Design and Experimentation of Targeted Deep Fertilization Device for Corn Cultivation
Abstract
:1. Introduction
2. Materials and Methods
2.1. Overall Structure of Targeted Deep Fertilization Device for Corn
2.2. Working Principle
2.3. Structure Design and Analysis of Fertilizer Discharge Device
2.3.1. Structure and Working Principle
2.3.2. Structural Parameter Analysis
2.3.3. Structure Design and Working Principle of Strong Discharge Fertilizer
2.3.4. Mechanical Analysis of the Fertilizer Filling Process
2.3.5. Mechanical Analysis of the Fertilizer Discharge Process
2.4. Targeted Fertilization Control System for Corn
2.4.1. System Hardware
2.4.2. System Program
3. Simulation Analysis of Fertilizer Discharge Device Performance
3.1. Construction of a Discrete Element Simulation Platform
3.2. Fertilization Performance Evaluation Method
3.3. Design of Single-Factor Tests
3.4. Multi-Factor Experiment
4. Bench Test Platform
4.1. Test Conditions
4.2. Testing Indicators and Measurement Methods
4.3. Test Results and Analysis
5. Field Experiment
5.1. Testing Method
5.2. Test Conditions
6. Conclusions
- (1)
- A targeted deep fertilization device for corn has been designed, which uses a photoelectric sensor to detect the position of corn plants. A microcontroller combines the plant position information and the forward speed of the device to dynamically control the intermittent rotation of a stepping motor, thereby achieving targeted deep fertilization operations for corn.
- (2)
- Based on cycloidal parameters, a fertilizer discharge device with a forced discharge plate mechanism was designed. Through mechanical analysis of the fertilization and discharge processes, the main factors affecting the discharge performance were identified. Coupled simulation analysis using Adams and EDEM was conducted to perform both single-factor and multi-factor experiments, examining the effects of the right wall inclination angle of the discharge, discharge depth, and discharge working length on the coefficient of variation of the hole discharge amount and the average hole length. The optimal parameter combination was determined to be a discharge wall inclination angle of 35.16°, a discharge depth of 10.7 mm, and a discharge working length of 30 mm.
- (3)
- Bench tests and field tests were conducted. The bench tests indicated that at a forward speed of 0.4 to 1.2 m/s, under the optimal parameter combination, the coefficient of variation of the fertilizer application rate per hole of the discharge device ranged from 2.02% to 4.46%, the error in fertilizer application rate per hole ranged from 7.12% to 12.18%, the average length of fertilizer application holes ranged from 72.5 mm to 130.2 mm, and the coefficient of variation for hole length stability ranged from 1.94% to 3.54%. The field tests showed that when the machine’s forward speed was between 0.4 m/s and 1.2 m/s, the coefficient of variation of the fertilizer application rate per hole, the error in fertilizer application rate per hole, the average length of fertilizer application holes, the coefficient of variation of hole length stability, and the qualification rate of fertilization position were 3.63%, 10.46%, 108.8 mm, 2.96%, and 87.16%, respectively. Overall, the device exhibited stable performance and met the requirements for targeted deep fertilization in corn cultivation.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Stats | Parameter | Value |
---|---|---|
Fertilizer Granules | Density/(g·cm3) | 1.575 |
Shear Modulus/(GPa) | 0.125 | |
Poisson’s Ratio | 0.250 | |
PLA | Density/(g·cm3) | 1.240 |
Shear Modulus/(GPa) | 0.130 | |
Poisson’s Ratio | 0.430 | |
Soil | Density/(g·cm3) | 1.357 |
Shear Modulus/(GPa) | 0.727 | |
Poisson’s Ratio | 0.35 | |
Fertilizer Granules—Fertilizer Granules | Coefficient of Restitution | 0.31 |
Coefficient of Static Friction | 0.37 | |
Coefficient of Rolling Friction | 0.12 | |
Fertilizer Granules—PLA | Coefficient of Restitution | 0.41 |
Coefficient of Static Friction | 0.32 | |
Coefficient of Rolling Friction | 0.18 | |
Fertilizer Granules—Soil | Coefficient of Restitution | 0.02 |
Coefficient of Static Friction | 1.25 | |
Coefficient of Rolling Friction | 1.24 |
