An Experimental Investigation into the Thermal Characteristics of Bump Foil Journal Bearings
Abstract
:1. Introduction
2. Numerical Model of BFJBs
2.1. Energy Equation
- (1)
- The thermal conductivity of the BFJB in the x direction is negligible compared with the convective heat transfer;
- (2)
- The thickness of the gas film is of micrometer-scale, so the main form of energy transfer along the direction is heat conduction. The simplified energy equation is provided as:
2.2. Thermohydrodynamic (THD) Model of BFJBs
2.3. Calculation Process
3. Experiments
3.1. Description of the Test BFJB
3.2. Description of the Test Bench
4. Results and Discussion
4.1. Influence of the Increase in Speed and Load on the Temperature Rise in the BFJB and the Shaft
4.2. Influence of Structural Parameter Changes on the Performance of BFJB
4.3. The Process of Stop-Contact under Different Load Conditions
5. Conclusions
- (1)
- In our study, with the increased width of the bump foil, the support stiffness of the BFJB decreased, the lift-off speed of the BFJB accelerated and climbed, and the magnitude of the temperature rise increased. These results can be explained by the fact that the stiffness of the elastic support structure changed with the width of the bump foil or the thickness of the top foil, resulting in the lift-off speed change;
- (2)
- In order to avoid damage to the bearing caused by excessive dry friction, which affects the safety of turbochargers, this paper proposed a method of monitoring temperature to predict BFJB performance. The fault of the supercharger can be diagnosed when the temperature suddenly changes, and the temperature of the supercharger can be managed according to temperature characteristics. During the stop process of an APE with a turbocharger, the power should be slowly reduced to cool the supercharger sufficiently. When the rotor system drops to the stop-contact speed, an additional load can be taken to accelerate the rotor system to stop. These measurements can avoid long-term dry friction and prolong bearing life;
- (3)
- During the working of the engine, the temperature of the BFJB increases approximately linearly with the increase in the load and the rotational speed. However, compared with the increase in the rotational speed, the bearing temperature rise caused by the increase in the load is smaller. Therefore, on the basis of the research into the rotor system conducted in this experiment, extended research into other rotor systems can be carried out, and a turbocharger suitable for higher-power engines can be developed.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Number | B1 | B2 | B3 | B4 | B5 | B6 |
---|---|---|---|---|---|---|
Top foil thickness (mm) | 0.1 | 0.1 | 0.1 | 0.12 | 0.12 | 0.12 |
Nominal clearance (μm) | 76 | 76 | 76 | 56 | 56 | 56 |
Bump length (mm) | 2 | 2.5 | 3 | 2 | 2.5 | 3 |
Bump foil thickness (mm) | 0.1 | |||||
Bump spacing (mm) | 0.7 | |||||
Bump height (mm) | 0.5 | |||||
Bearing diameter (mm) | 32 | |||||
Axial length (mm) | 48 | |||||
Poissons ratio | 0.29 | |||||
Elasticity modulus (Gpa) | 213 |
Title | Performance | Function |
---|---|---|
Electric spindle | Max. speed 90,000 r/min | Drive shaft to rotate |
SJH300 Inverter | Max. power 7.5 kW | Adjust the speed |
frequency 1500 Hz | ||
HZ-8500 Eddy Current Displacement Sensor | range 1.5 mm, | Measure the displacement of the bearing during operation |
Nominal sensitivity | ||
frequency 4 kHz | ||
Tension sensor and its accessories | range 20 kg precision 0.1% voltage signal 0–5 V | Measure the resistance torque of the bearing |
Type K thermocouple | range 0~400 °C | Measure the bearing housing temperature |
Electric Glow Plug | Different bearing temperatures available | |
data collection system | Max. frequency 4 kHz | Collect and record bearing temperature |
work platform | 800 mm × 800 mm thickened cast iron | Reduce the impact of vibration on EX results |
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Zhou, Y.; Shao, L.; Zhao, S.; Zhu, K.; Ding, S.; Du, F.; Xu, Z. An Experimental Investigation into the Thermal Characteristics of Bump Foil Journal Bearings. Symmetry 2022, 14, 878. https://doi.org/10.3390/sym14050878
Zhou Y, Shao L, Zhao S, Zhu K, Ding S, Du F, Xu Z. An Experimental Investigation into the Thermal Characteristics of Bump Foil Journal Bearings. Symmetry. 2022; 14(5):878. https://doi.org/10.3390/sym14050878
Chicago/Turabian StyleZhou, Yu, Longtao Shao, Shuai Zhao, Kun Zhu, Shuiting Ding, Farong Du, and Zheng Xu. 2022. "An Experimental Investigation into the Thermal Characteristics of Bump Foil Journal Bearings" Symmetry 14, no. 5: 878. https://doi.org/10.3390/sym14050878
APA StyleZhou, Y., Shao, L., Zhao, S., Zhu, K., Ding, S., Du, F., & Xu, Z. (2022). An Experimental Investigation into the Thermal Characteristics of Bump Foil Journal Bearings. Symmetry, 14(5), 878. https://doi.org/10.3390/sym14050878