Design and Performance Analysis of a Sunflower Cutting Table Based on the Principle of Manual Disk Pick-Up
Abstract
:1. Introduction
2. Materials and Methods
2.1. Plant Materials and Field Conditions
2.2. Device Structure
2.3. Working Principle of the Cutting Table
2.4. Working Principle of the Pick-Up Disk Drive
2.5. Analysis of the Harvest Process
2.6. One-Factor Simulation Test of a Harvest Divider
2.6.1. Modeling
- The sunflower rod created in SolidWorks was saved as a step file and imported into HyperMesh software. The minimum mesh edge length was set to 3 mm to mesh the model, and 114,798 meshes were generated. The relevant literature was referenced to set the mass density of the sunflower rod to 438 kg/m3, the elastic modulus to 1.34 × 105 MPa, Poisson’s ratio to 0.3, and the modulus to 15. We set the mass density of the sunflower rods to 438 kg/m3, the elastic modulus to 1.34 × 105 MPa, Poisson’s ratio to 0.3, and the modal order to 15. We created two rigid regions at the two end faces of the sunflower rod and took the center of the two end faces as the connecting point. Then, we output the MNF file, which contains the shape and characteristics of the sunflower rod;
- We created a 3D model of the cutting table and the sunflower disk in SolidWorks, imported it into ADAMS after simplified processing, and opened the generated MNF file in the specified directory through the Flexible Bodies option of ADAMS;
- We defined the material, constraint relationship, drive and contact, and default components of the cutting table as rigid bodies. We referred to the relevant literature to define the material of the sunflower disk [25,26]. We added the moving vice between the cutting table and the ground to regulate the forward speed, added the contact force between the sunflower rod and the cutting table, and added the type of contact between the flexible and solid bodies. To better reflect the connection between sunflower stalks and the ground when the stalks are in contact with the divider, the sunflower stalks were connected to the ground through bushing [27]. The top of the sunflower stalks and the sunflower disk were combined to imitate the sunflower insertion disk situation. The belts on both sides were generated through the plug-in that comes with ADAMS software. Contact with the sunflower disk was added; the mobile valve between the cutting table and the pick-up disk device was added; and the contact forces between the cutting table and the pick-up disk device were added through the definition of the driver. We restored the motor work process. We took the sunflower disk device and sunflower disk to add contact between the sunflower disk and sunflower rod through the bushing connection to simulate the insertion of the disk state, sunflower rod, and sunflower disk. Further, we added a sensor to detect when the distance between the sunflower disk and the sunflower rod is greater than 30 mm. This helps to control the bushing failure in the sunflower disk and ensure the cutter table is in the appropriate position. Moreover, we added a sensor between the two points. When the distance between the two points is less than 10 mm, the motor starts to work, thus simulating the process of sensing the sunflower stem by the travel switch;
- Measurements were taken between the top of the sunflower stalk and the ground, and the deformation degree of the stalk was observed by detecting the displacement of the top and bottom of the stalk. The motion simulation of the cutting table is shown in Figure 7.
2.6.2. Stalk-Feeding Simulation
2.7. Pick-Up Disk Movement Analysis
3. Results and Analysis
3.1. Test Conditions
3.2. Experimental Factors and Levels
3.3. Test Indicators and Program
3.4. Experimental Results and Analysis
3.5. Optimal Parameter Combination and Validation
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Parameters | Numerical Value |
