Numerical Study of Pneumatic Conveying of Rapeseed through a Pipe Bend by DEM-CFD
Abstract
:1. Introduction
2. Materials and Methods
2.1. Model Description
2.1.1. Pneumatic Seed Metering System
2.1.2. Seed Tube Design
2.1.3. Particle–Wall Collision Analysis
2.2. Numerical Simulation
2.2.1. Model of Particle
2.2.2. Model of Fluid
2.2.3. DEM-CFD Coupling
2.2.4. Numerical Setup
2.2.5. Mesh Dependence Analysis
3. Results
3.1. Model Validation
3.2. Effect of Seed Tube Structure on Airflow Field
3.3. Effect of Seed Tube Structure on Seed Movement Characteristics
4. Conclusions
- The main structural parameters of the corrugated, ordinary round-tube, and hole-type seed tubes were determined. Based on the Herz contact model, the collision contact between rapeseeds and the wall surface was analyzed when the wall of the seed tube was smooth and uneven. During the process, the virtual wall was used to study the collision of seeds on the concave-convex tube wall, so as to obtain the motion formula after the rapeseeds collided with the tube wall.
- In this paper, the effect of the vertical conveying pipe structure of the seed guiding pipe on the uniformity of the seed flow was determined. The gas-solid coupling method of DEM-CFD was used to analyze the distribution of the air flow field of the seeds in the corrugated, hole-type, and ordinary round-tube seed tubes, and the movement characteristics of rapeseeds in different seed tubes were analyzed. The results show that the vertical conveying tube of the seed tube plus the corrugated or hole-type shape significantly affected the airflow field in the seed tube. The maximum airflow velocity was 32.48 and 26.20 m/s, respectively; the vertical conveying pipe of the seed tube plus corrugated and hole-shaped structures are beneficial in improving the damage to the uniform seed flow caused by the near-wall movement of the seed through the elbow part. The speed and force of the seeds in the corrugated and hole-shaped seed tubes were similar to the “sinusoidal fluctuation” trend, thus facilitating the uniform distribution of the seeds. However, the maximum force of the seeds in the hole-type seed tube fluctuated significantly, meaning they were more prone to the phenomenon of a surge in force. For the corrugated type, it will negatively affect the breakage of the seeds.
- The bench test verifies the feasibility of the DEM-CFD coupled simulation. The airflow velocity at the vertical conveying pipe was examined when the airflow velocity at the entrance of the ordinary round-tube seed tube was 16 m/s and there was no material. Compared with the airflow velocity obtained by simulation, it was found that the average error between the simulated value and the measured value was 6.71%, which is acceptable in the application of such engineering problems with complex factors in agricultural engineering. The reliability of the results of the simulation of the internal flow field in the seed tube of the air-feeding seed metering system.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameters | Corrugated Type | Holes-Type | Ordinary Tube Seed Tube |
---|---|---|---|
Inside diameter of tube, D (mm) | 40 | 40 | 40 |
The depth of the corrugations or holes, H (mm) | 5 | 7 | |
The spacing of the corrugations or holes, P (mm) | 20 | 20 | |
The length of the corrugations or holes, L (mm) | 167 | 165 | |
The diameter of the holes, φ (mm) | 6 | ||
The angle between the two holes, α (mm) | 72 |
Case | Parameters | Values |
---|---|---|
EDEM software | time step/s | 5 × 10−6 |
save interval/s | 0.01 | |
acceleration of gravity/(m/s2) | 9.81 | |
Fluent software | time step/s | 2 × 10−3 |
save interval/s | 0.05 | |
current density/(kg/m3) | 1.225 | |
air viscosity coefficient/(Pa·s) | 1.789 × 10−5 | |
Rapeseed | poisson ratio | 0.25 |
shear modulus /Pa | 1.1 × 107 | |
density/(kg/m3) | 1060 | |
Seed tube | poisson ratio | 0.3 |
shear modulus /Pa | 2.7 | |
density/(kg/m3) | 2700 × 1010 | |
Rapeseed–rapeseed contact parameters | coefficient of restitution | 0.6 |
coefficient of static friction | 0.5 | |
dynamic friction factor | 0.01 | |
Rapeseed–seed tube contact parameters | coefficient of restitution | 0.6 |
coefficient of static friction | 0.3 | |
dynamic friction factor | 0.01 |
Velocity/(m.s−1) | Position/(mm) | |||
---|---|---|---|---|
A | B | C | D | |
1 | 14.11 | 13.09 | 15.40 | 15.43 |
2 | 13.70 | 13.97 | 14.05 | 15.60 |
3 | 14.74 | 14.65 | 15.54 | 15.86 |
4 | 14.62 | 13.03 | 14.23 | 16.10 |
5 | 12.90 | 14.11 | 15.91 | 15.80 |
6 | 14.09 | 14.56 | 15.82 | 15.59 |
7 | 13.95 | 14.64 | 15.68 | 15.66 |
8 | 14.25 | 13.86 | 16.05 | 15.49 |
9 | 14.30 | 14.29 | 15.22 | 16.08 |
10 | 13.56 | 15.33 | 15.93 | 15.76 |
average | 14.02 | 14.15 | 15.38 | 15.74 |
standard deviation | 0.51 | 0.68 | 0.67 | 0.22 |
Position/(mm) | Gas Velocity/( m.s−1) | Errors | |
---|---|---|---|
Simulation Value | Examined Value | ||
A | 14.35 | 14.02 | 2.35 |
B | 15.48 | 14.15 | 9.40 |
C | 16.52 | 15.38 | 7.41 |
D | 16.95 | 15.74 | 7.69 |
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Xiao, Y.; Ma, Z.; Wu, M.; Luo, H. Numerical Study of Pneumatic Conveying of Rapeseed through a Pipe Bend by DEM-CFD. Agriculture 2022, 12, 1845. https://doi.org/10.3390/agriculture12111845
Xiao Y, Ma Z, Wu M, Luo H. Numerical Study of Pneumatic Conveying of Rapeseed through a Pipe Bend by DEM-CFD. Agriculture. 2022; 12(11):1845. https://doi.org/10.3390/agriculture12111845
Chicago/Turabian StyleXiao, Yao, Zitao Ma, Mingliang Wu, and Haifeng Luo. 2022. "Numerical Study of Pneumatic Conveying of Rapeseed through a Pipe Bend by DEM-CFD" Agriculture 12, no. 11: 1845. https://doi.org/10.3390/agriculture12111845
APA StyleXiao, Y., Ma, Z., Wu, M., & Luo, H. (2022). Numerical Study of Pneumatic Conveying of Rapeseed through a Pipe Bend by DEM-CFD. Agriculture, 12(11), 1845. https://doi.org/10.3390/agriculture12111845