Developing exoskeletons that can reduce the metabolic cost of assisted subjects is challenging since a systematic design approach is required to capture the effects of device dynamics and the assistance torques on human performance. Design studies that rely on musculoskeletal models hold high promise in providing effective design guidelines, as the effect of various devices and different assistance torque profiles on metabolic cost can be studied systematically. In this paper, we present a simulation-based multi-criteria design approach to systematically study the effect of different device kinematics and corresponding optimal assistive torque profiles under actuator saturation on the metabolic cost, muscle activation, and joint reaction forces of subjects walking under different loading conditions. For the multi-criteria comparison of exoskeletons, we introduce a Pareto optimization approach to simultaneously optimize the exoskeleton power consumption and the human metabolic rate reduction during walking, under different loading conditions. We further superpose the effects of device inertia and electrical regeneration on the metabolic rate and power consumption, respectively. Our results explain the effects of heavy loads on the optimal assistance profiles of the exoskeletons and provide guidelines on choosing optimal device configurations under actuator torque limitations, device inertia, and regeneration effects. The multi-criteria comparison of devices indicates that despite the similar assistance levels of both devices, mono-articular exoskeletons show better performance on reducing the peak reaction forces, while the power consumption of bi-articular devices is less sensitive to the loading. Furthermore, for the bi-articular exoskeletons, the device inertia has lower detrimental effects on the metabolic cost of subjects and does not affect the Pareto-optimality of solutions.
翻译:开发能够降低受助对象代谢成本的外骨灰素具有挑战性,因为需要系统的设计方法来捕捉装置动力和助力对人类性能的影响; 依靠肌肉骨骼模型进行的设计研究在提供有效设计指南方面很有希望,因为可以系统地研究各种装置和各种协助外骨灰素对代谢成本的影响; 在本文中,我们提出一个基于模拟的多标准设计方法,系统研究不同装置峰值动力学和相应的最佳助力硬化剖面貌对作用的影响; 在活动器饱和作用下,需要系统设计方法来捕捉装置的振动动力动力和助力; 在不同的装载条件下,依靠肌肉骨骼模型进行的设计研究在提供有效的设计指南,同时优化外骨骼电能消耗量和人类代谢率; 进一步强化设备惯性能和再生机能对机能反应的影响; 我们的结果说明了重载对在不同的装药成本、肌肉活性能作用下的最佳助力对机能结构的剖面的影响; 在类似性能限制下,我们选择最优性能装置的动作指针,显示最佳助力对最佳的助作用; 。