Analysis of Scraper Conveyor Chain Dynamics under Falling Coal Impact Conditions
Abstract
:1. Introduction
2. Methodology
2.1. Coal Impact Theory
2.2. Adams-EDEM Coupling Model Creation
3. Results and Discussion
3.1. Simulation Programming
3.2. Simulation and Analysis of Chain Drive System under Stable Operating Conditions
3.2.1. Chain Ring Contact Force Analysis
3.2.2. Scraper Vibration Acceleration Analysis
3.3. Simulation and Analysis of Shock in Chain Drive System under No-Load Condition
3.3.1. Chain Ring Impact Analysis
3.3.2. Chain Ring Contact Force Analysis
3.3.3. Scraper Vibration Acceleration Analysis
3.4. Simulation and Analysis of the Impact of Chain Drive System under Loaded Condition
3.4.1. Chain Ring Impact Analysis
3.4.2. Analysis of Contact Force in Chain Links
3.4.3. Scraper Vibration Acceleration Analysis
4. Conclusions
- (1)
- The acceleration of the scraper in all three directions under loaded conditions is greater than under unloaded conditions, with the highest acceleration occurring in the running direction. The loaded coal pile increases the speed of the driven sprocket.
- (2)
- As the mass of falling coal increases, the longitudinal impact force on the chain ring exhibits a clear linear relationship: . The maximum acceleration fluctuation of the scraper occurs in the longitudinal direction, while the transverse acceleration fluctuation lasts the longest.
- (3)
- Compared to the unloaded condition, the loaded coal pile in the loaded condition reduces the three-way impact force and three-way acceleration fluctuations experienced by the chain ring due to its cushioning and stabilizing effects. However, the three-way contact force between the chain rings is greater than in the unloaded condition. Thus, under the impact of falling coal, the loaded coal pile has a damping effect on the vibration of the chain drive system but increases the contact force between the chain rings.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Attribute | Particle Radius (mm) | Particle Density (kg/m3) | Young’s Modulus (Pa) | Shear Modulus (Pa) | Poisson’s Ratio |
---|---|---|---|---|---|
numerical value | 38.8 | 7801 | 1011 | 1010 | 0.29 |
Groups | Operational State | Coal Transportation | Falling Coal Mass (kg) |
---|---|---|---|
1 | Run smoothly | No-load condition | - |
2 | Loaded working condition | - | |
3 | Impact condition | No-load condition | 20 |
4 | 40 | ||
5 | 60 | ||
6 | Loaded working condition | 20 | |
7 | 40 | ||
8 | 60 |
Type of Working Condition | Orthogonal | Vertically | Running Direction |
---|---|---|---|
No-load condition | 0.12382 N | 160.01 N | 9876.1 N |
Loaded condition | 2.5852 N | 137.82 N | 10,829 N |
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Jiang, S.; Zhang, Y.; Zeng, Q.; Chen, S.; Qu, W.; Zhang, H. Analysis of Scraper Conveyor Chain Dynamics under Falling Coal Impact Conditions. Machines 2024, 12, 648. https://doi.org/10.3390/machines12090648
Jiang S, Zhang Y, Zeng Q, Chen S, Qu W, Zhang H. Analysis of Scraper Conveyor Chain Dynamics under Falling Coal Impact Conditions. Machines. 2024; 12(9):648. https://doi.org/10.3390/machines12090648
Chicago/Turabian StyleJiang, Shoubo, Yuqi Zhang, Qingliang Zeng, Shaojie Chen, Wei Qu, and Hongwei Zhang. 2024. "Analysis of Scraper Conveyor Chain Dynamics under Falling Coal Impact Conditions" Machines 12, no. 9: 648. https://doi.org/10.3390/machines12090648
APA StyleJiang, S., Zhang, Y., Zeng, Q., Chen, S., Qu, W., & Zhang, H. (2024). Analysis of Scraper Conveyor Chain Dynamics under Falling Coal Impact Conditions. Machines, 12(9), 648. https://doi.org/10.3390/machines12090648