Study and Experiment on Screen Surface Homogenization Technology of Dislodged Material Based on Longitudinal Flow Threshing
Abstract
:1. Introduction
2. Structure and Working Principle of Longitudinal Axial Flow Stripper Reflux Homogenizing Device
3. Determination of the Main Parameters of the Reflux Load Homogenizing Device
3.1. Determination of Reflux Plate Inclination Angle
3.2. Determination of Step Plate Spacing
3.3. Determination of Step Plate Height
3.4. Determination of Reflux Plate Length
3.5. Determination of Return Plate Motor Speed
4. EDEM-Based Simulation of Optimised Tests
4.1. Model and Material Properties
4.2. Reflux Plate Simulation Model
4.3. Effect of Stepped Plate Angle on the Distribution of Exudates
4.4. Optimisation of Stepped Plate Angle Parameters
5. Bench Test
5.1. Test Conditions
5.2. Test Factors and Indicators
5.3. Test Methods
5.4. Analysis of Test Results
5.5. Optimization of Parameters
6. Field Trial Validation
7. Conclusions
- Aiming at the problems of uneven distribution of dislodged material on the screen surface of longitudinal flow grain combine harvester, a large difference in material clearing time, and large clearing loss, a dislodged material homogenizing device that can realize reflux and homogenization of dislodged material at the rear of longitudinal flow has been developed. The structure and motion parameters of the reflux plate were determined, and simulation tests were carried out to verify the optimal parameters of the angle of the stepped plate.
- The relevant test bench was set up, and the Box-Behnken test method was adopted to determine the influence law of each factor on the operating effect and the optimal parameter combination, and the results showed that the tilting angle of the reflux plate, the motor speed and the amplitude had a significant influence on the distribution uniformity of the material on the screen surface; the optimal parameter combination was determined to be the angle of the reflux plate configuration at 28.7°, the motor speed at 247 r/min, and the seed inclusion rate of 0.48% at an amplitude of 18.3 mm. The optimum combination of parameters was determined to be 28.7°, 247 r/min, 18.3 mm, and 0.48% of impurity rate.
- Under this condition, field tests were carried out to verify the results, which were basically consistent with the results of the previous tests, and the error between the optimized test results and the verification results was less than 5%, which proved that it could effectively improve the performance of scavenging and reduce the rate of impurity content.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Contact Parameter | Coefficient of Restitution | Coefficient of Static Friction | Coefficient of Rolling Friction |
---|---|---|---|
Corn kernels/ corn kernels | 0.3 | 0.5 | 0.01 |
Corn kernels/ step plates | 0.3 | 0.38 | 0.01 |
Corn kernels/ step plates | 0.29 | 0.38 | 0.01 |
Maize kernel/ cob | 0.2 | 0.6 | 0.01 |
Corn kernels/ corn kernels | 0.3 | 0.7 | 0.01 |
Materials | Sorghum | Step Plates |
---|---|---|
Poisson’s ratio | 0.3 | 0.24 |
Shear modulus/Pa | 1.0 × 107 | 7.9 × 107 |
Densities/kg·m−3 | 900 | 7850 |
Column 1 | Column 2 | Column 3 | Column 4 | Column 5 | Column 6 | |
---|---|---|---|---|---|---|
Seed quality (g) | 506.8 | 352.4 | 204 | 167.2 | 183.2 | 203.2 |
Rate of seed production (g/s) | 101.36 | 70.48 | 40.24 | 33.44 | 36.64 | 40.64 |
