TriphiBot: A Triphibious Robot Combining FOC-based Propulsion with Eccentric Design

Fuente: arXiv
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Hauptverfasser: Li, Xiangyu, Lai, Mingwei, Zhang, Mengke, Lin, Junxiao, Lai, Tiancheng, Zhi, Junping, Xu, Chao, Gao, Fei, Cao, Yanjun
Format: Preprint
Veröffentlicht: 2026
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author Li, Xiangyu
Lai, Mingwei
Zhang, Mengke
Lin, Junxiao
Lai, Tiancheng
Zhi, Junping
Xu, Chao
Gao, Fei
Cao, Yanjun
author_facet Li, Xiangyu
Lai, Mingwei
Zhang, Mengke
Lin, Junxiao
Lai, Tiancheng
Zhi, Junping
Xu, Chao
Gao, Fei
Cao, Yanjun
contents Triphibious robots capable of multi-domain motion and cross-domain transitions are promising to handle complex tasks across diverse environments. However, existing designs primarily focus on dual-mode platforms, and some designs suffer from high mechanical complexity or low propulsion efficiency, which limits their application. In this paper, we propose a novel triphibious robot capable of aerial, terrestrial, and aquatic motion, by a minimalist design combining a quadcopter structure with two passive wheels, without extra actuators. To address inefficiency of ground-support motion (moving on land/seabed) for quadcopter based designs, we introduce an eccentric Center of Gravity (CoG) design that inherently aligns thrust with motion, enhancing efficiency without specialized mechanical transformation designs. Furthermore, to address the drastic differences in motion control caused by different fluids (air and water), we develop a unified propulsion system based on Field-Oriented Control (FOC). This method resolves torque matching issues and enables precise, rapid bidirectional thrust across different mediums. Grounded in the perspective of living condition and ground support, we analyse the robot's dynamics and propose a Hybrid Nonlinear Model Predictive Control (HNMPC)-PID control system to ensure stable multi-domain motion and seamless transitions. Experimental results validate the robot's multi-domain motion and cross-mode transition capability, along with the efficiency and adaptability of the proposed propulsion system.
format Preprint
id arxiv_https___arxiv_org_abs_2602_01385
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle TriphiBot: A Triphibious Robot Combining FOC-based Propulsion with Eccentric Design
Li, Xiangyu
Lai, Mingwei
Zhang, Mengke
Lin, Junxiao
Lai, Tiancheng
Zhi, Junping
Xu, Chao
Gao, Fei
Cao, Yanjun
Robotics
Triphibious robots capable of multi-domain motion and cross-domain transitions are promising to handle complex tasks across diverse environments. However, existing designs primarily focus on dual-mode platforms, and some designs suffer from high mechanical complexity or low propulsion efficiency, which limits their application. In this paper, we propose a novel triphibious robot capable of aerial, terrestrial, and aquatic motion, by a minimalist design combining a quadcopter structure with two passive wheels, without extra actuators. To address inefficiency of ground-support motion (moving on land/seabed) for quadcopter based designs, we introduce an eccentric Center of Gravity (CoG) design that inherently aligns thrust with motion, enhancing efficiency without specialized mechanical transformation designs. Furthermore, to address the drastic differences in motion control caused by different fluids (air and water), we develop a unified propulsion system based on Field-Oriented Control (FOC). This method resolves torque matching issues and enables precise, rapid bidirectional thrust across different mediums. Grounded in the perspective of living condition and ground support, we analyse the robot's dynamics and propose a Hybrid Nonlinear Model Predictive Control (HNMPC)-PID control system to ensure stable multi-domain motion and seamless transitions. Experimental results validate the robot's multi-domain motion and cross-mode transition capability, along with the efficiency and adaptability of the proposed propulsion system.
title TriphiBot: A Triphibious Robot Combining FOC-based Propulsion with Eccentric Design
topic Robotics
url https://arxiv.org/abs/2602.01385