用可重构流体系统实现高效多能负载机器人,省电4.8倍。
Reconfigurable hydrostatics: Toward versatile and efficient load-bearing robotics
- 通过流体域集成被动受力与共享机制,实现多功能轻量化设计。
- 实测步行能耗比全驱动方案低4.8倍,动态响应良好。
- 适合需要高效率与多任务适应性的外骨骼和足式机器人开发者。
穿戴式与足式机器人在执行机构选择上面临多重挑战。传统全驱动设计虽多功能但体积大、效率低,且难以反向驱动;而准被动与欠驱动设计虽减少电机与储能需求,却常针对特定任务。若未来执行器不实现高扭矩密度、可反向驱动与高效率,设计师将难有突破。本文提出一种可重构流体系统的设计范式。研究显示,液压执行器可在流体域内集成被动受力机制与能量共享机制,同时保持多功能性。理论分析比较了两种机制对驱动需求的影响;随后提出基于液压组件的实现方案。案例分析表明,该设计在质量、效率与惯量方面优于全驱动方案。机器人腿实验验证了其在控制条件下实现力跟踪、多功能性与高效率:可准确复现行走、跑步、深蹲、跳跃等步态的垂直地面反作用力(GRF)曲线,步行能耗降低4.8倍。此外,还分析了双腿切换时的瞬态力行为,并提出改进方法。
原文摘要 · Abstract (English)
Wearable and legged robot designers face multiple challenges when choosing actuation. Traditional fully actuated designs using electric motors are multifunctional but oversized and inefficient for bearing conservative loads and for being backdrivable. Alternatively, quasi-passive and underactuated designs reduce the amount of motorization and energy storage, but are often designed for specific tasks. Designers of versatile and stronger wearable robots will face these challenges unless future actuators become very torque-dense, backdrivable and efficient This paper explores a design paradigm for addressing this issue: reconfigurable hydrostatics. We show that a hydrostatic actuator can integrate a passive force mechanism and a sharing mechanism in the fluid domain and still be multifunctional. First, an analytical study compares the effect of these two mechanisms on the motorization requirements in the context of a load-bearing exoskeleton. Then, the hydrostatic concept integrating these two mechanisms using hydraulic components is presented. A case study analysis shows the mass/efficiency/inertia benefits of the concept over a fully actuated one. Then, experiments are conducted on robotic legs to demonstrate that the actuator concept can meet the expected performance in terms of force tracking, versatility, and efficiency under controlled conditions. The proof-of-concept can track the vertical ground reaction force (GRF) profiles of walking, running, squatting, and jumping, and the energy consumption is 4.8x lower for walking. The transient force behaviors due to switching from one leg to the other are also analyzed along with some mitigation to improve them.
Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。