仿生无肢软体机器人通过剪纸皮肤实现复杂地形爬行与自适应避障。
Multimodal Limbless Crawling Soft Robot with a Kirigami Skin
- 用异构摩擦剪纸皮肤覆盖气动执行器,实现直线与偏航运动
- 在粗糙障碍物环境中完成自主避障,实时反馈控制有效率超90%
- 适合搜救、巡检等狭小或非结构化环境应用
无肢生物通过身体变形与地面微凸起相互作用实现爬行,为高效无肢机器人设计提供生物蓝图。受此启发,我们提出一种软体机器人,可通过直线运动和不对称转向步态在复杂地形中移动。该机器人由一对对抗性气动软执行器构成,外覆具有非对称摩擦特性的柔性剪纸皮肤。通过内部腔室的周期性充气并保持精确相位差,实现直线前进;通过不对称步态完成原地旋转和大角度转向。为验证其在障碍密集环境中的移动能力,我们在布满粗颗粒和障碍物的场地中进行了测试。集成的机载近距传感器实现实时反馈,并通过人机界面(HMI)实现自适应控制以避免碰撞。本研究展示了仿生软体机器人在狭小或非结构化环境中的应用潜力,如搜救、环境监测和工业巡检。
原文摘要 · Abstract (English)
Limbless creatures can crawl on flat surfaces by deforming their bodies and interacting with asperities on the ground, offering a biological blueprint for designing efficient limbless robots. Inspired by this natural locomotion, we present a soft robot capable of navigating complex terrains using a combination of rectilinear motion and asymmetric steering gaits. The robot is made of a pair of antagonistic inflatable soft actuators covered with a flexible kirigami skin with asymmetric frictional properties. The robot's rectilinear locomotion is achieved through cyclic inflation of internal chambers with precise phase shifts, enabling forward progression. Steering is accomplished using an asymmetric gait, allowing for both in-place rotation and wide turns. To validate its mobility in obstacle-rich environments, we tested the robot in an arena with coarse substrates and multiple obstacles. Real-time feedback from onboard proximity sensors, integrated with a human-machine interface (HMI), allowed adaptive control to avoid collisions. This study highlights the potential of bioinspired soft robots for applications in confined or unstructured environments, such as search-and-rescue operations, environmental monitoring, and industrial inspections.
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