A transformable tethered aerial platform for robot-environment interactions

Improving the adaptability and versatility of micro aerial robots is crucial for expanding their application range. In this paper, we present a transformable tethered aerial platform composed of two bicopters tethered together with a cable, which is capable of mid-air transitions and robot-environment physical interactions. The platform can operate in three modes: free-flight mode, tethered-flight mode, and quadcopter mode. These modes are enabled by changing the tension and length of the cable, without the need for additional reconfiguration mechanisms. To fully exploit the capabilities of the proposed system, we derive the dynamic model of the platform and develop the control methods for each mode. The developed controller ensures stable flight in each mode and also enables the platform to operate with limited position feedback. We validate the feasibility of the transformable design through a series of experiments, demonstrating stable transitions between modes and effective physical interactions. Notably, by using the cable as an end effector, the platform can exert forces and torques on the environment through cable tension, eliminating the need for extra grippers or actuators and showcasing the versatility of the system in real-world tasks.

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Publication Details

Journal
The International Journal of Robotics Research
Published
2026-09-16
DOI
https://doi.org/10.1177/02783649261486468
Primary Topic
Soft Robotics and Applications
Type
article
Field-Weighted Citation Impact
0.00
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article

A transformable tethered aerial platform for robot-environment interactions

Songnan Bai, Pakpong Chirarattananon, Kaixu Dong, Hongqiang Wang et al.
The International Journal of Robotics Research
Soft Robotics and Applications
article

A transformable tethered aerial platform for robot-environment interactions

Songnan Bai, Pakpong Chirarattananon, Kaixu Dong, Hongqiang Wang, Ruobing Wang
article en

Abstract

Improving the adaptability and versatility of micro aerial robots is crucial for expanding their application range. In this paper, we present a transformable tethered aerial platform composed of two bicopters tethered together with a cable, which is capable of mid-air transitions and robot-environment physical interactions. The platform can operate in three modes: free-flight mode, tethered-flight mode, and quadcopter mode. These modes are enabled by changing the tension and length of the cable, without the need for additional reconfiguration mechanisms. To fully exploit the capabilities of the proposed system, we derive the dynamic model of the platform and develop the control methods for each mode. The developed controller ensures stable flight in each mode and also enables the platform to operate with limited position feedback. We validate the feasibility of the transformable design through a series of experiments, demonstrating stable transitions between modes and effective physical interactions. Notably, by using the cable as an end effector, the platform can exert forces and torques on the environment through cable tension, eliminating the need for extra grippers or actuators and showcasing the versatility of the system in real-world tasks.

The International Journal of Robotics Research
City University of Hong Kong (HK), University of Toronto (CA), Southern University of Science and Technology (CN), University of Hong Kong (HK)
Openalex Percentile: Top 20%
Soft Robotics and Applications
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A transformable tethered aerial platform for robot-environment interactions — Songnan Bai, Pakpong Chirarattananon, et al. · The International Journal of Robotics Research (2026) | TGRS Research Map | TGRS