Column 1 | Column 2 | Column 3 | Column 4 | Column 5 | Column 6 | |
---|---|---|---|---|---|---|
Trash mass (g) | 54.8 | 65.6 | 55.6 | 52.8 | 21.6 | 35.2 |
Rate of generation of impurities (g/s) | 10.66 | 13.12 | 13.04 | 10.56 | 4.32 | 6.74 |
Sports Event | Work Unit (One’s Workplace) | Parameters |
---|---|---|
L × W × H | mm | 1540 × 640 × 1000 |
Motor power of cleaning sieve | KW | 2.2 |
Motor power of reflux plate | KW | 3 |
Cleaning sieve size | mm | 540 × 1200 |
Reflux plate size | mm | 480 × 560 |
Fan speed | r/min | 900~1500 |
Dimensions of collection unit (L × W) | mm | 600 × 400 |
Encodings | Factors | ||
---|---|---|---|
/° | /r/min | /mm | |
−1 | 26 | 225 | 15 |
0 | 29 | 250 | 18 |
1 | 32 | 275 | 21 |
Serial Number | Tilt Angle X1 | Motor Speed X2 | Amplification X3 | Seed Impurity Rate Y/% |
---|---|---|---|---|
1 | −1 | −1 | 0 | 2.41 |
2 | 1 | −1 | 0 | 3.27 |
3 | −1 | 1 | 0 | 3.01 |
4 | 1 | 1 | 0 | 4.21 |
5 | −1 | 0 | −1 | 2.63 |
6 | 1 | 0 | −1 | 3.05 |
7 | −1 | 0 | 1 | 2.44 |
8 | 1 | 0 | 1 | 4.03 |
9 | 0 | −1 | −1 | 3.58 |
10 | 0 | 1 | −1 | 2.54 |
11 | 0 | −1 | 1 | 2.78 |
12 | 0 | 1 | 1 | 4.07 |
13 | 0 | 0 | 0 | 1.56 |
14 | 0 | 0 | 0 | 1.55 |
15 | 0 | 0 | 0 | 1.57 |
16 | 0 | 0 | 0 | 1.58 |
17 | 0 | 0 | 0 | 1.62 |
Source of Variation | The Sum of the Squared Deviations from the Mean | (Number of) Degrees of Freedom | Mean Square | F | p |
---|---|---|---|---|---|
model | 13.63 | 9 | 1.51 | 49.3 | <0.0001 ** |
2.07 | 1 | 2.07 | 67.4 | <0.0001 ** | |
0.4 | 1 | 0.4 | 13.04 | 0.0086 ** | |
0.29 | 1 | 0.29 | 9.4 | 0.0182 * | |
3 × 10−2 | 1 | 3 × 10−2 | 0.94 | 0.3644 | |
0.34 | 1 | 0.34 | 11.14 | 0.0125 * | |
1 × 10−3 | 1 | 1.36 | 44.18 | 0.0003 ** | |
2.22 | 1 | 2.22 | 72.24 | <0.0001 ** | |
3.65 | 1 | 3.65 | 18.79 | <0.0001 ** | |
2.33 | 1 | 2.33 | 75.76 | <0.0001 ** | |
residual | 0.22 | 7 | 3 × 10−2 | ||
lost proposal | 0.21 | 3 | 0.07 | 44.33 | 0.0016 |
pure error | 6 × 10−3 | 4 | 1.5 × 10−3 | ||
inaccuracies | 13.85 | 16 |
Serial Number | Seed Impurity (%) |
---|---|
1 | 0.48 |
2 | 0.51 |
3 | 0.49 |
4 | 0.52 |
5 | 0.47 |
6 | 0.48 |
Test Number | Original Program Impurity Rate (%) | Optimization Plan Impurity Rate (%) |
---|---|---|
1 | 1.58 | 0.48 |
2 | 1.57 | 0.45 |
3 | 1.62 | 0.52 |
average value | 1.59 | 0.48 |
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Ming, J.; He, Q.; Yue, D.; Ma, J.; Wang, Y.; Yin, J.; Cui, Y.; Geng, D. Study and Experiment on Screen Surface Homogenization Technology of Dislodged Material Based on Longitudinal Flow Threshing. Agriculture 2024, 14, 731. https://doi.org/10.3390/agriculture14050731
Ming J, He Q, Yue D, Ma J, Wang Y, Yin J, Cui Y, Geng D. Study and Experiment on Screen Surface Homogenization Technology of Dislodged Material Based on Longitudinal Flow Threshing. Agriculture. 2024; 14(5):731. https://doi.org/10.3390/agriculture14050731
Chicago/Turabian StyleMing, Jiarui, Qinghao He, Dong Yue, Jie Ma, Yanan Wang, Jianning Yin, Yipeng Cui, and Duanyang Geng. 2024. "Study and Experiment on Screen Surface Homogenization Technology of Dislodged Material Based on Longitudinal Flow Threshing" Agriculture 14, no. 5: 731. https://doi.org/10.3390/agriculture14050731
APA StyleMing, J., He, Q., Yue, D., Ma, J., Wang, Y., Yin, J., Cui, Y., & Geng, D. (2024). Study and Experiment on Screen Surface Homogenization Technology of Dislodged Material Based on Longitudinal Flow Threshing. Agriculture, 14(5), 731. https://doi.org/10.3390/agriculture14050731