arXiv:2606.22073cs.RO2026-06

通过弹簧离合器回收踏地能量,显著提升轮式步行机效率。

Dynamics, stability, and energy efficiency of an energy-recycling rimless wheel with spring-clutch legs

论文配图:Dynamics, stability, and energy efficiency of an energy-recycling rimless wheel with spring-clutch legs
图 1 · 摘自论文原文
  • 用可锁离合器存储踏地弹性能量并回注到下一周期。
  • 相比基准模型,能耗降低16.13%,比刚性轮子节能超50%。
  • 原型实测在1°斜坡实现无动力行走,适合仿生足式机器人研究。

本文提出一种带有弹簧-离合器腿的能源回收轮式步行机。该机构利用可锁离合器在脚部接触后储存部分冲击产生的弹性能量,并在下一步态周期中回注。首先构建了该能源回收轮式步行机的混合动力学模型;其次通过数值仿真分析其动力学特性、周期性步态的局部稳定性及运输成本(CoT)。结果表明,与基准的具有伸缩式弹簧-阻尼器腿的粘弹性轮式步行机相比,该机制可将CoT降低最多16.13%;相较于刚性轮式步行机,粘弹性与能源回收模型的CoT降幅均超过50%。能源回收模型在测试的坡度和刚度范围内保持局部稳定周期性步态。最后,在倾斜平面上进行了原型实验,结果表明该轮式步行机可在1°浅坡上实现被动行走,对应CoT约为0.02。这些结果说明所提弹簧-离合器机制能有效提升能源回收轮式步行机的模拟行走效率,原型实验也验证了该机制实现被动行走的可行性。

原文摘要 · Abstract (English)

This paper proposes an energy-recycling rimless wheel with spring-clutch legs. The proposed mechanism uses a lockable clutch to store part of the impact-induced elastic energy after foot contact and reinject it in the next gait cycle. First, we develop a hybrid dynamic model of the energy-recycling rimless wheel. Second, numerical simulations are used to examine the dynamics, local stability of periodic gaits, and the Cost of Transport (CoT) of the proposed mechanism. The simulation results show that the proposed mechanism reduces the CoT by up to 16.13% compared with a benchmark viscoelastic-legged rimless wheel with telescopic spring-damper legs. Compared with the rigid rimless wheel, the viscoelastic-legged and energy-recycling models reduce the CoT by more than 50%. The energy-recycling model also maintains locally stable periodic gaits over the tested slope and stiffness ranges. Finally, prototype experiments on an inclined plane are conducted to examine the feasibility of the proposed mechanism. The experimental results show that the proposed rimless wheel achieves passive walking on a shallow 1° slope, corresponding to a CoT of approximately 0.02. These results suggest that the proposed spring-clutch mechanism can improve the simulated walking efficiency of the energy-recycling rimless wheel, while the prototype experiments support the feasibility of passive walking with the mechanism.

足式机器人能量回收被动行走仿生设计

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