Research on the Principle of a New Flexible Screw Conveyor and Its Power Consumption
Abstract
:1. Introduction
2. Analysis of the Mechanical Properties of a Single Flexible Blade
2.1. The Radial Analysis of a Single Blade
2.2. The Axial Analysis of a Single Blade
2.3. The Structural Parameters Analysis of the Flexible Blade
2.4. The Flexible Blade Discrete Coefficient
3. The Conveying Power Consumption Model
3.1. Single Particle Motion Analysis
3.2. Power Consumption Calculation
4. Discrete Element Simulation
4.1. The Spiral Angle
4.2. The Different Rotary Speed
5. Test and Results
5.1. Experiments
5.2. Results
6. Conclusions
- (1)
- A flexible screw blade which is made of flexible fiber bundles is proposed as the spiral conveying shaft of screw conveyor for powder conveying. The ability to transmit particles whose diameter is bigger than that of the flexible fibers is verified by experiments.
- (2)
- According to the theory of particle mechanics and material mechanics, the power consumption and conveying quantity model of flexible screw blades for conveying bulk materials are established. The main parameters affecting the conveying amount and power consumption are: helical diameter, spiral rising angle, blade dispersion coefficient, and so on.
- (3)
- The mechanism of flexible spiral blade conveyor is verified by the particle material mechanics software EDEM. From the results of the simulation, we show that the conveying capacity of the particles decreases with the acceleration of the clearance of the flexible helical blades and increases with the speed, diameter, and angle of the screw conveyer; the power consumption of the particle material increases with the speed of the screw conveyor and the diameter of the spiral.
- (4)
- The theoretical and simulation results are verified by experiments. By comparing the power (torque) curves at the same speed, the growth trend of the experimental curves is consistent with the results of the theoretical analysis and simulation curves.
Author Contributions
Acknowledgments
Conflicts of Interest
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Material | Poisson’s Ratio | Modulus of Elasticity (pa) | Density (kg/m3) |
---|---|---|---|
Starch | 0.25 | 2 × 107 | 1500 |
Nylon 66 | 0.28 | 3.2 × 109 | 1130 |
PVC | 0.35 | 3 × 106 | 1400 |
Interaction | Coefficient of Restitution | Static Friction Coefficient | Rolling Friction Coefficient |
---|---|---|---|
Particle to particle | 0.1 | 0.7 | 0.01 |
Particles to nylon | 0.3 | 0.5 | 0.01 |
Particles to PVC tube | 0.3 | 0.5 | 0.01 |
Interaction | Model |
---|---|
Particle to particle | Mertz–Mindin with bonding built-in |
Particles to nylon | Mertz–Mindin (no slip) built-in |
Particles to PVC tube | Mertz–Mindin (no slip) built-in |
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Tian, Y.; Yuan, P.; Yang, F.; Gu, J.; Chen, M.; Tang, J.; Su, Y.; Ding, T.; Zhang, K.; Cheng, Q. Research on the Principle of a New Flexible Screw Conveyor and Its Power Consumption. Appl. Sci. 2018, 8, 1038. https://doi.org/10.3390/app8071038
Tian Y, Yuan P, Yang F, Gu J, Chen M, Tang J, Su Y, Ding T, Zhang K, Cheng Q. Research on the Principle of a New Flexible Screw Conveyor and Its Power Consumption. Applied Sciences. 2018; 8(7):1038. https://doi.org/10.3390/app8071038
Chicago/Turabian StyleTian, Ye, Panpan Yuan, Fei Yang, Jihai Gu, Mengmeng Chen, Junyue Tang, Yilin Su, Tianxiang Ding, Kailiang Zhang, and Qiang Cheng. 2018. "Research on the Principle of a New Flexible Screw Conveyor and Its Power Consumption" Applied Sciences 8, no. 7: 1038. https://doi.org/10.3390/app8071038
APA StyleTian, Y., Yuan, P., Yang, F., Gu, J., Chen, M., Tang, J., Su, Y., Ding, T., Zhang, K., & Cheng, Q. (2018). Research on the Principle of a New Flexible Screw Conveyor and Its Power Consumption. Applied Sciences, 8(7), 1038. https://doi.org/10.3390/app8071038