Bumper Drone: Elastic Morphology Design for Aerial Physical Interaction
Abstract
Aerial robots are evolving from avoiding obstacles to exploiting the environmental contact interactions for navigation, exploration and manipulation. A key challenge in such aerial physical interactions lies in handling uncertain contact forces on unknown targets, which typically demand accurate sensing and active control. We present a drone platform with elastic horns that enables touch-and-go manoeuvres - a self-regulated, consecutive bumping motion that allows the drone to maintain proximity to a wall without relying on active obstacle avoidance. It leverages environmental interaction as a form of embodied control, where low-level stabilisation and near-obstacle navigation emerge from the passive dynamic responses of the drone-obstacle system that resembles a mass-spring-damper system. Experiments show that the elastic horn can absorb impact energy while maintaining vehicle stability, reducing pitch oscillations by 38% compared to the rigid horn configuration. The lower horn arrangement was found to reduce pitch oscillations by approximately 54%. In addition to intermittent contact, the platform equipped with elastic horns also demonstrates stable, sustained contact with static objects, relying on a standard attitude PID controller.
Cite
@article{arxiv.2602.18976,
title = {Bumper Drone: Elastic Morphology Design for Aerial Physical Interaction},
author = {Pongporn Supa and Alex Dunnett and Feng Xiao and Rui Wu and Mirko Kovac and Basaran Bahadir Kocer},
journal= {arXiv preprint arXiv:2602.18976},
year = {2026}
}
Comments
Accepted to the 9th IEEE-RAS International Conference on Soft Robotics (RoboSoft) 2026