Research on Buffer Characteristics of a New 2D Digital Buffer Valve for Vehicle Shift
Abstract
:1. Introduction
2. 2D Digital Buffer Valve’s Structure and Working Principle
3. Analysis of Buffer Characteristics of 2D Digital Buffer Valve
3.1. Model Assumption
3.2. Mathematical Model of 2D Digital Valve
- (1)
- Flow equation
- (2)
- Overlapping area calculation
- (3)
- Fluid continuity equation
- (4)
- Digital spool dynamics equation
3.3. Main Valve Mathematical Model
- (1)
- Flow equation
- (2)
- Continuity equation
- (3)
- Main spool dynamic equation
3.4. Simulation and Results
4. Buffer Characteristic Test of 2D Digital Buffer Valve
4.1. Test Platform of 2D Buffer Valve
4.2. Static Characteristics of 2D Buffer Valve
4.3. Step Characteristics of 2D Buffer Valve
4.4. Experimental Study of Buffer Characteristics of 2D Buffer Valve
5. Conclusions
- (1)
- The 2D buffer valve can be designed using digital technology. During shifting, it can directly control the output pressure through digital technology to meet the pressure change within the clutch.
- (2)
- The step response time is about 55 ms, and the maximum overshoot is about 18.62%. The step performance of the valve is sufficient for the application.
- (3)
- In the buffering stage, the output pressure of the valve tends to be stable after 4 oscillations. The maximum deviation is 0.165 MPa, and the steady-state error is 0.056 MPa. In the step stage, the overshoot is 18.5%, and after 3.5 oscillations, it tends to be stable.
- (4)
- Different input signals can produce different buffering characteristics; the 2D digital buffer valve has better buffer following characteristics, and the output can reproduce the input, so that the vehicle can change the control signal to adapt to different operating conditions.
Author Contributions
Funding
Conflicts of Interest
References
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Parameter | Value |
---|---|
System pressure ps/MPa | 2 |
Density ρ/(kg/m3) | 860 |
Flow coefficient Cd | 0.62 |
Viscous damping B | 23.83 |
Volumetric modulus of elasticity of oil βe/MPa | 700 |
Pilot digital spool quality m/g | 15.5 |
Pilot spool radius R/mm | 9 |
Main spool radius Rm/mm | 4 |
Oblique groove inclination β/rad | 1.13 |
Spring stiffness K/(N/mm) | 115 |
Small hole diameter r/mm | 3 |
Small hole initial bow height h0/mm | 0.1 |
System pressure ps/MPa | 2 |
Density ρ/(kg/m3) | 860 |
Flow coefficient Cd | 0.62 |
Parameter | Value |
---|---|
Step response time | 55 ms |
Peak time | 65 ms |
Maximum overshoot | 18.62% |
Contrast Stage | Contrast Phase | Experiment | Simulation |
---|---|---|---|
Buffer stage | Maximum deviation (MPa) | 0.165 | 0.105 |
Peak time (ms) | 60 | 68 | |
Steady-state error (MPa) | 0.056 | 0.059 | |
Number of oscillations | 4 | 4.5 | |
Step stage | Overshoot | 18.5% | 17.9% |
Peak time (ms) | 65 | 69 | |
Steady-state error (MPa) | 0.055 | 0.05 | |
Number of oscillations | 3.5 | 5 |
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Zhang, Q.; Liu, Y.; Xiong, W.; Ruan, J.; Tang, J.; Tan, J. Research on Buffer Characteristics of a New 2D Digital Buffer Valve for Vehicle Shift. Electronics 2022, 11, 1846. https://doi.org/10.3390/electronics11121846
Zhang Q, Liu Y, Xiong W, Ruan J, Tang J, Tan J. Research on Buffer Characteristics of a New 2D Digital Buffer Valve for Vehicle Shift. Electronics. 2022; 11(12):1846. https://doi.org/10.3390/electronics11121846
Chicago/Turabian StyleZhang, Qihui, Yi Liu, Wei Xiong, Jian Ruan, Jun Tang, and Janping Tan. 2022. "Research on Buffer Characteristics of a New 2D Digital Buffer Valve for Vehicle Shift" Electronics 11, no. 12: 1846. https://doi.org/10.3390/electronics11121846
APA StyleZhang, Q., Liu, Y., Xiong, W., Ruan, J., Tang, J., & Tan, J. (2022). Research on Buffer Characteristics of a New 2D Digital Buffer Valve for Vehicle Shift. Electronics, 11(12), 1846. https://doi.org/10.3390/electronics11121846