Design and Test of a Low-Loss Soybean Header Based on Synchronous Profiling
Abstract
:1. Introduction
2. The Overall Structure and Working Principle of the Header
2.1. Requirements for Matching Machines for Soybean-Corn Strip Intercropping
2.2. Overall Structure of the Header
3. Key Component Design
3.1. Synchronous-Profiling Cutting Device
3.1.1. Dynamic Modeling of a Synchronous-Profiling Cutting Device
3.1.2. Force Analysis of a Synchronous Profiling Cutting Device
3.2. Design of a Flexible Reel-Belt Conveyor
4. Simulation Analysis of a Synchronous-Profiling Device Based on ADAMS Rigid-Flexible Coupling
4.1. Simulation Model Establishment and Parameter Settings
4.1.1. Simulation Model
4.1.2. Parameter Setting of a Simulation Model
4.2. Analysis of Simulation Results
5. Field Test
5.1. Test Conditions
5.2. Test Method
5.3. Analysis of Test Results
6. Conclusions
- (1)
- A low-loss soybean header based on synchronous profiling was designed to address the problems of a lack of soybean harvesting machines for supporting soybean-corn strip intercropping, the few existing soybean headers, and the high loss rate of soybean headers.
- (2)
- In order to realize the cutting device attached to the undulating ground, a synchronous-profiling cutting device was designed. The spring stiffness was determined to be 6 N/mm by theoretical and dynamic analyses. The simulation analysis of the motion process of the synchronous-profiling cutting device was conducted through ADAMS rigid-flexible coupling, indicating that the profiling cutting device can effectively control the height of the cutter off the ground in real-time by following the fluctuations of the ground. The cutting device can respond to the ground excitation accurately and quickly, which meets the requirements of synchronous profiling and low-cutting.
- (3)
- Field test results showed that the loss rate and stubble height of the soybean header were 1.34% and 70.36 mm, respectively, which were 55% and 22.7% lower than the existing reel-type rigid soybean header and met the requirements of the soybean harvesting operation index.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
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No. | Parameter | Value |
---|---|---|
1 | Chassis type | 4LZ |
2 | Matching engine power (kW) | 44.2 |
3 | Overall dimensions (mm × mm × mm) | 4230 × 1500 × 2300 |
4 | Overall machine mass (kg) | 2410 |
5 | Header width (mm) | 1300 |
6 | Number of rows | 2 |
7 | Operating efficiency (hm2/h) | 0.27–0.48 |
Performance Parameter | Test Number | Average Value of the Test | Performance Index of the Existing Reel-Type Rigid Soybean Header | Technical Requirement | ||
---|---|---|---|---|---|---|
1 | 2 | 3 | ||||
Header loss rate (%) | 1.26 | 1.44 | 1.33 | 1.34 | 2.98 | ≤3 |
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Nie, J.; Luo, H.; Zhou, Y.; Li, Q.; Qiu, Q.; Zhang, L. Design and Test of a Low-Loss Soybean Header Based on Synchronous Profiling. Agriculture 2023, 13, 1580. https://doi.org/10.3390/agriculture13081580
Nie J, Luo H, Zhou Y, Li Q, Qiu Q, Zhang L. Design and Test of a Low-Loss Soybean Header Based on Synchronous Profiling. Agriculture. 2023; 13(8):1580. https://doi.org/10.3390/agriculture13081580
Chicago/Turabian StyleNie, Junshan, Huizhong Luo, Yang Zhou, Qiqiang Li, Qingyu Qiu, and Lihua Zhang. 2023. "Design and Test of a Low-Loss Soybean Header Based on Synchronous Profiling" Agriculture 13, no. 8: 1580. https://doi.org/10.3390/agriculture13081580
APA StyleNie, J., Luo, H., Zhou, Y., Li, Q., Qiu, Q., & Zhang, L. (2023). Design and Test of a Low-Loss Soybean Header Based on Synchronous Profiling. Agriculture, 13(8), 1580. https://doi.org/10.3390/agriculture13081580