Performance Improvement of Tin-Based Babbitt Alloy Through Control of Microstructure
Abstract
:1. Introduction
2. Theoretical Basis of Modified Babbitt Alloy
2.1. Theoretical Framework for Developing New Babbitt Alloy Materials
2.2. Sample Fabrication Through Modification of Babbitt Alloy
2.2.1. Experimental Equipment and Raw Materials
2.2.2. Melting and Modifying Babbitt Alloy
2.2.3. Melt Casting and Molding
2.3. Sample Preparation for Chemical and Metallographic Analyses
2.3.1. Chemical Analysis
2.3.2. Metallographic Analysis
2.4. High-Temperature Compression Testing
2.5. Friction and Wear Testing
2.5.1. Testing Machine and Principle
2.5.2. Testing Conditions
3. Results and Discussion
3.1. High-Temperature Compression Properties
3.2. Friction and Wear Properties
3.3. Wear Analysis
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Jia, Q. Study on the Manufacturing Process, Quality and Performance Tests of Babbit and Graphite Bearing. PhD Thesis, Xi’an Jiaotong University, Xi’an, China, 2017. [Google Scholar]
- Jia, Q.; Zhang, C.X.; Zha, J.; Chen, Y.L. Precision prediction model and experimental verification of hydrostatic bearing-rotor system of ultra-precision machine tools. In Proceedings of the ASME 2015 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, IDETC/CIE 2015, Boston, MA, USA, 2–5 August 2015. [Google Scholar]
- Jia, Q.; Li, B.; Wei, Y.; Chen, Y.; Wang, J.; Yuan, X. Axiomatic Design Method for the Hydrostatic Spindle with Multisource Coupled Information. Procedia CIRP 2016, 53, 252–260. [Google Scholar] [CrossRef]
- Vladimir, V.; Nenad, V.; Bože, P. The Influence of the Eccentric Thrust Force on the Selection of a Stern Tube Slide Bearing. NAŠE MORE: Znan. Časopis More Pomor. 2024, 71, 12–20. [Google Scholar]
- Zhu, J.; Wei, G.; Zong, C.; Xin, D. A study on the influences of journal axial vibration on ship shaft stern bearing dynamic characteristics. Ind. Lubr. Tribol. 2023, 75, 497–509. [Google Scholar] [CrossRef]
- Jia, Q.; Ouyang, W.; Zhang, F.; Yuan, X.; Meng, Q. A half-size bearing test platform for Nuclear main pump water-lubricated thrust bearing. In Proceedings of the IEEE International Symposium on Assembly and Manufacturing (ISAM) 2013, Xi’an, China, 30 July–2 August 2013. [Google Scholar]
- Engineering—Mechanical Sciences and Engineering; Study Results from Shanghai Jiao Tong University Broaden Understanding of Mechanical Sciences and Engineering. Study on Fatigue Strength of Snsb11cu6 Babbitt-steel Bimetal Sliding Bearing Material Prepared by Mig Brazing. J. Eng. 2020, 21, 106.
