Development of a Real-Time Tractor Model for Gear Shift Performance Verification
Abstract
:1. Introduction
- A real-time plant model ensuring real-time responsiveness and high precision of the actual tractor to be developed was developed to verify control algorithms in the tractor development process.
- In order to evaluate the shifting performance of control algorithms accurately, detailed modeling of shifting-related components was developed and validated from the test results.
- The entire plant model was validated through driving simulation to confirm the real-time simulation capability and suitability for verifying control algorithms.
2. Materials and Methods
2.1. Target Tractor
2.2. Model Outline
2.3. HCU Modeling
2.4. Engine Modeling
2.5. 32-Speed Transmission Modeling
2.6. Simple Vehicle Modeling
2.7. Plant Model Verification
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Item | Specification |
---|---|
Model | DCT type tractor |
Power | 105 kW |
Rated engine speed | 2300 RPM |
Max engine torque | 600 Nm |
Mass | 5000 kg |
Rear wheel radius | 0.835 m |
Speed | 0~40 km/h |
Input Signal | Description |
---|---|
Norm brake | Brake torque by brake pedal |
Gradient | Gradient of the ground |
Upshift | Driver pressing the upshift button |
Downshift | Driver pressing the downshift button |
Oil temperature | Oil temperature of hydraulic system |
System pressure | System pressure of the hydraulic system |
Input Signal | Description |
---|---|
Sync1 current | Synchronizer pressure control valve (PCV) 1 control current |
Sync2 current | Synchronizer PCV 2 control current |
Sync3 current | Synchronizer PCV 3 control current |
Sync4 current | Synchronizer PCV 4 control current |
Sync5 current | Synchronizer PCV 5 control current |
Sync6 current | Synchronizer PCV 6 control current |
Sync7 current | Synchronizer PCV 7 control current |
Sync8 current | Synchronizer PCV 8 control current |
Creep | Creep shift dog clutch control signal |
Low | Low shift dog clutch control signal |
Middle | Middle shift dog clutch control signal |
High | High shift dog clutch control signal |
FWD clutch current | Forward clutch PCV control current |
REV clutch current | Reverse clutch PCV control current |
Odd clutch current | Odd clutch PCV control current |
Even clutch current | Even clutch PCV control current |
Key | Engine key mode |
Target speed | Engine target speed |
Output Signal | Description |
---|---|
Engine throttle | Throttle output from the engine model |
Engine speed | Speed output from the engine model |
Engine torque | Torque output from the engine model |
Friction torque | Engine friction torque output from the engine model |
Clutch pressure | Clutch pressure output from the Hydraulic control unit (HCU) model |
Sleeve force | Synchronizer actuator sleeve force output from the HCU model |
Sleeve position | Synchronizer actuator sleeve position output from the 32-speed transmission model |
Shaft speed | Shaft speed output from the 32-speed transmission model |
Vehicle speed | Vehicle speed output from the simple vehicle model |
Final drive speed | Final drive speed output from the simple vehicle model |
●: Engaged | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 | 15 | 16 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Sync 1/3 | ● | ● | ● | ● | ||||||||||||
Sync 2/4 | ● | ● | ● | ● | ||||||||||||
Sync 5/7 | ● | ● | ● | ● | ||||||||||||
Sync 6/8 | ● | ● | ● | ● | ||||||||||||
Odd clutch | ● | ● | ● | ● | ● | ● | ● | ● | ||||||||
Even clutch | ● | ● | ● | ● | ● | ● | ● | ● | ||||||||
Range creep | ● | ● | ● | ● | ● | ● | ● | ● | ||||||||
Range low | ● | ● | ● | ● | ● | ● | ● | ● | ||||||||
Range middle | ||||||||||||||||
Range high | ||||||||||||||||
17 | 18 | 19 | 20 | 21 | 22 | 23 | 24 | 25 | 26 | 27 | 28 | 29 | 30 | 31 | 32 | |
Sync 1/3 | ● | ● | ● | ● | ||||||||||||
Sync 2/4 | ● | ● | ● | ● | ||||||||||||
Sync 5/7 | ● | ● | ● | ● | ||||||||||||
Sync 6/8 | ● | ● | ● | ● | ||||||||||||
Odd clutch | ● | ● | ● | ● | ● | ● | ● | ● | ||||||||
Even clutch | ● | ● | ● | ● | ● | ● | ● | ● | ||||||||
Range creep | ||||||||||||||||
Range low | ||||||||||||||||
Range middle | ● | ● | ● | ● | ● | ● | ● | ● | ||||||||
Range high | ● | ● | ● | ● | ● | ● | ● | ● |
Number of Disks | Outer Diameter (mm) | Inner Diameter (mm) | Area (mm2) | Static Friction Coefficient | Kinetic Friction Coefficient | |
---|---|---|---|---|---|---|
FWD/REV clutch | 8 | 175 | 120 | 0.0126 | 0.1 | 0.15 |
Odd/Even clutch | 10 | 178 | 118 | 0.0186 |
Step Information | Value |
---|---|
Solver | Fixed step discrete |
Start time | 0 s |
Stop time | 45 s |
Average step size | 1.00 × 10−3 |
Total steps | 45,000 |
Run time | 30.53 s |
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Share and Cite
Han, G.; Ahn, D.-V.; Kwon, D.; Kim, H.-S.; Park, Y.-J.; Lee, J.W. Development of a Real-Time Tractor Model for Gear Shift Performance Verification. Agriculture 2023, 13, 2133. https://doi.org/10.3390/agriculture13112133
Han G, Ahn D-V, Kwon D, Kim H-S, Park Y-J, Lee JW. Development of a Real-Time Tractor Model for Gear Shift Performance Verification. Agriculture. 2023; 13(11):2133. https://doi.org/10.3390/agriculture13112133
Chicago/Turabian StyleHan, Gyuha, Da-Vin Ahn, Doyeop Kwon, Heung-Sub Kim, Young-Jun Park, and Jin Woong Lee. 2023. "Development of a Real-Time Tractor Model for Gear Shift Performance Verification" Agriculture 13, no. 11: 2133. https://doi.org/10.3390/agriculture13112133
APA StyleHan, G., Ahn, D.-V., Kwon, D., Kim, H.-S., Park, Y.-J., & Lee, J. W. (2023). Development of a Real-Time Tractor Model for Gear Shift Performance Verification. Agriculture, 13(11), 2133. https://doi.org/10.3390/agriculture13112133