Oil–Air Two-Phase Flow Distribution Characteristics inside Cylindrical Roller Bearing with Under-Race Lubrication
Abstract
:1. Introduction
2. Cylindrical Roller Bearing with Under-Race Lubrication
2.1. Geometric Configuration
2.2. Calculation Domain
3. Mathematical Modeling
3.1. Meshing and Boundary Conditions
3.2. Two-Phase Flow Model
3.3. Numerical Setup
4. Results and Discussion
4.1. Nonuniform Oil Distribution in Bearing Cavity
4.2. Working Condition Parameters Effects on Oil Distribution
4.3. Oil Properties Effects on Oil Distribution
5. Conclusions
- (1)
- Oil volume fraction distribution inside the bearing is not uniform but periodic, and the cycle number along the circumference of the bearing cavity is equal to the under-race nozzle number. The peak of each cycle is reached near the nozzle, and its value is related to operating conditions and oil properties.
- (2)
- The oil phase tends to stay in the gap between the cage and the inner raceway for the bearing with the inner-race guidance cage, and only a small portion reaches the outer race. This phenomenon may result in poor lubricating or cooling conditions for the outer race, and some enhanced cooling measures should be employed.
- (3)
- Higher rotating speed would decrease the oil volume fraction in the bearing because the oil is easier to exit the bearing. With stronger interaction between the oil and bearing components and higher relative rotating speed between the nozzles and rollers, oil distribution along the circumference direction is more uniform. On the contrary, adding oil flow rate would aggravate distribution differences both along the circumference direction and radial direction.
- (4)
- Higher oil viscosity leads to more uniform oil distribution along the circumference but reduces oil reaching the outer race. It increases oil flow resistance and makes it hard to flow through the gap between the cage pocket and the roller. In comparison, the effect of oil density is not obvious within a certain range of temperatures.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Pitch diameter (mm) | 142 |
Outer race width (mm) | 36 |
Inner race width (mm) | 30 |
Number of rollers | 28 |
Roller diameter (mm) | 12 |
Roller length (mm) | 14 |
Oil nozzle diameter (mm) | 1 |
Cage guidance | Inner ring |
Mesh Element Numbers | Average Oil Volume Fraction |
---|---|
2.50 million | Unstable |
3.78 million | 0.0156 |
6.21 million | 0.0159 |
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Gao, W.; Li, C.; Li, Y.; Liu, Z.; Lyu, Y. Oil–Air Two-Phase Flow Distribution Characteristics inside Cylindrical Roller Bearing with Under-Race Lubrication. Lubricants 2024, 12, 133. https://doi.org/10.3390/lubricants12040133
Gao W, Li C, Li Y, Liu Z, Lyu Y. Oil–Air Two-Phase Flow Distribution Characteristics inside Cylindrical Roller Bearing with Under-Race Lubrication. Lubricants. 2024; 12(4):133. https://doi.org/10.3390/lubricants12040133
Chicago/Turabian StyleGao, Wenjun, Can Li, Yuanhao Li, Zhenxia Liu, and Yaguo Lyu. 2024. "Oil–Air Two-Phase Flow Distribution Characteristics inside Cylindrical Roller Bearing with Under-Race Lubrication" Lubricants 12, no. 4: 133. https://doi.org/10.3390/lubricants12040133
APA StyleGao, W., Li, C., Li, Y., Liu, Z., & Lyu, Y. (2024). Oil–Air Two-Phase Flow Distribution Characteristics inside Cylindrical Roller Bearing with Under-Race Lubrication. Lubricants, 12(4), 133. https://doi.org/10.3390/lubricants12040133