- Tarelnyk, V.B.; Gaponova, O.P.; Konoplianchenko, I.V.; Tarelnyk, N.V.; Dumanchuk, M.Y.; Pirogov, V.O.; Voloshko, T.P.; Hlushkova, D.B. Development of a System Aimed at Choosing the Most Effective Technology for Improving the Quality of Babbitt Coatings of Sliding Bearings. Pt. 2. Mathematical Model of Wear of Babbitt Coatings. Criteria for Choosing the Technology of Deposition of Babbitt Coatings. Metallofiz. Noveishie Tekhnol. 2022, 44, 1643–1659. [Google Scholar]
- Feng, Y.; Li, X.; Dong, H. The Development of Novel Cu/GO Nano-Composite Coatings by Brush Plating with High Wear Resistance for Potential Brass Sliding Bearing Application. Materials 2024, 17, 2623. [Google Scholar] [CrossRef]
- He, L. Short Carbon Fiber Reinforced Tin-Based Babbitt Alloy and Its Tribological Properties. Xi’an Jiaotong University: Xi’an, China, 1996. [Google Scholar]
- He, L. Tribological characteristics of short carbonfiber-reinforced Sn-matrix babbitt alloy. Chin. J. Nonferrous Met. 1998, 36–40. [Google Scholar]
- Bai, F. Research on bearing materials based on axiomatic design. Master’s Thesis, Xi’an Jiaotong University, Xi’an, China, 2007. [Google Scholar]
- Weng, B.K.; Long, H.S.; Zheng, P. Study on quality improvement of centrifugal cast babbit metal. Phys. Test. Chem. Anal. (Part A Phys. Test.) 1999, 35, 291–293+297. [Google Scholar]
- Jie, X. Composite Sliding Bearing Material and Its Preparation Method. CN1800668A, 12 July 2006. [Google Scholar]
- Ren, X.; Chen, H.; Chang, Y.; Chen, N.; Shi, Z.; Zhang, Y.; Guo, Z.; Hu, J. Effect of Zn on Microstructure and Wear Resistance of Sn-Based Babbitt Alloy. Crystals 2024, 14, 907. [Google Scholar] [CrossRef]
- Zhang, X.; Wu, S.; Liu, W.; Chu, X.; Xie, Y.; Zhang, F. High performance tin-based Babbitt coatings deposited by high-pressure cold spraying. Surf. Coat. Technol. 2023, 473, 130048. [Google Scholar] [CrossRef]
- Ramadan, M.; Subhani, T.; Hafez, K.M.; Fathy, N.; Ayadi, B.; Abdel Halim, K.S.; Alghamdi, A.S.; Ibrahim, K.M. Microstructure and Mechanical Performance of Tin-Based Babbitt Alloy Containing Iron Oxide and Silica Nanoparticles. Metals 2023, 13, 324. [Google Scholar] [CrossRef]
- Bykov, P.A.; Kalashnikov, I.E.; Kobeleva, L.I.; Katin, I.V.; Mikheev, R.S. Wear Regimes of Hot-Extruded Babbitt-Based Composites. Inorg. Mater. 2024, 60, 236–244. [Google Scholar] [CrossRef]
- Zarifova, M.S.; Ganiev, I.N.; Kholov, K.I.; Khodzhaev, F.K. Influence of Lanthanum Additives on the Temperature Dependence of Thermophysical Properties and Changes in the Thermodynamic Functions of Lead Babbitt BLa (PbSb15Sn10). Inorg. Mater. Appl. Res. 2024, 15, 84–89. [Google Scholar] [CrossRef]
- Liu, W.; Wei, L.; Zhang, Y.; Chen, S.; Zhao, G.; Gao, G.; Wang, H. Investigation of tribological behavior and failure mechanisms of PEEK-based composites, Babbitt alloy, and CuSn10Pb10 bimetal for wind turbine main shaft sliding bearings under simulated operational conditions. Tribol. Int. 2025, 204, 110522. [Google Scholar] [CrossRef]
- Frost, J.; Litwin, W. Comparative Wear Test of Journal Sliding Bearings with Sintered Bronze and Babbitt Alloy Bushes Lubricated by Environmentally Acceptable/Adapted Lubricants (EAL). Tribol. Trans. 2023, 66, 443–452. [Google Scholar] [CrossRef]
- Wang, J.; Wang, D.; Wang, X.; Jia, Q. Property improvement of tin-based Babbitt B83 based on metallography contro. Mater. Sci. Technol. 2018, 26, 89–96. [Google Scholar]
- Dong, Q.; Yin, Z.W.; Li, H.L.; Mao, Y.; Gao, G.Y. 3D Reconstruction of Microstructure for Centrifugal Casting Babbitt Lining of Bimetallic Bearing Based on Mimics. Key Eng. Mater. 2020, 874, 94–98. [Google Scholar] [CrossRef]
- Dong, Q.; Yin, Z.; Li, H.; Gao, G.; Mao, Y. Simulation Study on Filling and Solidification of Horizontal Centrifugal Casting Babbitt Lining of Bimetallic Bearing. Int. J. Met. 2020, 15, 119–129. [Google Scholar] [CrossRef]
- Barykin, P.N.; Sadykov, A.F.; Aslanian, R.I. Wear and failure of babbit bushes in steam turbine sliding bearings. J. Mater. Eng. Perform. 2000, 9, 110–115. [Google Scholar] [CrossRef]
- Jung, G.J.; Ahn, Y.S.; Cho, Y.S.; Park, S.K.; Gil, D.S.; Lee, W.H. Implementation of Ultrasonic Immersion Technique for Babbitt Metal Debonding in Turbine Bearing. Key Eng. Mater. 2004, 498, 271–276. [Google Scholar] [CrossRef]
- GB/T 7314-2017; Metallic Materials Compression Test Method at Room Temperature. Standards Press of China: Beijing, China, 2017.
