Development of a mathematical tool to predict engine in-cylinder friction

A better fuel-efficient automotive engine is more sought-after to promote greener environment in the era of global warming. One of the factors to cause the increase of fuel consumption in vehicles is the frictional loss within an internal combustion engine. In this study, the focus is to determine t...

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Main Authors: Chong, William Woei Fong, Ng, Young Ching, Hamdan, Siti Hartini
Format: Article
Published: Malaysian Tribology Society (MYTRIBOS) 2018
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Online Access:http://eprints.utm.my/id/eprint/84087/
https://jurnaltribologi.mytribos.org/
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spelling my.utm.840872019-12-16T01:53:34Z http://eprints.utm.my/id/eprint/84087/ Development of a mathematical tool to predict engine in-cylinder friction Chong, William Woei Fong Ng, Young Ching Hamdan, Siti Hartini TJ Mechanical engineering and machinery A better fuel-efficient automotive engine is more sought-after to promote greener environment in the era of global warming. One of the factors to cause the increase of fuel consumption in vehicles is the frictional loss within an internal combustion engine. In this study, the focus is to determine the tribological behaviour between the piston top compression ring and the engine cylinder liner for a full engine cycle. Mathematical models are derived from a 1-D Reynolds equation, assuming Half-Sommerfeld and Reynolds boundary conditions. Greenwood and Tripp rough surface contact model is applied to predict frictional properties along the ring-liner contact, considering viscous and boundary friction. It is found that the Half-Sommerfeld boundary condition predicts minimum lubricant film thickness that correlates well with literature data. However, the friction force predicted by the Reynolds boundary condition along dead centres correlates better with literature data. With friction along the cylinder liner dead centres being very significant, it is, therefore, suggested that the Reynolds boundary condition be the better mathematical model in studying the piston ring-liner tribological conjunction. Malaysian Tribology Society (MYTRIBOS) 2018 Article PeerReviewed Chong, William Woei Fong and Ng, Young Ching and Hamdan, Siti Hartini (2018) Development of a mathematical tool to predict engine in-cylinder friction. Jurnal Tribologi, 17 . pp. 29-39. ISSN 2289-7232 https://jurnaltribologi.mytribos.org/
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Chong, William Woei Fong
Ng, Young Ching
Hamdan, Siti Hartini
Development of a mathematical tool to predict engine in-cylinder friction
description A better fuel-efficient automotive engine is more sought-after to promote greener environment in the era of global warming. One of the factors to cause the increase of fuel consumption in vehicles is the frictional loss within an internal combustion engine. In this study, the focus is to determine the tribological behaviour between the piston top compression ring and the engine cylinder liner for a full engine cycle. Mathematical models are derived from a 1-D Reynolds equation, assuming Half-Sommerfeld and Reynolds boundary conditions. Greenwood and Tripp rough surface contact model is applied to predict frictional properties along the ring-liner contact, considering viscous and boundary friction. It is found that the Half-Sommerfeld boundary condition predicts minimum lubricant film thickness that correlates well with literature data. However, the friction force predicted by the Reynolds boundary condition along dead centres correlates better with literature data. With friction along the cylinder liner dead centres being very significant, it is, therefore, suggested that the Reynolds boundary condition be the better mathematical model in studying the piston ring-liner tribological conjunction.
format Article
author Chong, William Woei Fong
Ng, Young Ching
Hamdan, Siti Hartini
author_facet Chong, William Woei Fong
Ng, Young Ching
Hamdan, Siti Hartini
author_sort Chong, William Woei Fong
title Development of a mathematical tool to predict engine in-cylinder friction
title_short Development of a mathematical tool to predict engine in-cylinder friction
title_full Development of a mathematical tool to predict engine in-cylinder friction
title_fullStr Development of a mathematical tool to predict engine in-cylinder friction
title_full_unstemmed Development of a mathematical tool to predict engine in-cylinder friction
title_sort development of a mathematical tool to predict engine in-cylinder friction
publisher Malaysian Tribology Society (MYTRIBOS)
publishDate 2018
url http://eprints.utm.my/id/eprint/84087/
https://jurnaltribologi.mytribos.org/
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score 13.211869