,内环求解运动预测仿真,外环识别设备的最优设计参数。利用该方法设计了一种带阻尼器的膝关节外骨骼,以辅助平地和下坡步态,实现了平地和下坡行走的标准化膝关节负荷峰值显著降低,同时降低了运输成本。结果表明,在两种运动场景中,最优装置在不同的最优阻尼系数下对膝关节施加的阻尼力矩不同。该优化框架能够可靠、高效地识别最优解。它为辅助可穿戴设备的初始设计提供了有价值的见解,并支持设计人员有效地确定最佳参数集。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
0.00%
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0
审稿时长
11 weeks
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