Development of a Speed Control Device for Fishing Vessels at Low Speeds and Simulation of the Control System
Abstract
:1. Introduction
1.1. Automatic Speed Control Systems
1.2. Trawl Fishing Methods
2. Objective
3. Methods
3.1. Control Modeling
3.2. Various Control Methods (Proportional Control)
3.3. Various Control Methods (Proportional–Integral (PI) Control)
3.4. Various Control Methods (I-P control, 2-DOF PI Control)
3.5. Methods for Studying the Effects of Disturbances
3.6. Software and Experiments
4. Results
4.1. Model to Be Controlled
4.2. Various Control Results (Proportional Control)
4.3. Various Control Results (Proportional–Integral (PI) Control)
4.4. Various Control Results (I-P Control, 2-DOF PI Control)
4.5. Results of the Effects of Disturbances
4.6. Summary of Results
5. Discussion
5.1. The Model to Be Controlled
5.2. Various Control Methods
5.3. Disturbance Input to I-P Control System
5.4. Dead Zone of the Clutch
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Shiraishi, H.; Shiraishi, H. Development of a Speed Control Device for Fishing Vessels at Low Speeds and Simulation of the Control System. Automation 2022, 3, 545-562. https://doi.org/10.3390/automation3040027
Shiraishi H, Shiraishi H. Development of a Speed Control Device for Fishing Vessels at Low Speeds and Simulation of the Control System. Automation. 2022; 3(4):545-562. https://doi.org/10.3390/automation3040027
Chicago/Turabian StyleShiraishi, Haruhiro, and Hajime Shiraishi. 2022. "Development of a Speed Control Device for Fishing Vessels at Low Speeds and Simulation of the Control System" Automation 3, no. 4: 545-562. https://doi.org/10.3390/automation3040027
APA StyleShiraishi, H., & Shiraishi, H. (2022). Development of a Speed Control Device for Fishing Vessels at Low Speeds and Simulation of the Control System. Automation, 3(4), 545-562. https://doi.org/10.3390/automation3040027