Institute of Rehabilitation Engineering and Technology, University of Shanghai for Science and Technology, Shanghai, China.
Shanghai Engineering Research Center of Assistive Devices, Shanghai, China.
PLoS One. 2023 May 15;18(5):e0282800. doi: 10.1371/journal.pone.0282800. eCollection 2023.
This paper proposes the conceptual design method for a hybrid-actuated lower limb exoskeleton based on energy consumption simulation. Firstly, the human-machine coupling model is established in OpenSim based on the proposed three passive assistance schemes. On this basis, the method of simulating muscle driving is used to find out the scheme that can reduce the metabolic rate the most with 3 passive springs models. Then, an active-passive cooperative control strategy is designed based on the finite state machine to coordinate the operation of the power mechanism and the passive energy storage structure and improve the mobility of the wearer. In the end, a simulation experiment based on the human-machine coupled model with the addition of active actuation is proceeded to evaluate its assistance performance according to reducing metabolic rate. The results show that the average metabolic cost decreased by 7.2% with both spring and motor. The combination of passive energy storage structures with active actuators to help the wearer overcome the additional consumption of energy storage can further reduce the body's metabolic rate. The proposed conceptual design method can also be utilized to implement the rapid design of a hybrid-actuated lower limb exoskeleton.
本文提出了一种基于能量消耗模拟的混合驱动下肢外骨骼的概念设计方法。首先,基于所提出的三种被动辅助方案,在 OpenSim 中建立人机耦合模型。在此基础上,采用模拟肌肉驱动的方法,找出三个被动弹簧模型中能最大程度降低代谢率的方案。然后,基于有限状态机设计一种主动-被动协同控制策略,协调动力机构和被动储能结构的运行,提高穿戴者的机动性。最后,在添加主动驱动的人机耦合模型上进行仿真实验,根据降低代谢率的情况来评估其辅助性能。结果表明,弹簧和电机的组合使平均代谢成本降低了 7.2%。将被动储能结构与主动执行器相结合,帮助穿戴者克服额外的储能消耗,进一步降低了人体的代谢率。所提出的概念设计方法还可用于混合驱动下肢外骨骼的快速设计。