An Adaptive Control Method for the Distribution Valve of a Digital Pump
Abstract
:1. Introduction
2. Working Principle and Mathematical Model of the Digital Pump
2.1. Structure and Working Principles of the Digital Pump
2.2. Mathematical Modeling
2.2.1. Force Balance and Response Characteristics of the FDV
2.2.2. Piston Motion Characteristics
2.2.3. Piston Volume Variation Characteristics
3. The Perfect Flow Distribution on Digital Pumps
4. Simulation Modeling and Investigation
4.1. Digital Pump Simulation Model
4.2. Effects of Flow Distribution Error on Digital Pumps
4.2.1. Effects of the Toc on the Digital Pump
4.2.2. Effects of the Tcc on the FDV
5. Adaptive Control of the FDV
5.1. Control Principle of Adaptive Control of the FDV
- In the early opening handling module, when the shaft angle collected by the rotary encoder is not equal to the early opening assessment angle α1. Nothing special has to be performed. Conversely, the pressure difference between the inlet and outlet of the FDV is sampled and compared with the set threshold PTH,1. If the pressure difference is greater than the threshold, the FDV is opening too early and the Toc is raised. According to Figure 5b, when the FDV is opening in advance, the pressure of the piston chamber is not as great as expected because the high-pressure oil in the piston chamber will be discharged through the FDV; on the contrary, the control of the FDV is normal, and the next module is subsequently called.
- When the shaft of the digital pump is late opening assessment angle α2, the late opening of the FDV is detected and treated. If the FDV is not activated at α2, the oil enters the piston chamber only via the auxiliary check valve, and the pressure difference of the FDV is smaller than the one of the two valves opening. The pressure difference comparison of the FDV closing and the two valves opening is displayed in Figure 9. If the late opening of the FDV is perceived, the decrease in Toc is implemented.
- The operating principle of adaptive control of the FDV early closing is similar to the late opening; the Tcc decreases when the FDV is prematurely deactivated. The comparison between Pd and PTH,3 and Tcc adjustment are both carried out with the shaft angle equaling to α3.
- The solution to the late closing of the FDV is entirely consistent with the early opening handling module. If the FDV is not closed in time, the piston chamber is connected to the tank, and the pressure of the piston chamber can not rise to the threshold PTH,4 at the shaft angle α4. In this case, the Tcc is gradually increased to the early opening of the FDV.
5.2. Simulation Analysis of Adaptive Control of the FDV
5.2.1. The Results with Motor Speed Changes
5.2.2. The Results with the Different Dynamic Responses of the FDV
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Parameter | Value | Unit |
---|---|---|
Pump angular speed | 1000 | rpm |
The radius of the eccentric | 31 | mm |
Piston diameter | 10 | mm |
Eccentricity | 3.8 | mm |
Flow coefficient | 0.7 | |
Dead volume of piston | 0.08 | mm3 |
Chamber length | 25.1 | mm |
FDV dynamic response | 5 | ms |
Toc | 2 | ms |
Tcc | 5 | ms |
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Yue, D.; Zuo, X.; Liu, Z.; Liu, Y.; Wei, L.; Zhao, Y. An Adaptive Control Method for the Distribution Valve of a Digital Pump. Machines 2023, 11, 148. https://doi.org/10.3390/machines11020148
Yue D, Zuo X, Liu Z, Liu Y, Wei L, Zhao Y. An Adaptive Control Method for the Distribution Valve of a Digital Pump. Machines. 2023; 11(2):148. https://doi.org/10.3390/machines11020148
Chicago/Turabian StyleYue, Daling, Xiukun Zuo, Zengguang Liu, Yinshui Liu, Liejiang Wei, and Yuyang Zhao. 2023. "An Adaptive Control Method for the Distribution Valve of a Digital Pump" Machines 11, no. 2: 148. https://doi.org/10.3390/machines11020148
APA StyleYue, D., Zuo, X., Liu, Z., Liu, Y., Wei, L., & Zhao, Y. (2023). An Adaptive Control Method for the Distribution Valve of a Digital Pump. Machines, 11(2), 148. https://doi.org/10.3390/machines11020148