Tribo-Brake Characteristics between Brake Disc and Brake Shoe during Emergency Braking of Deep Coal Mine Hoist with the High Speed and Heavy Load
Abstract
:1. Introduction
2. Thermo-Mechanical Finite Element Model of Brake Disc and Brake Shoe
2.1. Calculation of Prototype Model Parameters of the Disc Brake of Deep Coal Mine Hoist
2.2. Determination of Scaled Parameters of Disc Brake of the Deep Coal Mine Hoist
- (1)
- Friction radius of brake disc
- (2)
- Geometric dimension of brake shoe
- (3)
- Moment of inertia
- (4)
- Specific pressure
2.3. Material Parameters
2.4. Determination of Finite Element Model Parameters
- (1)
- Coefficient of friction
- (2)
- Angular velocity during braking
- (3)
- Convective heat transfer coefficient
2.5. Coupled Thermo-Mechanical Finite Element Model of Brake Disc And Brake Shoe
3. Coupled Thermo-Mechanical Simulation Results of Brake Disc and Brake Shoe
3.1. Temperature and Stress Distributions of Brake Disc and Brake Shoe During Emergency Braking
3.1.1. Temperature Distribution
3.1.2. Equivalent Stress Distribution
3.2. Evolutions of Temperature And Stress Distributions of Brake Disc And Brake Shoe during Emergency Braking
3.2.1. Temperature Distribution
3.2.2. Equivalent Von Mises Stress Distribution
3.2.3. Contact Pressure Distribution
3.3. Validation of Finite Element Model Based on the Engineering Failure Case
4. Frictional Flutter Characteristics between Brake Disc and Brake Shoe
4.1. Theoretical Background
4.2. Effects of Braking Parameters on the Flutter Characteristics between Brake Disc and Brake Shoe
- (1)
- Effect of initial braking speed
- (2)
- Effect of normal braking load
- (3)
- Effect of damping parameter
- (4)
- Effect of stiffness parameter
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Equivalent Mass (tons) | Maximum Static Tension Difference of Hoist (tons) | Diameter of Brake Disc (m) | Pairs of Brake Shoe | Area of a Brake Shoe (m2) | Maximum Brake Pressure (kN) | |||
---|---|---|---|---|---|---|---|---|
Hoist | Motor | Effective Load | Sheave | |||||
32.2 | 9.52 | 60 | 39.4 | 91.68 | 5 | 12 | 0.0494 | 160–200 |
Prototype Model | Scaled Model | Similarity Coefficient | |
---|---|---|---|
Radius of brake disc | r1 (m) | r2 (m) | Kr = r2/r1 |
Spindle speed | n1 (r/min) | n2 (r/min) | Kn = n2/n1 |
Moment of inertia | J1 (kg·m2) | J2 (kg·m2) | KJ = J2/J1 |
Friction radius | R1 (m) | R2 (m) | KR = R2/R1 |
Brake torque | M1 (N·m) | M2 (N·m) | KM = M2/M1 |
Number of friction surface | C1 | C2 | KC = C2/C1 |
Friction surface area | S1 (m2) | S2 (m2) | KS = S2/S1 |
Friction work per unit area | E1 (J) | E2 (J) | KE = E2/E1 |
Angular deceleration during braking | α1 (m/s2) | α2 (m/s2) | Ka = α2/α1 |
Density (kg/m3) | Young’s Modulus (Pa) | Poisson’s Ratio | Thermal Expansion Coefficient (10−5/K) | Thermal Conductivity (W/(m·K)) | Specific Heat Capacity (J/(kg·K)) | |
---|---|---|---|---|---|---|
Brake shoe | 2250 | 2.2 × 109 | 0.25 | 3 | 1.4 | 2550 |
Brake disc | 7850 | 2.09 × 1011 | 0.3 | 1.2 | 58 | 460 |
Analysis Step | Contact Pressure (Pa) | Rotational Speed (rad/s) | Time (s) |
---|---|---|---|
1 | 10 | 0 | 0.001 |
2 | 1.6 × 106 | 1 | 0.001 |
3 | 1.6 × 106 | 133.33 | 0.001 |
4 | 1.6 × 106 | ω | 4.5 |
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Wang, D.; Wang, R.; Heng, T.; Xie, G.; Zhang, D. Tribo-Brake Characteristics between Brake Disc and Brake Shoe during Emergency Braking of Deep Coal Mine Hoist with the High Speed and Heavy Load. Energies 2020, 13, 5094. https://doi.org/10.3390/en13195094
Wang D, Wang R, Heng T, Xie G, Zhang D. Tribo-Brake Characteristics between Brake Disc and Brake Shoe during Emergency Braking of Deep Coal Mine Hoist with the High Speed and Heavy Load. Energies. 2020; 13(19):5094. https://doi.org/10.3390/en13195094
Chicago/Turabian StyleWang, Dagang, Ruixin Wang, Tong Heng, Guozheng Xie, and Dekun Zhang. 2020. "Tribo-Brake Characteristics between Brake Disc and Brake Shoe during Emergency Braking of Deep Coal Mine Hoist with the High Speed and Heavy Load" Energies 13, no. 19: 5094. https://doi.org/10.3390/en13195094
APA StyleWang, D., Wang, R., Heng, T., Xie, G., & Zhang, D. (2020). Tribo-Brake Characteristics between Brake Disc and Brake Shoe during Emergency Braking of Deep Coal Mine Hoist with the High Speed and Heavy Load. Energies, 13(19), 5094. https://doi.org/10.3390/en13195094