Effect of steel hardness on soot wear
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Published version
OA Location
Author(s)
Kontou, A
Type
Journal Article
Abstract
Due to incomplete combustion, high levels of soot can accumulate in engine lubricants between drain intervals. This soot can promote wear of engine parts such as timing chains and cam followers. One standard approach to reducing wear is to increase the hardness of the rubbing components used. According to the Archard wear equation, wear rate should be broadly inversely proportional to hardness.
To explore this approach for controlling soot wear, wear tests have been conducted in a High Frequency Reciprocating Rig (HFRR) with HFRR steel discs of various hardness against a hard steel ball. Carbon black (soot surrogate) dispersions in model lubricants based on solutions of ZDDP and dispersant in GTL base oils have been studied. Wear volumes have been measured and wear scars and tribofilms analysed using scanning white light interferometry and SEM-EDS.
It is found that, while most oils show wear that reduces with increasing hardness, for blends that contain both ZDDP and carbon black, wear rate markedly increases with disc hardness as the latter approaches the hardness of the ball. The results support the prevalence of a corrosive-abrasive wear mechanism when carbon black and ZDDP are both present in a lubricant and suggests that selection of very hard surfaces may not be a useful way to control soot.
To explore this approach for controlling soot wear, wear tests have been conducted in a High Frequency Reciprocating Rig (HFRR) with HFRR steel discs of various hardness against a hard steel ball. Carbon black (soot surrogate) dispersions in model lubricants based on solutions of ZDDP and dispersant in GTL base oils have been studied. Wear volumes have been measured and wear scars and tribofilms analysed using scanning white light interferometry and SEM-EDS.
It is found that, while most oils show wear that reduces with increasing hardness, for blends that contain both ZDDP and carbon black, wear rate markedly increases with disc hardness as the latter approaches the hardness of the ball. The results support the prevalence of a corrosive-abrasive wear mechanism when carbon black and ZDDP are both present in a lubricant and suggests that selection of very hard surfaces may not be a useful way to control soot.
Date Issued
2017-08-05
Date Acceptance
2017-09-01
Citation
Wear, 2017, 390-391, pp.236-245
ISSN
0043-1648
Publisher
Elsevier
Start Page
236
End Page
245
Journal / Book Title
Wear
Volume
390-391
Copyright Statement
© 2017 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY license (http://creativecommons.org/licenses/BY/4.0/)
License URL
Sponsor
Shell Research Limited
Grant Number
PT36160 - PO 4550096336
Source
The 72nd Annual Meeting & Exhibition of the Society of Tribologists and Lubrication Engineers
Subjects
Science & Technology
Technology
Engineering, Mechanical
Materials Science, Multidisciplinary
Engineering
Materials Science
Corrosive-abrasive wear
Soot
ZDDP
Hardness
Boundary lubrication
Nanoparticles
DIESEL-ENGINE SOOT
CARBON-BLACK
LUBRICANT ADDITIVES
MILD WEAR
OIL
CONTAMINATION
FOLLOWER
FILMS
CAM
0912 Materials Engineering
0913 Mechanical Engineering
Mechanical Engineering & Transports
Publication Status
Published
Coverage Spatial
Hyatt Regency Atlanta, Atlanta, Georgia (USA)