The Design and Experimentation of a Wheeled-Chassis Potato Combine Harvester with Integrated Bagging and Ton Bag-Lifting Systems
Abstract
:1. Introduction
2. Materials and Methods
2.1. Planting Agronomy and Farmland Characteristics
2.2. Research Method
2.3. Overall Structure and Main Parameters
2.4. Working Principle
3. Key Working Units
3.1. Front Harvesting Device
3.1.1. The Structure and Working Principle of the Front Harvesting Device
3.1.2. The Split-Type Digging Device
3.1.3. The Composite Separation and Lifting Device
3.1.4. The Film and Vine Clearing Device
3.2. Picking Platforms with Different Paths
3.3. Ton Bag Self-Unloading Platform
3.4. Electrical Lifting Device
4. Results
4.1. Experimental Conditions
4.2. Test Scheme and Method
4.3. Analysis of the Field Experiment Results
5. Discussion
6. Conclusions
- Based on the agronomic requirements and topographical characteristics of potato planting in the northwest arid region, the overall design scheme of the whole machine is determined. The key components are designed and analyzed by SOLID2019 3D software and a dynamic analysis model. The structure and working parameters of the split-type digging device, composite separation and lifting device, the film and vine clearing device, the picking platforms with different paths, the ton bag self-unloading platform, and the electrical lifting device were determined, which improved the potato harvesting quality and the reliability and adaptability of the key components.
- Field experiments have shown that the loss rate of the wheeled-chassis potato combine harvester with integrated bagging and ton bag-lifting systems is 2.1%, the potato damage rate is 1.7%, the skin breaking rate is 2.5%, the impurity content is 1.9%, and the productivity is about 0.15~0.23 hm2/h. The field performance test indicators all meet the national and industry standards requirements. The potato harvesting machine described in this article has a high degree of mechanization and good harvesting performance, which effectively improves work efficiency and saves a lot of labor costs, playing a good role in promoting the development of the potato industry in the arid areas of Northwest China.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Index | Data |
---|---|
Structural style | Wheeled self-propelled type |
Engine power (kW) | 73.5 |
Engine rated speed (R·min−1) | 2600 |
Wheel track (m) | 1.38 |
Wheelbase/m | 2.2 |
Minimum turning radius (m) | 2.8 |
Overall machine dimensions: (length × width × height) (m × m × m) | 5.6 × 1.78 × 2.8 |
Working width (m) | 1.1 |
Number of rows harvested | 2 |
Digging depth (m) | 0~240 |
Potato harvest method | Ton bag |
Productivity (hm2·h−1) | 0.15~0.23 |
Index | Parameter |
---|---|
Adapt to the size of ton bag (length × width × height)/(m × m × m) | 0.8 × 0.8 × 1 |
Rope form | Double-ring |
Roller platform minimum ground clearance (mm) | 200 |
Roller platform maximum ground clearance (mm) | 520 |
Lifting action hydraulic cylinder travel (mm) | 320 |
Tilting action hydraulic cylinder travel (mm) | 100 |
Roller platform maximum tilt angle (°) | 15 |
Hydraulic cylinder control mode | Electrical control |
Determination Standard | Technical Standard | Tests the Result |
---|---|---|
Potato loss rate (%) | ≤3 | 2.1 |
Potato damage rate (%) | ≤2 | 1.7 |
Skin breaking rate (%) | ≤3 | 2.5 |
Impurity content (%) | ≤4 | 1.9 |
Performance Index | Potato Harvesting Machine | |
---|---|---|
This Harvester | 4U-1600 Set of Pile-Type Potato Digger | |
Productivity (hm2·h−1) | 0.15~0.23 | 0.35~0.55 |
Potato damage rate (%) | 1.7 | 3.36 |
Skin breaking rate (%) | 2.5 | / |
Potato obvious rate (%) | Automatic bagging | 95.11 |
Impurity content (%) | 1.9 | / |
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Wang, H.; Zhao, W.; Sun, W.; Liu, X.; Shi, R.; Zhang, H.; Chen, P.; Gao, K. The Design and Experimentation of a Wheeled-Chassis Potato Combine Harvester with Integrated Bagging and Ton Bag-Lifting Systems. Agriculture 2024, 14, 1461. https://doi.org/10.3390/agriculture14091461
Wang H, Zhao W, Sun W, Liu X, Shi R, Zhang H, Chen P, Gao K. The Design and Experimentation of a Wheeled-Chassis Potato Combine Harvester with Integrated Bagging and Ton Bag-Lifting Systems. Agriculture. 2024; 14(9):1461. https://doi.org/10.3390/agriculture14091461
Chicago/Turabian StyleWang, Hucun, Wuyun Zhao, Wei Sun, Xiaolong Liu, Ruijie Shi, Hua Zhang, Pengfei Chen, and Kuizeng Gao. 2024. "The Design and Experimentation of a Wheeled-Chassis Potato Combine Harvester with Integrated Bagging and Ton Bag-Lifting Systems" Agriculture 14, no. 9: 1461. https://doi.org/10.3390/agriculture14091461
APA StyleWang, H., Zhao, W., Sun, W., Liu, X., Shi, R., Zhang, H., Chen, P., & Gao, K. (2024). The Design and Experimentation of a Wheeled-Chassis Potato Combine Harvester with Integrated Bagging and Ton Bag-Lifting Systems. Agriculture, 14(9), 1461. https://doi.org/10.3390/agriculture14091461