OMPB: An Omnidirectional-Mobile Paddle Boat Designed for Narrow Water Areas
Abstract
1. Introduction
2. Prototype Design of OMPB
3. Model Description
3.1. Kinematic Model of OMPB
- (1)
- represents the motion coordinate system, where is the geometric center of the vessel. The x-axis always points towards the transverse axis of the vessel, and the y-axis is perpendicular to the x-axis.
- (2)
- and represent the components of the vector from the vessel’s center to the center of each paddle wheel, in the x-axis and y-axis directions, respectively, where , , and .
- (3)
- represents the heading angle of the vessel during motion.
- (4)
- represents the velocity of the vessel, with and representing its components along the x-axis and y-axis, respectively. It is worth noting that , . is the linear velocity of the -th paddle wheel.
- (5)
- represents the angular velocity of the vessel’s motion, positive in the counterclockwise direction. is the angular velocity of the -th paddle wheel.
- (6)
- represents the angle between the velocity vector on the paddle wheel and the x-axis of the vessel. Here, , where .
- (7)
- represents the radius of the i-th paddle wheel, where .
3.2. Dynamic Analysis of OMPB
4. Omnidirectional Movement Control of OMPB
4.1. Fuzzy Adaptive PID Control Algorithm
4.2. Fuzzy Controller for Paddle Wheel Speed
4.3. Simulink Simulation Analysis
4.4. Realization of Omnidirectional Movement Control
5. Experimental Results
6. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| OMPB | Omnidirectional-Mobile Paddle Boat |
| IMU | Inertial Measurement Unit |
| PID | Proportional–Integral–Derivative |
| USV | Unmanned Surface Vehicle |
| DC | Direct Current |
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| E | EC | ||||||
|---|---|---|---|---|---|---|---|
| NB | NM | NS | ZO | PS | PM | PB | |
| NB | NB/ZO/PS | NB/ZO/NS | NB/ZO/NB | NM/ZO/NB | NS/ZO/NB | NS/ZO/NM | ZO/ZO/PS |
| NM | NB/NM/PS | NB/NM/NS | NM/NS/NB | NS/NS/NM | NS/NS/NM | ZO/ZO/NS | PS/ZO/ZO |
| NS | NM/NB/ZO | NM/NM/NS | NM/NS/NM | NS/NS/NM | ZO/ZO/NS | PS/PS/NS | PS/PS/ZO |
| ZO | NM/NB/ZO | NM/NM/NS | NS/NS/NS | ZO/ZO/NS | PS/PS/NS | PM/PM/NS | PM/PB/ZO |
| PS | NS/NS/ZO | NS/NS/ZO | ZO/ZO/ZO | PS/PS/ZO | PS/PS/ZO | PM/PM/ZO | PM/PB/ZO |
| PM | NS/ZO/PB | ZO/ZO/NS | PS/PS/PS | PM/PS/PS | PM/PM/PS | PM/PM/PS | PB/PM/PB |
| PB | ZO/ZO/PB | PS/ZO/PM | PM/ZO/PM | PM/ZO/PM | PM/ZO/PS | PM/ZO/PS | PB/ZO/PB |














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Gan, Z.; Huang, Z.; Deng, B.; Gong, H. OMPB: An Omnidirectional-Mobile Paddle Boat Designed for Narrow Water Areas. Sensors 2026, 26, 866. https://doi.org/10.3390/s26030866
Gan Z, Huang Z, Deng B, Gong H. OMPB: An Omnidirectional-Mobile Paddle Boat Designed for Narrow Water Areas. Sensors. 2026; 26(3):866. https://doi.org/10.3390/s26030866
Chicago/Turabian StyleGan, Zhangze, Ziye Huang, Bin Deng, and Huangyu Gong. 2026. "OMPB: An Omnidirectional-Mobile Paddle Boat Designed for Narrow Water Areas" Sensors 26, no. 3: 866. https://doi.org/10.3390/s26030866
APA StyleGan, Z., Huang, Z., Deng, B., & Gong, H. (2026). OMPB: An Omnidirectional-Mobile Paddle Boat Designed for Narrow Water Areas. Sensors, 26(3), 866. https://doi.org/10.3390/s26030866

