Design and Testing of a 2-DOF Adaptive Profiling Header for Forage Harvesters
Abstract
:1. Introduction
- (1)
- An adaptive profiling header with 2-DOF adjustment is designed. This header achieves 2-DOF adjustment through the height adjustment mechanism and the tilt adjustment mechanism.
- (2)
- A relationship model between the profiling device and the header attitude is established. This model is the theoretical basis for the header attitude control strategy, which enables the system to detect terrain changes in real time.
- (3)
- A co-simulation model of ADAMS and MATLAB/Simulink was built, and the header attitude control system was designed based on the fuzzy PID algorithm. The co-simulation results verified the rationality of the mechanical design of the 2-DOF adjustment header, and the profiling mechanism can accurately reflect the undulating changes of the terrain.
- (4)
- A test platform was built and tested. The test results showed that the header can achieve adaptive adjustment of height and inclination, and the control system has high accuracy, stability, and reliability, which provides a reference for the design of the header attitude adaptive adjustment system of the forage harvester.
2. Materials and Methods
2.1. Design of 2-DOF Adjustment Mechanism for Header
2.1.1. Height Adjustment Mechanism
2.1.2. Tilt Angle Adjustment Mechanism
2.2. Structural Design of the Header
2.2.1. 3D Model of the Header
2.2.2. Relationship Model between Profiling Device and Header Attitude
2.3. Working Principle of Header Adaptive Adjustment
2.4. ADAMS and MATLAB/Simulink Co-Simulation Model
2.4.1. Virtual Road
2.4.2. Design of Fuzzy PID Controller
- (1)
- When the deviation is large, the response speed needs to be increased to eliminate the system deviation as soon as possible. At the same time, in order to avoid overshoot of the system response, the proportional coefficient should be increased, the differential coefficient should be reduced, and the integral coefficient is usually zero.
- (2)
- When the deviation and the deviation change rate are medium, needs to be reduced, and and take medium values to ensure the response speed of the system and reduce the overshoot of the system.
- (3)
- When the deviation is small, by increasing the values of and , the system has better steady-state performance. Considering the anti-interference ability of the system, in order to avoid overshoot and oscillation, should be appropriately selected.
- (4)
- When the deviation change rate is large, should be reduced and should be increased.
2.4.3. Co-Simulation Based on Fuzzy PID Control System
- Construction of Co-Simulation System
- b.
- Evaluation Metrics
- c.
- Co-Simulation Results and Analysis
3. Experimental Testing and Analysis
3.1. Test Platform Construction
3.2. Calibration of Header Profiling Device
3.3. Header Attitude Adjustment Test
4. Discussion
5. Conclusions
- (1)
- An adaptive profiling header with 2-DOF adjustment is designed. This study realizes 2-DOF adjustment of the header through height adjustment mechanism and tilt angle adjustment mechanism and installs the profiling device on both sides of the header by contact measurement. A relationship model between the profiling device and the header attitude is established so that the header can obtain the ground undulation in real time through the angle sensor of the profiling device.
- (2)
- A co-simulation model of ADAMS and MATLAB/Simulink was built and the header attitude control system was designed based on the fuzzy PID algorithm. The co-simulation results show that the mechanical design of the adaptive profiling header with 2-DOF adjustment designed in this study is reasonable, the profiling mechanism can accurately reflect the undulating changes of the terrain, and the accuracy of the header attitude control system meets the test indicators and has good robustness.
- (3)
- A test platform was built and tested. The results of the calibration test showed that the header profiling mechanism can accurately reflect the undulation of the terrain and verified the accuracy of the profiling device and the header attitude model. The grassland test results showed that the header can achieve adaptive adjustment of height and inclination, and the control system has high accuracy, stability, and reliability, which provides a reference for the design of the header attitude adaptive adjustment system of the forage harvester.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameters | Value |
