Experimental Study of Piezoelectric Control for Changing Tilting Pad Journal Bearing Circumferential Angle and Radial Displacement
Abstract
:1. Introduction
2. Experimental Procedure
2.1. Test Bearings
2.2. Experimental Setup
3. Control of Tilting Pad Bearing–Rotor System
3.1. Experimental Results of Angle Bearing Control
3.2. Experimental Results of Displacement Bearing Control
4. Discussions
5. Conclusions
- (1)
- The flexible bearing–rotor test bench was established, and two kinds of structural bearings were designed and manufactured. The circumferential angle of the disk of the angle bearing and the radial displacement of the disk of the displacement bearing are successfully controlled by the piezoelectric actuator, and the axial trajectory and spectrum of the bearing at different rotational speeds are obtained.
- (2)
- The research results of angle control show that the axis trajectory of the piezo-controlled angular bearing–rotor system decreases significantly at 4000 rpm, and the peak displacement of fundamental frequency decreases by 62% at 6000 rpm. This indicates that by controlling the swing angle of the bearing bush, a steeper wedge gap is formed between the bearing bush and the rotor shaft, thereby increasing the oil film pressure and bearing capacity, and suppressing the spindle vibration.
- (3)
- The displacement control results show that with the increase of the radial displacement control amount of the bearing bush, the axial trajectory of the rotor journal becomes smaller and closer to the bearing center. At 6000 rpm, the axis track area decreases obviously, and the peak displacement of the fundamental frequency decreases by 54%. The radial displacement of the bushing reduces the radius clearance of the bearing, changes the damping coefficient and stiffness coefficient of the bearing, and thus adjusts the vibration amplitude of the rotor.
- (4)
- According to conclusions 2 and 3, the vibration performance of two new tilting pad bearing–rotor systems is improved by the piezoelectric control of the bearing’s circumaxial angle and radial displacement, and the internal geometric parameters of the bearing are changed, thus laying a technical foundation for the realization of intelligent bearings.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameters | Angle Bearing/Displacement Bearing |
---|---|
Bearing pad radius (R), mm | 15.05 |
Bearing length (B), mm | 25 |
Manufactured diameter clearance (c), mm | 0.1 |
Preload factor (m) | 0.375 |
Pad arc angle (°) | 70 |
Number of pads | 4 |
Thickness of pads (t), mm | 5 |
Parameters | Value |
---|---|
Young’s modulus (E), GPa | 210 |
Density (), kg/m3 | 7850 |
Poisson’s ratio ) | 0.3 |
Shaft diameter (d), mm | 30 |
Shaft length (L), mm | 750 |
Mass of disk (m), kg | 5.76 |
Mass of shaft (M), kg | 4.17 |
Supply oil pressure (P), MPa | 0.1 |
Type of lubricant | ISO-VG32 |
Oil inlet temperature (°C) | 35 |
Piezoelectric Voltage (V) | Control Angle (°) | Control Displacement (μm) |
---|---|---|
0.5 | 0.011 | 3.01 |
1 | 0.021 | 6.83 |
2 | 0.040 | 13.17 |
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Peng, S.; Qin, X.; Wang, X.; Huang, G.; Xiong, X. Experimental Study of Piezoelectric Control for Changing Tilting Pad Journal Bearing Circumferential Angle and Radial Displacement. Lubricants 2023, 11, 510. https://doi.org/10.3390/lubricants11120510
Peng S, Qin X, Wang X, Huang G, Xiong X. Experimental Study of Piezoelectric Control for Changing Tilting Pad Journal Bearing Circumferential Angle and Radial Displacement. Lubricants. 2023; 11(12):510. https://doi.org/10.3390/lubricants11120510
Chicago/Turabian StylePeng, Shuxia, Xin Qin, Xiaojing Wang, Guangyao Huang, and Xin Xiong. 2023. "Experimental Study of Piezoelectric Control for Changing Tilting Pad Journal Bearing Circumferential Angle and Radial Displacement" Lubricants 11, no. 12: 510. https://doi.org/10.3390/lubricants11120510
APA StylePeng, S., Qin, X., Wang, X., Huang, G., & Xiong, X. (2023). Experimental Study of Piezoelectric Control for Changing Tilting Pad Journal Bearing Circumferential Angle and Radial Displacement. Lubricants, 11(12), 510. https://doi.org/10.3390/lubricants11120510