Design and Testing of a Closed Multi-Channel Air-Blowing Seedling Pick-Up Device for an Automatic Vegetable Transplanter
Abstract
:1. Introduction
2. Materials and Methods
2.1. Machine Structure and Working Principle
2.1.1. Overall Design of Automatic Transplanter
2.1.2. Working Principle of the Seedling Selection System
2.1.3. Working Principle of the Seedling Pick-Up
2.2. Mechanical Model of Plug Seedlings in the Process of Picking Seedlings
- (1)
- Pour compressed air into the seedling cup, F1(t) + mg > f1(t) + Fnj, this is the accelerated falling process.
- (2)
- Stop aeration to the seedling cup, F2(t) + mg < f2(t); this is the plug seedling slow down and stop moving process.
- (3)
- The plug seedlings fall along the seedling tube for a certain distance but do not break away from the seedling tube. At this time, F3(t) + mg > f3(t) is the process of acceleration of the falling of the plug.
2.3. Airflow Simulation Analysis of Air-Blown Seedling Picking
2.4. Experiment Conditions
2.5. Experiment Method and Index
2.6. Orthogonal Experiment
3. Results and Discussion
3.1. Airflow Simulation Result Analysis
3.1.1. Simulation Analysis of Direct-Blowing Seedling Picking
3.1.2. Simulation Analysis of Closed Multi-Channel Air-Blown Seedling Picking
3.2. Single Factor Test
3.2.1. Effects of Plug Moisture Content and Seedling Air Pressure on Substrate Loss Rate
3.2.2. The Relationship between the Qualified Rate of Picking Seedlings and the Time of Air Blowing
3.3. Orthogonal Experiment Results and Analysis
3.4. Discussion
4. Conclusions
- A closed multi-channel air-blowing seedling-picking device was designed, consisting mainly of a combined plug tray, tray feeding device, seedling-picking mechanism, and a seedling-guiding tube. Controlled by a PLC touch screen system, these components work together to achieve low seedling injury, reduced energy consumption, and high-speed seedling picking and placement.
- A dynamic analysis model of plug seedlings was developed to study their movement during the seedling-picking process. Key parameters affecting seedling performance were identified, including the moisture content of the plug, the air pressure for seedling extraction, and the air-blowing duration.
- CFD simulation was conducted for both the closed multi-channel air-blown seedling picking and direct-blowing methods. The results showed that the maximum air velocity on the surface of the closed-type seedling picking plug was 50 m/s, significantly lower than the 100 m/s in the direct-blowing method, resulting in more uniform force distribution on the plug.
- Single-factor test results indicated that when the moisture content of the plug was 20%, air pressure for seedling picking was 0.3 MPa, and air-blowing time exceeded 30 ms, the qualified seedling-picking rate was higher. The orthogonal test results revealed that air-blowing time had a very significant effect on the qualified seedling-picking rate, while the moisture content of the plug and seedling picking pressure had a significant effect. The optimal parameter combination for seedling picking was a plug moisture content of 20%, air pressure of 0.3 MPa, and an air-blowing time of 30 ms. Under these conditions, the qualified seedling picking rate reached 97.22%, and the substrate loss rate was 10.46%, meeting the requirements for pepper seedling picking.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
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Level | Factor | ||
---|---|---|---|
Moisture Content/% A | Seedling Air Pressure/MPa B | Blow Time/ms C | |
1 | 20 | 0.2 | 30 |
2 | 30 | 0.25 | 35 |
3 | 40 | 0.3 | 40 |
Test Number | Influencing Factors | Evaluation Indicators | |||
---|---|---|---|---|---|
A | B | C | Qualified Rate η1/% | Loss Rate η2/% | |
1 | 1 | 1 | 1 | 97.22 | 12.33 |
2 | 1 | 2 | 2 | 91.67 | 15.74 |
3 | 1 | 3 | 3 | 94.44 | 17.56 |
4 | 2 | 1 | 2 | 91.67 | 14.23 |
5 | 2 | 2 | 3 | 86.11 | 26.78 |
6 | 2 | 3 | 1 | 94.44 | 18.87 |
7 | 3 | 1 | 3 | 88.89 | 22.33 |
8 | 3 | 2 | 1 | 91.67 | 24.34 |
9 | 3 | 3 | 2 | 94.44 | 19.80 |
Index | Factor | K1 | K2 | K3 | R | Better Solution |
---|---|---|---|---|---|---|
η1 | A | 283.33 | 272.22 | 275 | 11.11 | A1 |
B | 277.78 | 269.45 | 283.32 | 13.87 | B3 | |
C | 283.33 | 277.78 | 269.44 | 13.89 | C1 | |
Influence | C > B > A | |||||
η2 | A | 45.63 | 59.88 | 66.47 | 20.84 | A1 |
B | 48.89 | 66.86 | 56.23 | 17.97 | B1 | |
C | 55.54 | 49.77 | 66.67 | 16.90 | C2 | |
Influence | A > B > C |
Index | Source | Sum of Square | Degrees of Freedom | Mean Square | F | p |
---|---|---|---|---|---|---|
η1 | A | 22.28 | 2 | 11.14 | 13.02 | 0.071 |
B | 32.50 | 2 | 16.25 | 18.99 | 0.05 | |
C | 32.59 | 2 | 16.29 | 19.04 | 0.049 | |
Error | 1.71 | 2 | 0.86 | |||
sum | 89.08 | 8 | ||||
η2 | A | 75.64 | 2 | 37.82 | 55.51 | 0.0177 |
B | 54.42 | 2 | 27.21 | 39.93 | 0.0244 | |
C | 49.20 | 2 | 24.60 | 36.10 | 0.027 | |
Error | 1.36 | 2 | 0.68 | |||
sum | 180.63 | 8 |
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Zhang, B.; Wen, X.; Wen, Y.; Wang, X.; Zhu, H.; Pan, Z.; Yang, Z. Design and Testing of a Closed Multi-Channel Air-Blowing Seedling Pick-Up Device for an Automatic Vegetable Transplanter. Agriculture 2024, 14, 1688. https://doi.org/10.3390/agriculture14101688
Zhang B, Wen X, Wen Y, Wang X, Zhu H, Pan Z, Yang Z. Design and Testing of a Closed Multi-Channel Air-Blowing Seedling Pick-Up Device for an Automatic Vegetable Transplanter. Agriculture. 2024; 14(10):1688. https://doi.org/10.3390/agriculture14101688
Chicago/Turabian StyleZhang, Bingchao, Xiangyu Wen, Yongshuang Wen, Xinglong Wang, Haoqi Zhu, Zexin Pan, and Zhenyu Yang. 2024. "Design and Testing of a Closed Multi-Channel Air-Blowing Seedling Pick-Up Device for an Automatic Vegetable Transplanter" Agriculture 14, no. 10: 1688. https://doi.org/10.3390/agriculture14101688
APA StyleZhang, B., Wen, X., Wen, Y., Wang, X., Zhu, H., Pan, Z., & Yang, Z. (2024). Design and Testing of a Closed Multi-Channel Air-Blowing Seedling Pick-Up Device for an Automatic Vegetable Transplanter. Agriculture, 14(10), 1688. https://doi.org/10.3390/agriculture14101688