---|---|
Header width (mm) | 1200 |
Header weight (kg) | 120 |
Chopper type | Reciprocating type |
Height hydraulic cylinder stroke (mm) | 300 |
Tilt hydraulic cylinder stroke (mm) | 220 |
Header tilt adjustment range (°) | ±20 |
Maximum rotation angle of the contour rod (°) | 83 |
NB | NM | NS | ZO | PS | PM | PB | ||
---|---|---|---|---|---|---|---|---|
NB | PB/NB/PS | PB/NB/NS | PM/NM/NB | PM/NM/NB | PS/NS/NB | ZO/ZO/NM | ZO/ZO/PS | |
NM | PB/NB/PS | PB/NB/NS | PM/NM/NB | PS/NS/NM | PS/NS/NM | ZO/ZO/NS | NS/ZO/ZO | |
NS | PM/NB/ZO | PM/NM/NS | PM/NS/NM | PS/NS/NM | ZO/ZO/NS | NS/PS/NS | NS/PS/ZO | |
ZO | PM/NM/ZO | PM/NM/NS | PS/NS/NS | ZO/ZO/NS | NS/PS/NS | NM/PM/NS | NM/PM/ZO | |
PS | PS/NM/ZO | PS/NS/ZO | ZO/ZO/ZO | NS/PS/ZO | NM/PS/ZO | NM/PM/ZO | NM/PB/ZO | |
PM | PS/ZO/PB | ZO/ZO/NS | NS/PS/PS | NM/PS/PS | NM/PM/PS | NM/PB/PS | NB/PB/PB | |
PB | ZO/ZO/PB | ZO/ZO/PM | NM/PS/PM | NM/PM/PM | NB/PM/PS | NB/PB/PS | NB/PB/PB |
Test | Calculated Height (mm) | Measured Height (mm) | Absolute Error (mm) | Relative Error | ||||
---|---|---|---|---|---|---|---|---|
1 | 211.7 | 214.8 | 209 | 212 | −2.7 | −2.8 | 1.25% | 1.31% |
2 | 183.0 | 186.7 | 179 | 182 | −4.0 | −4.7 | 2.18% | 2.52% |
3 | 136.1 | 163.6 | 131 | 161 | −5.1 | −2.6 | 3.75% | 1.57% |
4 | 199.5 | 187.9 | 196 | 193 | −3.5 | 5.1 | 1.78% | 2.70% |
5 | 197.7 | 198.0 | 192 | 195 | −5.7 | −3.0 | 2.87% | 1.52% |
6 | 160.4 | 185.6 | 158 | 182 | −2.4 | −3.6 | 1.52% | 1.92% |
7 | 169.4 | 176.1 | 172 | 173 | 2.6 | −3.1 | 1.53% | 1.78% |
8 | 153.7 | 154.9 | 156 | 158 | 2.3 | 3.1 | 1.52% | 2.01% |
9 | 145.0 | 150.7 | 142 | 147 | −3.0 | −3.7 | 2.04% | 2.49% |
10 | 127.7 | 133.8 | 125 | 131 | −2.7 | −2.8 | 2.13% | 2.08% |
11 | 123.5 | 121.3 | 126 | 124 | 2.5 | 2.7 | 2.06% | 2.22% |
12 | 117.4 | 120.0 | 121 | 121 | 3.6 | 1.0 | 3.10% | 0.87% |
13 | 120.9 | 127.6 | 119 | 129 | −1.9 | 1.4 | 1.57% | 1.07% |
14 | 102.8 | 103.5 | 107 | 108 | 4.2 | 4.5 | 4.10% | 4.32% |
15 | 157.8 | 164.6 | 162 | 166 | 4.2 | 1.4 | 2.68% | 0.85% |
16 | 171.9 | 163.0 | 169 | 164 | −2.9 | 1.0 | 1.68% | 0.62% |
17 | 180.4 | 184.3 | 183 | 188 | 2.6 | 3.7 | 1.47% | 1.99% |
18 | 163.1 | 163.1 | 159 | 166 | −4.1 | 2.9 | 2.54% | 1.76% |
19 | 157.0 | 157.5 | 161 | 158 | 4.0 | 0.5 | 2.54% | 0.34% |
20 | 159.7 | 163.2 | 164 | 159 | 4.3 | −4.2 | 2.68% | 2.60% |
Test | Target Value | Measurement Value | Error Value | |||||
---|---|---|---|---|---|---|---|---|
(mm) | (°) | (mm) | (mm) | (°) | (mm) | (mm) | (°) | |
1 | 150 | 0 | 0 | 148.0 | −0.57 | −12 | −2.0 | −0.57 |
2 | 150 | 0 | 0 | 153.0 | 0.57 | 12 | 3.0 | 0.57 |
3 | 150 | 0 | 0 | 157.0 | 0.48 | 10 | 7.0 | 0.48 |
4 | 150 | 0 | 0 | 155.5 | 0.24 | 5 | 5.5 | 0.24 |
5 | 150 | 0 | 0 | 146.0 | −0.57 | −12 | −4.0 | −0.57 |
6 | 150 | 0 | 0 | 143.5 | −0.14 | −3 | −6.5 | −0.14 |
7 | 150 | 0 | 0 | 155.5 | −0.14 | −3 | 5.5 | −0.14 |
8 | 150 | 0 | 0 | 142.5 | −0.43 | −9 | −7.5 | −0.43 |
9 | 150 | 0 | 0 | 144.5 | −0.14 | −3 | −5.5 | −0.14 |
10 | 150 | 0 | 0 | 155.0 | 0.19 | 4 | 5.0 | 0.19 |
11 | 150 | 0 | 0 | 153.5 | 0.43 | 9 | 3.5 | 0.43 |
12 | 150 | 0 | 0 | 145.0 | 0.57 | 12 | −5.0 | 0.57 |
13 | 150 | 0 | 0 | 154.5 | 0.05 | 1 | 4.5 | 0.05 |
14 | 150 | 0 | 0 | 143.5 | −0.24 | −5 | −6.5 | −0.24 |
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Luo, Y.; Liao, Z.; Shi, S.; Dai, J.; Yuan, K.; Zhao, J.; Li, Y.; Zhao, Z. Design and Testing of a 2-DOF Adaptive Profiling Header for Forage Harvesters. Agronomy 2024, 14, 1909. https://doi.org/10.3390/agronomy14091909
Luo Y, Liao Z, Shi S, Dai J, Yuan K, Zhao J, Li Y, Zhao Z. Design and Testing of a 2-DOF Adaptive Profiling Header for Forage Harvesters. Agronomy. 2024; 14(9):1909. https://doi.org/10.3390/agronomy14091909
Chicago/Turabian StyleLuo, Yangfan, Zhihui Liao, Shenye Shi, Jiuxiang Dai, Kai Yuan, Jingxing Zhao, Yuanhong Li, and Zuoxi Zhao. 2024. "Design and Testing of a 2-DOF Adaptive Profiling Header for Forage Harvesters" Agronomy 14, no. 9: 1909. https://doi.org/10.3390/agronomy14091909
APA StyleLuo, Y., Liao, Z., Shi, S., Dai, J., Yuan, K., Zhao, J., Li, Y., & Zhao, Z. (2024). Design and Testing of a 2-DOF Adaptive Profiling Header for Forage Harvesters. Agronomy, 14(9), 1909. https://doi.org/10.3390/agronomy14091909