---|---|
Overall dimensions/(mm × mm × mm) | 3500 × 2000 × 1000 |
Working width/(mm) | 3000 |
Number of working groups | 9 |
Individual motor power/(kW) | 1.5 |
Induction device | travel switch |
Symbol | Interpretation | Numerical Value |
---|---|---|
γ | Critical fracture angle of sunflower stalks in the insertion disk, ° | 19 |
μ | Friction coefficient between sunflower stalk and harvest divider | 0.2~0.6 |
h | Height of contact point A from the ground, mm | ≥480 |
e | Average diameter of the sunflower disk, mm | 220 |
h1 | Height of the sunflower insert, mm | >700 |
Forward Speed | Coding Factor | ||
---|---|---|---|
Forward Speed A (m·s−1) | Pick-Up Disk Device Speed B (m·s−1) | Plate Insertion Height C (mm) | |
1 | 0.5 | 0.3 | 800 |
2 | 0.6 | 0.4 | 900 |
3 | 0.7 | 0.5 | 1000 |
Serial Number | Considerations | Seed Loss Rate Y1/(%) | Disk Pick-Up Success Rate Y2/(%) | ||
---|---|---|---|---|---|
A /(m·s−1) | B /(m·s−1) | C /(mm) | |||
1 | 0.6 | 0.3 | 1000 | 3.98 | 95.82 |
2 | 0.5 | 0.5 | 900 | 3.95 | 94.26 |
3 | 0.6 | 0.4 | 900 | 3.23 | 94.65 |
4 | 0.5 | 0.4 | 1000 | 3.29 | 92.18 |
5 | 0.7 | 0.5 | 900 | 5.58 | 94.38 |
6 | 0.6 | 0.4 | 900 | 3.37 | 94.57 |
7 | 0.5 | 0.4 | 800 | 3.35 | 90.02 |
8 | 0.6 | 0.4 | 900 | 3.36 | 94.89 |
9 | 0.6 | 0.3 | 800 | 4.61 | 94.94 |
10 | 0.7 | 0.4 | 1000 | 3.58 | 93.96 |
11 | 0.7 | 0.4 | 800 | 4.85 | 92.52 |
12 | 0.6 | 0.4 | 900 | 3.57 | 95.05 |
13 | 0.7 | 0.3 | 900 | 4.91 | 95.46 |
14 | 0.6 | 0.4 | 900 | 3.24 | 94.96 |
15 | 0.6 | 0.5 | 1000 | 4.44 | 97.03 |
16 | 0.6 | 0.5 | 800 | 5.31 | 94.05 |
17 | 0.5 | 0.3 | 900 | 4.32 | 91.29 |
Source of Variance | Seed Loss Rate | Disk Pick-Up Success Rate | ||||||
---|---|---|---|---|---|---|---|---|
Sum of Squares | Degrees of Freedom | F | p | Sum of Squares | Degrees of Freedom | F | p | |
Model | 9.45 | 9 | 37.80 | <0.0001 *** | 47.25 | 9 | 75.72 | <0.0001 *** |
A | 2.01 | 1 | 72.34 | <0.0001 *** | 9.18 | 1 | 132.42 | <0.0001 *** |
B | 0.2664 | 1 | 9.59 | 0.0174 * | 0.6105 | 1 | 8.81 | 0.0209 * |
C | 1.00 | 1 | 36.03 | 0.005 ** | 6.96 | 1 | 100.34 | <0.0001 *** |
AB | 0.2704 | 1 | 9.73 | 0.0169 * | 4.10 | 1 | 59.15 | <0.0001 *** |
AC | 0.3660 | 1 | 13.17 | 0.0084 ** | 0.1296 | 1 | 1.87 | 0.2138 |
BC | 0.0144 | 1 | 0.5183 | 0.4949 | 1.10 | 1 | 15.90 | 0.0053 ** |
A2 | 0.2830 | 1 | 10.19 | 0.0152 ** | 19.16 | 1 | 276.38 | <0.0001 *** |
B2 | 4.88 | 1 | 175.69 | <0.0001 *** | 5.63 | 1 | 81.27 | <0.0001 *** |
C2 | 0.1002 | 1 | 3.61 | 0.0994 | 1.14 | 1 | 16.47 | 0.0048 ** |
residual | 0.1945 | 7 | 0.4853 | 7 | ||||
Misfit term | 0.1192 | 3 | 2.11 | 0.2417 | 0.3166 | 3 | 2.50 | 0.1984 |
Error | 0.0753 | 4 | 0.1687 | 4 | ||||
Sum | 9.65 | 16 | 47.73 | 16 |
Norm | Seed Loss Rate Y1/% | Disk Pick-Up Success Rate Y2/% |
---|---|---|
Theoretical value | 3.23 | 95.461 |
Validation value | 3.44 | 94.131 |
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Li, B.; Gao, X.; Chen, X.; Liu, Y.; Wang, S.; Dong, Y. Design and Performance Analysis of a Sunflower Cutting Table Based on the Principle of Manual Disk Pick-Up. Agriculture 2024, 14, 446. https://doi.org/10.3390/agriculture14030446
Li B, Gao X, Chen X, Liu Y, Wang S, Dong Y. Design and Performance Analysis of a Sunflower Cutting Table Based on the Principle of Manual Disk Pick-Up. Agriculture. 2024; 14(3):446. https://doi.org/10.3390/agriculture14030446
Chicago/Turabian StyleLi, Bin, Xiaolong Gao, Xuegeng Chen, Yang Liu, Shiguo Wang, and Yuncheng Dong. 2024. "Design and Performance Analysis of a Sunflower Cutting Table Based on the Principle of Manual Disk Pick-Up" Agriculture 14, no. 3: 446. https://doi.org/10.3390/agriculture14030446
APA StyleLi, B., Gao, X., Chen, X., Liu, Y., Wang, S., & Dong, Y. (2024). Design and Performance Analysis of a Sunflower Cutting Table Based on the Principle of Manual Disk Pick-Up. Agriculture, 14(3), 446. https://doi.org/10.3390/agriculture14030446