Design and Verification of Crab Steering System for High Clearance Self-Propelled Sprayer
Abstract
:1. Introduction
2. Materials and Methods
2.1. Design of Crab Steering System
2.1.1. Principle of Crab Steering
2.1.2. Structural Design of Crab Steering Transmission System
2.1.3. Hydraulic System Design of Crab Steering
2.2. Mathematical Model of Crab Steering System
2.2.1. Mathematical Model of Steering Transmission Mechanism
2.2.2. Mathematical Model of Crab Steering Hydraulic System
2.3. Control Strategy and Method
2.3.1. Control Strategy of Crab Steering
2.3.2. Design of Crab Steering Controller
2.4. Construction of Test Platform
3. Test Verification and Results
3.1. Simulation Test
3.2. Field Test
4. Discussion
4.1. Simulation Test
4.2. Field Test
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Hydraulic Components | Model | Manufacturer |
---|---|---|
Load sensing closed center full hydraulic steering gear | 102S-5T-200-10-E | ZHENJIANG HYDRAULICS Co., Ltd. (Zhenjiang, China) |
Load sensing pressure compensation flow priority valve | EC10-42-0-N-150 | HYDRAFORCE (Changzhou, China) |
Differential pressure reducing valve | EC10-32-0-N-80EC1 | HYDRAFORCE |
Two way hydraulic control check valve | DC08-40-0-N-25 | HYDRAFORCE |
Two-position three-way proportional valve | SPCL10-32-0-N-12DR | HYDRAFORCE |
Two-position two-way proportional valve | SP10-20-0-N-12DR | HYDRAFORCE |
Three-position five-way load sensing electro-hydraulic proportional valve | SP10-58D-0-N-12DR | HYDRAFORCE |
Relief valve | RV08-20A-0-N-33 | HYDRAFORCE |
Steering hydraulic cylinder | HSG63/35-300×584-WX | HEFEI CHANGYUAN HYDRAULIC Co., Ltd. (Hefei, China) |
Parameter | Unit | Index | Parameter | Unit | Index |
---|---|---|---|---|---|
Drive mode | / | Four wheel hydraulic drive | Steering mode | / | 2WS/4WS/Crab steering |
Engine horsepower | hp | 205 | Wheel track | mm | 3200–4000 |
Vehicle quality | kg | 15,000 | Wheelbase | mm | 4000 |
Boundary dimension | mm | 8200 × 4200 × 4100 | Ground clearance | mm | ≥2000 |
Liquid chemical tank volume | L | 3000 | Service brake | / | Clamp plate hydraulic brake |
Spray amplitude | mm | 28,000 | Parking brake | / | Multi-disc brake in the reducer |
Speed | km·h−1 | Three speed stepless speed change, the highest: 17; 26; 40 | Boom height | mm | 800–2800 |
Parameter | Unit | Index | Parameter | Unit | Index |
---|---|---|---|---|---|
Ap1 | m3 | 3.316 × 10−3 | dxpv | m | 5.5 × 10−4 |
Ap2 | m3 | 2.154 × 10−3 | Lx | m | 1.75 × 10−3 |
Bxz | / | 1.28 × 10−3 | Lxz | m | 1.24 × 10−3 |
Cet | m3/(Pa·s) | 1 × 10−11 | θxpv | rad | 1.69 |
Cit | m3/(Pa·s) | 2 × 10−11 | θxz | rad | 0.67 |
dxz | m | 7.36 × 10−3 | xxzs0 | m | 2.0 × 10−4 |
dxz1 | m | 1.066 × 10−2 | Vxp0 | L | 3.03 × 10−7 |
dx1 | m | 1.45 × 10−2 | Vxz0 | L | 2.154 × 10−3 |
dxpv0 | m | 3.2 × 10−4 |
Parameter | Average Error (°) | Maximum Error (°) |
---|---|---|
Value | 0.139 | 2.75 |
Parameter | Average Error (°) | Maximum Error (°) |
---|---|---|
Right front wheel | 0.265 | 2.380 |
Left rear wheel | 0.285 | 2.587 |
Right rear wheel | 0.260 | 2.493 |
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Li, W.; Yang, F.; Mao, E.; Shao, M.; Sui, H.; Du, Y. Design and Verification of Crab Steering System for High Clearance Self-Propelled Sprayer. Agriculture 2022, 12, 1893. https://doi.org/10.3390/agriculture12111893
Li W, Yang F, Mao E, Shao M, Sui H, Du Y. Design and Verification of Crab Steering System for High Clearance Self-Propelled Sprayer. Agriculture. 2022; 12(11):1893. https://doi.org/10.3390/agriculture12111893
Chicago/Turabian StyleLi, Wei, Fan Yang, Enrong Mao, Mingxi Shao, Haochen Sui, and Yuefeng Du. 2022. "Design and Verification of Crab Steering System for High Clearance Self-Propelled Sprayer" Agriculture 12, no. 11: 1893. https://doi.org/10.3390/agriculture12111893
APA StyleLi, W., Yang, F., Mao, E., Shao, M., Sui, H., & Du, Y. (2022). Design and Verification of Crab Steering System for High Clearance Self-Propelled Sprayer. Agriculture, 12(11), 1893. https://doi.org/10.3390/agriculture12111893