4.5 Article

Improving frictional performance of ring-liner system under cylinder deactivation conditions by surface texturing

Journal

INTERNATIONAL JOURNAL OF ENGINE RESEARCH
Volume 23, Issue 8, Pages 1295-1307

Publisher

SAGE PUBLICATIONS LTD
DOI: 10.1177/14680874211014669

Keywords

Power loss; surface texture; cylinder deactivation; ring-liner system

Funding

  1. National Natural Science Foundation of China [52075438]
  2. Key Research and Development Program of Shaanxi Province of China [2020GY-106]
  3. Open Project of State Key Laboratory for Manufacturing Systems Engineering [sklms2020010]

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The study considers a surface texture method to improve the frictional performance of the ring-liner system under cylinder deactivation conditions. Results show significant improvements in friction properties with surface texture, leading to notable decreases in total average friction loss and power loss for a six-cylinder gasoline engine.
In this study, a method of surface texture is considered to improve the frictional performance of the ring-liner system (i.e. RLS) under the conditions of cylinder deactivation (i.e. CDA). To assess the effectiveness of the method, a lubrication model is developed with considerations of the liner deformation, the actual rheological properties of lubricant, and the lubricant transport. By solving the model numerically, the friction reduction effect of surface texture for the RLS under the CDA is investigated. The results show that the surface texture can improve the friction properties significantly. For a six-cylinder gasoline engine, 7.57% and 7.28% decreases in the total average friction loss and power loss are observed when the RLS under the CDA is surface textured.

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