Design and Experiment of Nondestructive Post-Harvest Device for Tomatoes
Abstract
:1. Introduction
2. Machine Structure and Working Principle
2.1. Whole Machine Structure of the Tomato Harvester
2.2. Working Principle
3. Design of Non-Destructive Collection Device
3.1. Net Bag Mechanism
3.1.1. Working Principle of Net Bag Mechanism
3.1.2. Dimension Parameter Calculation of the Net Bag Mechanism
- The tomato with the smallest diameter could not collide with the lower frame of the net bag.
- The tomato with the largest diameter could not collide with the upper frame, and could be unloaded to the conveyor belt through the net bag smoothly.
3.1.3. The Hyperelastic Constitutive Model of Rubber Materials
3.2. The Conveying and Collecting Mechanism
4. Simulation Experiment of Tomato Mechanical Damage under Different Working Conditions
4.1. Simulation Environment Construction
- Condition 1: Tomato falls into the net bag
- Condition 2: Tomatoes are put on the conveyor belt by the net bag
- Condition 3: Tomatoes enter the collection box from the conveyor belt
4.2. Simulation Results
4.3. Comparison of Energy Absorption Effect of the Net Bag Mechanism
5. Test of the Post-Harvest Prototype
5.1. Test Conditions
5.2. Test Method
5.3. Test Results
6. Discussion
- (1)
- Different tomatoes had different biological parameters, resulting in different tissue mechanical properties. In addition, some tomatoes may have been infected by the flora in the natural environment, resulting in folds and mildew.
- (2)
- According to the stress results, the simulation test could judge whether the tomato had bio-yield deformation. When the peak stress was close to but not exceeding the yield point, a small number of cells may have ruptured. In the prototype test environment, ruptured cells would produce a series of enzymatic reactions, which would deepen the color of tomatoes and cause shrinkage, resulting in a shortened shelf life.
7. Conclusions
- (1)
- The LS-DYNA explicit dynamics solver was used to analyzing the operation effect of the post-harvest collection device. Three post-harvest working conditions were simulated to obtain the damage data to tomatoes. The simulation results showed that the post-harvest collection device would not cause mechanical damage to the tomatoes, and the relevant numerical results were important references for structural optimization.
- (2)
- As an energy buffering-absorbing structure, the working effect of the V-shaped rubber net bag was evaluated. Compared with the conveyor belt where the tomatoes directly collided with the PVC material, the peak internal energy of the tomatoes was reduced by 45.9 × 10−3 J, and the energy absorption rate of the rubber net bag reached 72.4%.
- (3)
- The prototype test results showed that the damage rate of tomatoes at the color turning stage was only 1.9%, which was almost undamaged. While the tomato at the red ripening stage reached 9.5%, that was why greenhouse tomatoes were usually not harvested at the mature stage.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Value |
---|---|
Picking vehicle length × width × height/mm | 1072 × 709 × 407 |
Transport vehicle length × width × height/mm | 884 × 561 × 407 |
weight/kg | 80 |
Rated power/w | 400 |
Running speed/(m s−1) | 1~2 |
Endurance time/h | ≥6 |
Picking height range/cm | 46~120 |
Communication interface | RS232 |
Parameter | Value |
---|---|
Tomato density/(g cm−3) | 0.99 |
Tomato elastic modulus/MPa | 0.66 |
Poisson’s ratio of tomato | 0.37 |
Tomato Yield Stress/MPa | 0.122 |
Silicone rubber density/(g cm−3) | 1.4 |
Silicone rubber material parameter C10/MPa | −42.38 |
Silicone rubber material parameter C01/MPa | 56.97 |
Net bag border density/(g cm−3) | 2.7 |
Net bag frame elastic modulus/MPa | 70,000 |
Net bag border Poisson’s ratio | 0.33 |
Parameter | Value |
---|---|
Tomato number/pc | 200 |
Tomato diameter/mm | 66.5 ± 3 |
Conveyor speed/(r min−1) | 9 |
Corrugated paper thickness/mm | 3 |
Room temperature/°C | 20 ± 5 |
Source | Method | Reported Metrics |
---|---|---|
Chen et al. [11] | A pneumatic sucking-gripping integrated non-destructive end-effector | Damage rate during tomato picking is 2.58% |
Miao et al. [14] | Designed a compliant mechanism and studied the compliant constant force characteristics | Damage rate of apples lowered to 5% |
Wang et al. [35] | Conveyer belt type packing scheme and rotary separation type packing scheme | The average damage rate during the fall is 5.05% |
Shan et al. [36] | Hand-arm cooperative damage-free harvesting system | The average harvest time is 18.93 s and average shatter is 0.3 out of 18 |
Zhoue et al. [37] | Flexible end-effector designed by genetic algorithm according to the pyhsical characteristics of tomatoes and simulation results | Tomatoes would be successfully clamped by the end-effector with the inflation pressure less than the optimized inflation pressure |
Byshov et al. [38] | Increase contact area of the fruit and container and reduce the space for the free movement of products | The maximum speed of the proposed vehicle is 1.2–1.22 times greater than the base variant trailer |
Proposed | Nondestructive post-harvest collection operation mode | The degree of mechanical damage at the color turning stage is 1.9% |
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Zu, L.; Han, M.; Liu, J.; Liu, P.; Li, T.; Su, F. Design and Experiment of Nondestructive Post-Harvest Device for Tomatoes. Agriculture 2022, 12, 1233. https://doi.org/10.3390/agriculture12081233
Zu L, Han M, Liu J, Liu P, Li T, Su F. Design and Experiment of Nondestructive Post-Harvest Device for Tomatoes. Agriculture. 2022; 12(8):1233. https://doi.org/10.3390/agriculture12081233
Chicago/Turabian StyleZu, Linlu, Mingzheng Han, Jiuqin Liu, Pingzeng Liu, Tianhua Li, and Fei Su. 2022. "Design and Experiment of Nondestructive Post-Harvest Device for Tomatoes" Agriculture 12, no. 8: 1233. https://doi.org/10.3390/agriculture12081233
APA StyleZu, L., Han, M., Liu, J., Liu, P., Li, T., & Su, F. (2022). Design and Experiment of Nondestructive Post-Harvest Device for Tomatoes. Agriculture, 12(8), 1233. https://doi.org/10.3390/agriculture12081233