This paper presents a comprehensive lubrication model for piston skirt-liner system of internal combustion engines. In the model it is included that the effects of the surface roughness, the piston skirt surface geometry, the piston pin offset, the crankshaft offset, and the lubricant viscosity on the piston secondary motion and lubrication performance. Especially, the effects of the thermal and the elastic deformation of the piston skirt and the cylinder liner, and the piston skirt deformations due to the combustion pressure and the piston axial inertia, are considered as the key task in this study. The results show that the combustion force, the working temperature and the piston axial inertia all play important roles in the piston-skirt lubrication. Also, considering the elastic deformation of the piston skirt and the cylinder liner is beneficial to the prediction of piston-skirt lubrication more accurately. The developed program in this study can provide a useful tool for the analysis of the piston-liner system lubrication problem.
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ASME 2012 Internal Combustion Engine Division Fall Technical Conference
September 23–26, 2012
Vancouver, BC, Canada
Conference Sponsors:
- Internal Combustion Engine Division
ISBN:
978-0-7918-5509-6
PROCEEDINGS PAPER
Numerical Study of Piston Skirt-Liner Lubrication Considering the Effects of Deformation in Internal Combustion Engines
Lipu Ning,
Lipu Ning
Shanghai Jiaotong University, Shanghai, China
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Xianghui Meng,
Xianghui Meng
Shanghai Jiaotong University, Shanghai, China
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Youbai Xie
Youbai Xie
Shanghai Jiaotong University, Shanghai, China
Search for other works by this author on:
Lipu Ning
Shanghai Jiaotong University, Shanghai, China
Xianghui Meng
Shanghai Jiaotong University, Shanghai, China
Youbai Xie
Shanghai Jiaotong University, Shanghai, China
Paper No:
ICEF2012-92025, pp. 849-857; 9 pages
Published Online:
July 25, 2013
Citation
Ning, L, Meng, X, & Xie, Y. "Numerical Study of Piston Skirt-Liner Lubrication Considering the Effects of Deformation in Internal Combustion Engines." Proceedings of the ASME 2012 Internal Combustion Engine Division Fall Technical Conference. ASME 2012 Internal Combustion Engine Division Fall Technical Conference. Vancouver, BC, Canada. September 23–26, 2012. pp. 849-857. ASME. https://doi.org/10.1115/ICEF2012-92025
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