- Gromyko, A.G. Influence of casting method of plain bearings on the structure of babbittts. Met. Termicheskays Obrab. Metallov. 1990, 9, 50–53. [Google Scholar]
Alloying Element | Sample Designation | ||||
---|---|---|---|---|---|
Sample 0 | Sample 1 | Sample 2 | Sample 3 | Sample 4 | |
Cu | 4.24 | 6.42 | 9.13 | 12.2 | 13.7 |
Sb | 7.02 | 6.84 | 7.68 | 6.86 | 6.59 |
Sn | 86.6 | 83.7 | 81.4 | 77.3 | 77.5 |
other | 2.14 | 3.04 | 1.79 | 3.64 | 2.21 |
Micro-Hardness Test | Sample Designation | ||||
---|---|---|---|---|---|
Sample 0 | Sample 1 | Sample 2 | Sample 3 | Sample 4 | |
Microhardness test of SnSb Hv | 69.5 | 79.2 | 87.3 | 93.2 | 115.4 |
Microhardness test of α solid solution Hv | 65.3 | 46.5 | 47.1 | 39.3 | 37.4 |
Rotational Speed [rpm] | Radius of Turn [mm] | Sliding Velocity [m s−1] | Test Load [N] | Test Pressure [MPa] | PV [MPa∙m s−1] | Test Duration [s] |
---|---|---|---|---|---|---|
500 | 7 | 0.366 | 15 | 0.53 | 0.194 | 600 (1800) |
Sample 0 | Sample 1 | Sample 2 | Sample 3 | Sample 4 | |
---|---|---|---|---|---|
Maximum compression force Fe [N] | 6000 | 6300 | 6200 | 5550 | 5450 |
Compressive yield strength, Re [MPa] | 76.43 | 80.26 | 78.98 | 70.70 | 70.57 |
Sample 0 | Sample 1 | Sample 2 | Sample 3 | Sample 4 | |
---|---|---|---|---|---|
abrasion loss/mg | 2.1 | 2.4 | 3.1 | 3.7 | 6.2 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Wei, Z.; Shu, H.; Qiao, G.; Zeng, Q.; Wang, G.; Jia, Q. Performance Improvement of Tin-Based Babbitt Alloy Through Control of Microstructure. Alloys 2025, 4, 11. https://doi.org/10.3390/alloys4030011
Wei Z, Shu H, Qiao G, Zeng Q, Wang G, Jia Q. Performance Improvement of Tin-Based Babbitt Alloy Through Control of Microstructure. Alloys. 2025; 4(3):11. https://doi.org/10.3390/alloys4030011
Chicago/Turabian StyleWei, Zhang, Honglin Shu, Gaixiao Qiao, Qunfeng Zeng, Guoping Wang, and Qian Jia. 2025. "Performance Improvement of Tin-Based Babbitt Alloy Through Control of Microstructure" Alloys 4, no. 3: 11. https://doi.org/10.3390/alloys4030011
APA StyleWei, Z., Shu, H., Qiao, G., Zeng, Q., Wang, G., & Jia, Q. (2025). Performance Improvement of Tin-Based Babbitt Alloy Through Control of Microstructure. Alloys, 4(3), 11. https://doi.org/10.3390/alloys4030011