Research on the Control Strategy of the Power Shift System of a Cotton Picker Based on a Fuzzy Algorithm
Abstract
:1. Introduction
2. Materials and Methods
2.1. PST and Principle Analysis of Cotton Picker
2.1.1. The Working Principle of PST
2.1.2. The Working Principle of Hydrostatic Transmission
2.2. Simulation of the Power Shift Driving Transmission System of the Cotton Picker
2.2.1. Simulation Parameters of the Whole Vehicle Driving Transmission System of the Cotton Picker
2.2.2. Simulation Analysis of the Cotton Picker’s Picking Pattern
2.2.3. Simulation Analysis of Cotton Picker Transportation Mode
2.3. Fuzzy Shift Control Strategy
2.3.1. Fuzzification
2.3.2. The Definition of the Input and Output Affiliation Functions
2.3.3. Establishment of Fuzzy Control Rules
2.3.4. Defuzzification
3. Simulation Verification of the Automatic Gear Shift Strategy and Discussion of Results
4. Conclusions
- (1)
- In order to reduce the speed fluctuation and the jerking in the process of cotton picker shifting, this study firstly analyzed the working principle of the PST and hydrostatic transmission, proposed a fuzzy shifting control strategy, and compared the effects of the fuzzy shifting control strategy and the traditional shifting method on the speed of the cotton picker. When the fuzzy shift control strategy is used, the speed fluctuation and jerking of the cotton picker are significantly reduced.
- (2)
- When the automatic gearshift strategy with fuzzy control theory is adopted, the low-speed brake and high-speed clutch are engaged in a transitional overlapping engagement, which makes the speed curve smoother compared with the direct engagement of the traditional manual gearshift; in the same driving time, the automatic gearshift strategy with the application of fuzzy logic can make the cotton picker travel 64 m more compared to using the traditional manual gearshift.
- (3)
- By analyzing the front and rear variable motor flow, rotary speed, and torque magnitude of the cotton picker under the fuzzy shift control theory, it was found that the front and rear variable motor flow, rotary speed, and torque of the cotton picker fluctuates to a certain extent at the time of startup, but the fluctuation time is very short. By comparing the output torque curves of the front and rear variable motors of the cotton picker in road transportation mode with and without the fuzzy shift control strategy, it was found that the torque fluctuation time of the front and rear motors during the startup phase decreased from 7.3 s to 0.9 s, and the torque fluctuation at the shift points was significantly reduced. This indicates that the fuzzy shift control strategy has good dynamic response performance and stability.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
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Working State | Brake | Clutch |
---|---|---|
Neutral gear | separation | separation |
Low-speed gear | engagement | separation |
High-speed gear | separation | engagement |
Locked | engagement | engagement |
Main Parameters | Value | Main Parameters | Value |
---|---|---|---|
Cotton picker vehicle mass (kg) | 33,000 | Maximum displacement of the rear drive motor (mL/r) | 105 |
Front tire parameters | 520/85R42 | PST gear ratio | 2.38 |
Rear tire parameters | 620/75R34 | Picking first gear (km/h) | 0~7.1 |
Engine rated speed (r/min) | 1900 | Picking second gear (km/h) | 0~8.5 |
Maximum displacement of traveling variable pump (mL/r) | 210 | Field transportation (km/h) | 0~14.5 |
Maximum displacement of the front drive motor (mL/r) | 165 | Road transportation (km/h) | 0~27.4 |
Pump | V | |||||||
---|---|---|---|---|---|---|---|---|
NB | NM | NS | ZO | PS | PM | PB | ||
Ne | NM | PB | PB | PB | PB | PB | PB | PB |
NS | PB | PB | PB | PB | PB | PB | PB | |
ZO | PB | PB | PB | PB | PB | PB | PB | |
PS | PS | PM | PB | PB | PB | PB | PB | |
PM | PS | PB | PB | PB | PB | PB | PB |
M1 | V | |||||||
---|---|---|---|---|---|---|---|---|
NB | NM | NS | ZO | PS | PM | PB | ||
Ne | NM | PB | PB | ZO | PM | PS | NS | NM |
NS | PB | PB | ZO | PM | PS | NS | NM | |
ZO | PB | PB | ZO | PM | PS | NS | NM | |
PS | PB | PB | ZO | PM | PS | NS | NM | |
PM | PB | PB | ZO | PM | PS | NS | NM |
M2 | V | |||||||
---|---|---|---|---|---|---|---|---|
NB | NM | NS | ZO | PS | PM | PB | ||
Ne | NM | PB | PB | PS | PM | ZO | NS | NM |
NS | PB | PB | PS | PM | ZO | NS | NM | |
ZO | PB | PB | PS | PM | ZO | NS | NM | |
PS | PB | PB | PS | PM | ZO | NS | NM | |
PM | PB | PB | PS | PM | ZO | NS | NM |
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Share and Cite
Meng, X.; Ni, X.; Chen, H.; Pan, W.; Zhao, Y.; Zhai, B.; Cai, W. Research on the Control Strategy of the Power Shift System of a Cotton Picker Based on a Fuzzy Algorithm. Agriculture 2024, 14, 874. https://doi.org/10.3390/agriculture14060874
Meng X, Ni X, Chen H, Pan W, Zhao Y, Zhai B, Cai W. Research on the Control Strategy of the Power Shift System of a Cotton Picker Based on a Fuzzy Algorithm. Agriculture. 2024; 14(6):874. https://doi.org/10.3390/agriculture14060874
Chicago/Turabian StyleMeng, Xiangchao, Xiangdong Ni, Huajun Chen, Wenlong Pan, Yongqiang Zhao, Baoyu Zhai, and Wenqing Cai. 2024. "Research on the Control Strategy of the Power Shift System of a Cotton Picker Based on a Fuzzy Algorithm" Agriculture 14, no. 6: 874. https://doi.org/10.3390/agriculture14060874
APA StyleMeng, X., Ni, X., Chen, H., Pan, W., Zhao, Y., Zhai, B., & Cai, W. (2024). Research on the Control Strategy of the Power Shift System of a Cotton Picker Based on a Fuzzy Algorithm. Agriculture, 14(6), 874. https://doi.org/10.3390/agriculture14060874