Application of Multi-Cylinder Synchronous Control for Telescopic Mechanism of Marine Steel Pile Cleaning Equipment
Abstract
:1. Introduction
2. Cleaning Equipment Structure Scheme and Working Principle
3. Influence of Telescopic Mechanism Synchronization on Scraping Tools
4. Synchronous Modeling and Simulation of the Telescopic Mechanism
4.1. Modeling of Synchronous Control System of the Telescopic Mechanism
- (1)
- Assuming that the piston of the hydraulic cylinder does not rotate in the cavity, there is no degree of freedom to twist around the z-axis for the telescopic load;
- (2)
- Assuming that the synchronization error of the three-cylinder is much smaller than the distance between the installation positions of each hydraulic cylinder, the telescopic load mainly moves in the vertical direction, that is, the z-axis direction, and can be ignored along the x-axis and y-axis directions;
- (3)
- Assuming that the hydraulic cylinder piston is not affected by the lateral force, regardless of the gravity of the piston and cylinder, the output force Fi (I = 1, 2, 3) of the piston rod of the hydraulic cylinder is along the direction of the piston rod, and the angle with the z-axis is approximately zero;
- (4)
- Assume that the upper flange of the hydraulic cylinder and the upper ring are connected by a point centered on the flange.
4.1.1. Equation of Motion of Telescopic Mechanism
4.1.2. Telescopic Load and Point Contact Position Equation of Hydraulic Cylinder
4.1.3. The Equation of Motion of the Piston Rod of a Hydraulic Cylinder
4.1.4. Load Pressure Dynamic Characteristic Equation of Asymmetric Hydraulic Cylinder
4.1.5. Mathematical Model of Three-Cylinder System
4.2. Synchronous Control Simulation of Telescopic Mechanism
5. Synchronous Test of the Telescopic Mechanism
5.1. Development and Test of Cleaning Equipment
5.2. Test Results and Discussion
6. Conclusions
- (1)
- In order to clean up the fouling organisms attached to the offshore infrastructure, this paper designed a new configuration of marine steel pile cleaning equipment using the scraping method and its telescopic mechanism with a multi-cylinder synchronous control strategy and process and produced a test prototype.
- (2)
- The simulation model of the operation process of the marine steel pile cleaning equipment was established, and the simulation of its multi-cylinder synchronous control under multiple working conditions was completed. Through the simulation solution, the maximum displacement synchronization error between each cylinder of the telescopic mechanism under the no-load condition was 0.15 mm. When the three hydraulic cylinders were loaded by the scraping reaction force, the maximum synchronization error between each cylinder was about 0.28 mm; when a single hydraulic cylinder was loaded with the scraping reaction force, the maximum synchronization error between each cylinder was about 4 mm. In all three cases, the telescopic mechanism achieved good synchronization in the simulation process.
- (3)
- Through the no-load test of the telescopic mechanism, the synchronization of the telescopic mechanism of the prototype of the cleaning equipment was preliminarily verified. The test results showed that the relative errors between the three cylinders and the target displacement were 0.8%, 0.4%, and 0.2%, respectively, to ensure that the equipment reached the designated working position at the given working speed. The displacement synchronization error of each cylinder was controlled within 1 mm, and the telescopic mechanism had good telescopic synchronization, which can prevent the eccentricity and tilt of the cleaning equipment during its operation while ensuring its stability.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Li, C.; Pang, N.; Xu, K.; Geng, Q.; Wang, X.; Yun, F.; Gao, L. Application of Multi-Cylinder Synchronous Control for Telescopic Mechanism of Marine Steel Pile Cleaning Equipment. J. Mar. Sci. Eng. 2023, 11, 1010. https://doi.org/10.3390/jmse11051010
Li C, Pang N, Xu K, Geng Q, Wang X, Yun F, Gao L. Application of Multi-Cylinder Synchronous Control for Telescopic Mechanism of Marine Steel Pile Cleaning Equipment. Journal of Marine Science and Engineering. 2023; 11(5):1010. https://doi.org/10.3390/jmse11051010
Chicago/Turabian StyleLi, Chao, Nan Pang, Kai Xu, Qingling Geng, Xiangyu Wang, Feihong Yun, and Lei Gao. 2023. "Application of Multi-Cylinder Synchronous Control for Telescopic Mechanism of Marine Steel Pile Cleaning Equipment" Journal of Marine Science and Engineering 11, no. 5: 1010. https://doi.org/10.3390/jmse11051010
APA StyleLi, C., Pang, N., Xu, K., Geng, Q., Wang, X., Yun, F., & Gao, L. (2023). Application of Multi-Cylinder Synchronous Control for Telescopic Mechanism of Marine Steel Pile Cleaning Equipment. Journal of Marine Science and Engineering, 11(5), 1010. https://doi.org/10.3390/jmse11051010