A Tilt-Rotor UAV with a Gripper for Stable Contact-Based Tasks via Environmental Anchoring

2026-08-03Robotics

Robotics
AI summary

The authors created a drone that can switch from flying freely to grabbing onto something nearby to stay steady while working. Their drone has special rotors that let it hover even when tilted forward and a flexible gripper that attaches to different shapes to hold the drone in place. Tests showed that grabbing onto things made the drone much more stable, even in wind, allowing precise work like drilling or placing sensors. This approach helps drones do tasks that need them to stay very still while touching objects.

aerial robotsUAVmultirotortilt-rotor mechanismprismatic grippercompliancepositional driftenvironmental anchoringreaction forcephysical interaction tasks
Authors
Joshua Taylor, Nursultan Imanberdiyev, Wei-Yun Yau, Guillaume Sartoretti, Efe Camci
Abstract
Maintaining a stable pose during physical interaction is a significant challenge for aerial robots, often limiting their use in contact-based tasks. This paper presents a novel uncrewed aerial vehicle (UAV) platform designed to transition from unconstrained flight to a stable, constrained work platform via environmental anchoring. Our system comprises: 1) a multirotor with a tilt-rotor mechanism that decouples pitch from forward motion, enabling stable hover at non-zero pitch angles, and 2) a novel underactuated, cable-driven, prismatic gripper featuring compliance to adapt to irregular geometries, designed to stabilize the UAV by anchoring it to its environment. We present the design and prototyping of the complete system and validate its performance through a series of real-robot flight tests. Results demonstrate that anchoring significantly improves stability for interaction tasks, reducing positional drift RMSE by over 95% compared to a free-flight baseline, even under windy conditions. The anchored system can withstand longitudinal reaction forces up to 75N while maintaining a stable pose. Furthermore, across a range of target geometries and orientations, the system demonstrated consistent stability with a positional drift RMSE that never exceeded 3mm. These results establish the viability of our approach for complex physical interaction tasks, such as sampling tree health by drilling or sensor installation in hard-to-reach locations. Watch our UAV at: https://youtu.be/HDQ8S4ZW3Ls