用螺旋桨辅助实现3D跳跃机器人的稳定飞行控制
Propeller-Assisted Robust 3D Hopping Robot with Hierarchical Force Allocation

- 分层力分配框架协调腿部接触力与螺旋桨推力
- 可在室内外完成地形切换和突发动量恢复
- 适合研究足式机器人动态控制与飞行协同
单足跳跃机器人结构简单但高度动态且固有不稳定。实现稳健的3D跳跃仍具挑战,因地面反作用力仅在短暂支撑期可用,而飞行阶段机器人处于欠驱动状态。核心难题是如何提升飞行阶段的控制能力。螺旋桨辅助提供了可行方案,但需精细协调支撑与飞行阶段的腿接触力与螺旋桨推力。本文提出Pro-OMEGA2,一种带主动3-RSR并联腿和机身上三旋翼的螺旋桨辅助3D单足跳跃机器人。为解决力协调问题,提出基于单刚体(SRB)模型的分层力分配(HFA)框架:腿产生主要支撑接触力矩,三旋翼提供辅助姿态调节,在支撑阶段补偿残余姿态力矩,并在飞行中维持姿态。室内与室外真实机器人实验验证了持续3D跳跃能力,包括地形转换和突发动量恢复,表明在未建模接触与外部干扰下具有鲁棒性。
原文摘要 · Abstract (English)
Monopedal hopping robots are conceptually simple but highly dynamic and inherently unstable. Achieving robust 3D hopping is still difficult because ground reaction forces are available only during the short stance phase, while the robot is underactuated in flight. A key unresolved issue is how to improve flight-phase control authority. Propeller assistance provides a promising solution, but it requires careful coordination of leg-generated contact forces and propeller thrusts across stance and flight. This paper presents Pro-OMEGA2, a propeller-assisted 3D monopedal hopping robot with an active 3-RSR parallel leg and a trunk-mounted tri-rotor for auxiliary attitude regulation. To address the force coordination challenge, we propose a Hierarchical Force Allocation (HFA) framework based on a single rigid body (SRB) model. The leg generates the main stance contact wrench, while the tri-rotor provides auxiliary attitude regulation, compensating the residual attitude moment in stance and maintaining attitude during flight. Real-robot experiments in indoor and outdoor scenarios demonstrate sustained 3D hopping, including terrain transitions and impulsive push recovery, validating robustness under unmodeled contact and external disturbances.
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