用可预测折叠+随机缠绕实现简单驱动的鲁棒抓取
Stochastic Entanglement of Deterministic Origami Tentacles For Robust Robotic Grasping

- 通过褶皱与穿孔设计,单根触手可实现定向卷曲
- 多触手在靠近时自发生随机缠绕,提升抓握稳定性
- 适合复杂形状物体抓取,尤其适用于太空或水下场景
受折纸启发的机器人夹持器因其紧凑体积和机械柔韧性,在物体操作任务中展现出巨大潜力。然而,在动态环境中抓取随机形状物体通常需要额外驱动通道和复杂控制。本文提出一种腱驱动的折纸触手夹持器,结合局部确定性变形编程与全局随机缠绕效应。每根触手具有特定位置的穿孔(用于腱线穿引)、折痕和锥形结构,通过合理设计可实现收缩、弯曲与扭转变形,仅靠一次腱拉即可产生确定性卷曲。当多个卷曲触手靠近时,会自发形成缠绕、打结,从而抓握随机形状物体。我们建立了一种融合折纸力学与柯西杆理论的仿真模型,关联设计参数、触手变形与集体抓取性能。实验验证了该系统在重力和水中抓取物体的能力,并测试了收起-释放部署机制,模拟轨道内抓取。整体表明,这种基于缠绕效应的触手夹持器,以简单设计和驱动实现了鲁棒抓取。
原文摘要 · Abstract (English)
Origami-inspired robotic grippers have shown promising potential for object manipulation tasks due to their compact volume and mechanical flexibility. However, robust capture of objects with random shapes in dynamic working environments often comes at the cost of additional actuation channels and control complexity. Here, we introduce a tendon-driven, robust origami tentacle gripper by exploiting a synergy between local, deterministic deformation programming and global, stochastic entanglements. Each tentacle features carefully placed holes (for routing an actuation tendon), origami creases, and a tapered shape. By tailoring these design features, one can prescribe the shrinking, bending, and twisting deformation, eventually creating deterministic coiling with a simple tendon pull. Then, when multiple coiling tentacles are placed in proximity, stochastic entanglement emerges, allowing the tentacles to braid, knot, and grip objects with random shapes. We derived a simulation model by integrating origami mechanics with Cosserat rods to correlate origami design, tentacle deformation, and collective grasping performance. Then, we experimentally tested how these entangling origami tentacles can grasp objects under gravity and in water. A stow-and-release deployment mechanism was also tested to simulate in-orbit grasping. Overall, this entanglement-enabled tentacle gripper presents a route toward robust object grasping with simple design and actuation.
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