Study on the Effect of Thermal Characteristics of Grease-Lubricated High-Speed Silicon Nitride Full Ceramic Ball Bearings in Motorized Spindles
Abstract
:1. Introduction
2. Analysis of Grease Filling Amount and Heat Generation in Full Ceramic Angular Contact Ball Bearings
2.1. Calculation of Lubricating Grease Filling Amount
2.2. Frictional Torque Due to Combination of Load and Lubricant Viscosity
- (1)
- Frictional torque related to the lubrication method is calculated as follows.
- (2)
- Frictional torque related to the magnitude of loads [34] is calculated as follows:
2.3. Spin Sliding Friction Torque
2.4. Calculation of Heat Generation in Full Ceramic Angular Contact Ball Bearings
2.5. Friction Due to Rolling Elastic Hysteresis
2.6. Viscous Friction of Lubricants
3. Simulation Analysis of the Temperature Field of Grease-Lubricated Full Ceramic Ball Bearings
3.1. Effect of Grease Filling Amount on Grease Distribution
3.2. Effect of Speed on Thermal Characteristics of Silicon Nitride Full Ceramic Ball Bearings
4. Experimental Verification
4.1. Design of High-Speed Motorized Spindle-Bearing Test Bench
4.2. Experimental Program and Process
4.3. Analysis and Discussion
4.3.1. Effect of Grease Filling Amount on the Thermal Characteristics of Full Ceramic Ball Bearings
4.3.2. Effect of Speed on the Thermal Characteristics of Full Ceramic Ball Bearings
5. Conclusions
- (1)
- We analyzed the heat generation between the balls and the grooves caused by the spin-sliding of the balls and the load and the viscosity of the lubricant. For a small number of grease-lubricated full ceramic ball bearings, the coefficient of friction moment in the empirical formula was corrected by the test, and the foundation was laid for the simulation and analysis of the temperature field of the grease-lubricated full ceramic angular contact ball bearings.
- (2)
- The simulation model of the grease flow and temperature field of full ceramic ball bearings was established, and the influence of grease filling amount on grease distribution and rotational speed on temperature field distribution were analyzed. The simulation results show that 15~25% is a suitable range for the grease filling amount, and the grease is uniformly distributed in the bearing. The phenomenon of insufficient grease or the accumulation of grease does not occur. The temperature of the bearing increases with the increase in rotational speed, and the temperature of the outer ring of the bearing is 54.764 °C when the rotational speed is 24,000 rpm.
- (3)
- The simulation results were verified through the temperature rise test of the grease filling amount, and the suitable grease filling amount for grease-lubricated full ceramic ball bearing was further determined. For 7009C ball bearings, when the grease filling amount increases from 0.6 g to 2.1 g, the temperature decreases first and then increases. When the grease filling amount is 2.1 g, the temperature of the outer ring of the bearing is 50.3 °C at its highest. When the filling amount is 0.9~1.2 g, the temperature of the outer ring of the bearing is the lowest, and the temperature stabilizes at about 46.1 °C. The reasonableness of modifying the coefficient of the empirical formula and the temperature field analysis of fat and fat-lubricated full ceramic ball bearings is verified.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Ball Bearing Types | Grease | Oil Vapor Lubrication | Oil Bath Lubrication | Oil Spray Lubrication |
---|---|---|---|---|
Angular contact ball bearings | 2 | 1.7 | 3.3 | 6.6 |
Deep groove ball bearings | 0.7~2 | 1 | 2 | 4 |
Form | Sizes | Units |
---|---|---|
Inner diameter | 75 | Mm |
Outer diameter | 45 | Mm |
Pitch circle diameter | 60 | Mm |
Bearing width | 16 | Mm |
Contact angle | 15 | Degree (°) |
Number of balls | 17 | Pieces |
Ball diameter | 8.731 | mm |
Bearings Commponent | Materials | Elasticity Modulus (GPa) | Poisson’s Ratio | Density (g/cm3) | Coefficient of Thermal Expansion (10−6/K) |
---|---|---|---|---|---|
Outer/inner ring/balls | Si3N4 | 300~320 | 0.26 | 3.2~3.3 | 3.1~3.3 |
Cage | Peek | 3.6~3.8 | 0.35 | 1.32~1.35 | 22~60 |
Grease | L252 |
---|---|
Thickener | Polyurea |
Base oil | Synthetic grease |
Consistency | 3 |
Working temperature | 80 |
Parameters | Values |
---|---|
Rated speed (rpm) | 30,000 |
Rated voltage (V) | 350 |
Rated frequency (Hz) | 500 |
Rated current (A) | 19 |
Rated power (kW) | 15 |
Pole logarithm | 4 |
Grease | Filling Weight (g/%) |
---|---|
L252 | 0.6/6% |
0.9/9% | |
1.2/12% | |
1.5/15% | |
1.8/18% | |
2.1/21% |
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Wang, Y.; Li, S.; Wei, C.; Liu, B.; Zhang, Y.; Lin, G.; Wang, K.; Zhao, J. Study on the Effect of Thermal Characteristics of Grease-Lubricated High-Speed Silicon Nitride Full Ceramic Ball Bearings in Motorized Spindles. Lubricants 2024, 12, 286. https://doi.org/10.3390/lubricants12080286
Wang Y, Li S, Wei C, Liu B, Zhang Y, Lin G, Wang K, Zhao J. Study on the Effect of Thermal Characteristics of Grease-Lubricated High-Speed Silicon Nitride Full Ceramic Ball Bearings in Motorized Spindles. Lubricants. 2024; 12(8):286. https://doi.org/10.3390/lubricants12080286
Chicago/Turabian StyleWang, Yonghua, Songhua Li, Chao Wei, Bo Liu, Yu Zhang, Gefei Lin, Kun Wang, and Jining Zhao. 2024. "Study on the Effect of Thermal Characteristics of Grease-Lubricated High-Speed Silicon Nitride Full Ceramic Ball Bearings in Motorized Spindles" Lubricants 12, no. 8: 286. https://doi.org/10.3390/lubricants12080286
APA StyleWang, Y., Li, S., Wei, C., Liu, B., Zhang, Y., Lin, G., Wang, K., & Zhao, J. (2024). Study on the Effect of Thermal Characteristics of Grease-Lubricated High-Speed Silicon Nitride Full Ceramic Ball Bearings in Motorized Spindles. Lubricants, 12(8), 286. https://doi.org/10.3390/lubricants12080286