Levels | X1 The Right Wall of the Fertilizer Discharge Trench (°) | X2 The Depth of the Fertilizer Discharge Trench (mm) | X3 The Working Length of the Fertilizer Discharge Trench (mm) |
---|---|---|---|
−1 | 35 | 9 | 30 |
0 | 38 | 11 | 37 |
1 | 41 | 13 | 44 |
Serial Number | The Right Wall of the Fertilizer Discharge Trench/° | The Depth of the Fertilizer Discharge Trench/mm | The Working Length of the Fertilizer Discharge Trench/mm | Coefficient of Variation of Fertilizer Application Amount per Hole/% | Average Length of Fertilizer Application Holes/mm |
---|---|---|---|---|---|
X1 | X2 | X3 | Y1 | Y2 | |
1 | 38 | 11 | 37 | 2.47 | 90.2 |
2 | 35 | 11 | 44 | 4.12 | 96.6 |
3 | 35 | 9 | 37 | 3.28 | 82.8 |
4 | 38 | 9 | 44 | 4.18 | 95.8 |
5 | 41 | 9 | 37 | 3.72 | 91 |
6 | 41 | 13 | 37 | 4.12 | 98.6 |
7 | 38 | 9 | 30 | 3.22 | 86.8 |
8 | 41 | 11 | 44 | 4.47 | 105.6 |
9 | 35 | 11 | 30 | 3.28 | 77.6 |
10 | 38 | 11 | 37 | 2.52 | 91 |
11 | 38 | 11 | 37 | 2.4 | 92.3 |
12 | 35 | 13 | 37 | 3.6 | 90.6 |
13 | 38 | 11 | 37 | 2.32 | 89.5 |
14 | 38 | 13 | 30 | 3.85 | 84 |
15 | 38 | 11 | 37 | 2.37 | 90.6 |
16 | 41 | 11 | 30 | 3.62 | 85.2 |
17 | 38 | 13 | 44 | 4.7 | 114.4 |
Experimental Indicators | Source | Sum of Squares | df | Mean Square | F-Value | p-Value | Significance |
---|---|---|---|---|---|---|---|
Y1 | Model | 9.73 | 9 | 1.08 | 127.53 | <0.0001 | ** |
X1 | 0.3403 | 1 | 0.3403 | 40.14 | 0.0004 | ** | |
X2 | 0.4371 | 1 | 0.4371 | 51.56 | 0.0002 | ** | |
X3 | 1.53 | 1 | 1.53 | 180.62 | <0.0001 | ** | |
X1X2 | 0.0016 | 1 | 0.0016 | 0.1887 | 0.6771 | ||
X1X3 | 0.0000 | 1 | 0.0000 | 0.0029 | 0.9582 | ||
X2X3 | 0.0030 | 1 | 0.0030 | 0.3568 | 0.5691 | ||
1.39 | 1 | 1.39 | 163.92 | <0.0001 | ** | ||
2.00 | 1 | 2.00 | 236.11 | <0.0001 | ** | ||
3.28 | 1 | 3.28 | 386.36 | <0.0001 | ** | ||
Residual | 0.0593 | 7 | 0.0085 | ||||
Lack of Fit | 0.0340 | 3 | 0.0113 | 1.79 | 0.2880 | ||
Pure Error | 0.0253 | 4 | 0.0063 | ||||
Cor Total | 9.79 | 16 | |||||
Y2 | Model | 1206.16 | 9 | 134.02 | 213.79 | <0.0001 | ** |
X1 | 134.48 | 1 | 134.48 | 214.53 | <0.0001 | ** | |
X2 | 121.68 | 1 | 121.68 | 194.11 | <0.0001 | ** | |
X3 | 776.18 | 1 | 776.18 | 1238.21 | <0.0001 | ** | |
X1X2 | 0.0100 | 1 | 0.0100 | 0.0160 | 0.9030 | ||
X1X3 | 0.4900 | 1 | 0.4900 | 0.7817 | 0.4060 | ||
X2X3 | 114.49 | 1 | 114.49 | 182.64 | <0.0001 | ** | |
16.59 | 1 | 16.59 | 26.47 | 0.0013 | ** | ||
17.10 | 1 | 17.10 | 27.27 | 0.0012 | ** | ||
26.63 | 1 | 26.63 | 42.49 | 0.0003 | ** | ||
Residual | 4.39 | 7 | 0.6269 | ||||
Lack of Fit | 0.0400 | 3 | 0.0133 | 0.0123 | 0.9978 | ||
Pure Error | 4.35 | 4 | 1.09 | ||||
Cor Total | 1210.54 | 16 |
Forward Speed (m/s) | Coefficient of Variation of Fertilizer Application Rate per Hole (%) | Error in Fertilizer Application Rate per Hole(%) | Average Length of Fertilizer Application Holes (mm) | Coefficient of Variation of Hole Length Stability (%) |
---|---|---|---|---|
0.4 | 2.02 | 7.12 | 72.5 | 1.94 |
0.6 | 2.54 | 8.54 | 85.4 | 2.37 |
0.8 | 3.32 | 9.80 | 97.3 | 2.79 |
1.0 | 3.85 | 10.81 | 114.4 | 3.15 |
1.2 | 4.46 | 12.18 | 130.2 | 3.54 |
Forward Speed (m/s) | Coefficient of Variation of Fertilizer Application Rate per Hole (%) | Error in Fertilizer Application Rate per Hole(%) | Average Length of Fertilizer Application Holes (mm) | Coefficient of Variation of Hole Length Stability (%) | Qualified Rate of Fertilization Positions (%) |
---|---|---|---|---|---|
0.4 | 2.78 | 7.94 | 81.4 | 2.07 | 84.97 |
0.6 | 3.21 | 9.20 | 91.6 | 2.53 | 89.07 |
0.8 | 3.65 | 10.65 | 106.5 | 2.91 | 94.16 |
1.0 | 3.97 | 11.64 | 123.5 | 3.42 | 91.25 |
1.2 | 4.53 | 12.88 | 141.2 | 3.85 | 86.33 |
Average | 3.63 | 10.46 | 108.8 | 2.96 | 87.16 |
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Qi, Z.; Liu, C.; Wang, Y.; Zhang, Z.; Sun, X. Design and Experimentation of Targeted Deep Fertilization Device for Corn Cultivation. Agriculture 2024, 14, 1645. https://doi.org/10.3390/agriculture14091645
Qi Z, Liu C, Wang Y, Zhang Z, Sun X. Design and Experimentation of Targeted Deep Fertilization Device for Corn Cultivation. Agriculture. 2024; 14(9):1645. https://doi.org/10.3390/agriculture14091645
Chicago/Turabian StyleQi, Zhongying, Cunliang Liu, Yao Wang, Zhiwei Zhang, and Xiaobo Sun. 2024. "Design and Experimentation of Targeted Deep Fertilization Device for Corn Cultivation" Agriculture 14, no. 9: 1645. https://doi.org/10.3390/agriculture14091645