Composite pistons are often used in heavy duty diesel engines due to its good reliability and durability. Owing to the alternating loads, fretting wear usually happens on the mating surfaces between piston crown and skirt. In this paper, a fretting wear finite element model is developed to analyze the mating surface wear of composite piston of heavy-duty diesel engine. The fretting wear model predicts the wear depth evolution for each working cycle based on Archard model and mesh updating technique, which is validated by previous pin and disk contact experiments. The wear evolution of the top contact surface of piston skirt is simulated according to engine operating condition, and fretting wear life is estimated by the decreasing process of crown-skirt connecting bolt preload. Effects of the shape of piston skirt top surface are also evaluated. In the end, the rationality of fretting wear model is validated by durability tests of diesel engine.

References

1.
Silva
,
F. S.
,
2006
, “
Fatigue on Engine Pistons—A Compendium of Case Studies
,”
Eng. Failure Anal.
,
13
(
3
), pp.
480
492
.
2.
Bhagat
,
A. R.
, and
Jibhakate
,
Y. M.
,
2014
,
Thermal Analysis and Optimization of IC Engine Piston Using Finite Element Method. Growth Hormone II
,
Springer
,
New York
, pp.
347
358
.
3.
Okamoto
,
H.
,
Anno
,
N.
, and
Itoh
,
T.
,
1992
, “
New Computational and Experimental Stress Analysis Method for the Design Decision on Optimum Piston Configuration of Production Engine
,”
SAE
Paper No. 920065.
4.
Blanchard
,
P. C. V. S.
,
Colombie
,
C.
,
Pellerin
,
V.
,
Fayeulle
,
S.
, and
Vincent
,
L.
,
1991
, “
Material Effects in Fretting Wear: Application to Iron, Titanium, and Aluminum Alloys
,”
Metall. Trans. A
,
22
(
7
), pp.
1535
1544
.
5.
Dobromirski
,
J.
,
1992
, “
Variables of Fretting Process: Are There 50 of Them?
,” ASTM, West Conshohocken, PA, Standard No. 1159.
6.
Iyer
,
K.
, and
Mall
,
S.
,
2001
, “
Analyses of Contact Pressure and Stress Amplitude Effects on Fretting Fatigue Life
,”
ASME J. Eng. Mater. Technol.
,
123
(1), pp.
85
93
.
7.
Tomlinson
,
G. A.
,
1927
, “
The Rusting of Steel Surfaces in Contact
,”
Proc. R. Soc. A
,
115
(
771
), pp.
472
483
.
8.
Eden
,
E. M.
,
Rose
,
W. N.
, and
Cunningham
,
F. L.
,
1911
, “
The Endurance of Metals: Experiments on Rotating Beams at University College, London
,”
Proc. Inst. Mech. Eng.
,
81
(
1
), pp.
839
974
.
9.
Holm
,
R.
,
1958
,
Electric Contacts Handbook
,
Springer
, Berlin, pp. 459–475.
10.
Archard
,
J. F.
,
1953
, “
Contact and Rubbing of Flat Surfaces
,”
J. Appl. Phys.
,
24
(
8
), pp.
981
988
.
11.
Ding
,
J.
,
Leen
,
S. B.
, and
Mccoll
,
I. R.
,
2004
, “
The Effect of Slip Regime on Fretting Wear-Induced Stress Evolution
,”
Int. J. Fatigue
,
26
(
5
), pp.
521
531
.
12.
Madge
,
J. J.
,
Leen
,
S. B.
, and
Shipway
,
P. H.
,
2007
, “
The Critical Role of Fretting Wear in the Analysis of Fretting Fatigue
,”
Wear
,
263
(
1
), pp.
542
551
.
13.
Osman
,
T.
, and
Velex
,
P.
,
2010
, “
Static and Dynamic Simulations of Mild Abrasive Wear in Wide-Faced Solid Spur and Helical Gears
,”
Mech. Mach. Theory
,
45
(6), pp.
911
924
.
14.
Stowers
,
I. F.
, and
Rabinowicz
,
E.
,
1973
, “
The Mechanism of Fretting Wear
,”
ASME J. Tribol.
,
95
(
1
), pp.
65
70
.
15.
Westbrook
,
J. H.
,
1953
, “
Temperature Dependence of the Hardness of Pure Metals
,”
ASM Trans.
,
45
, pp.
221
243
.
16.
Westbrook
,
J. H.
,
1973
, “
The Science of Hardness Testing and Its Research Applications
,” American Society for Metals, Metals Park, OH.
17.
Mccoll
,
I. R.
,
Ding
,
J.
, and
Leen
,
S. B.
,
2004
, “
Finite Element Simulation and Experimental Validation of Fretting Wear
,”
Wear
,
256
(
11–12
), pp.
1114
1127
.
18.
Ding
,
J.
,
Bandak
,
G.
,
Leen
,
S. B.
,
Williams
,
E. J.
, and
Shipway
,
P. H.
,
2009
, “
Experimental Characterisation and Numerical Simulation of Contact Evolution Effect on Fretting Crack Nucleation for Ti–6Al–4V
,”
Tribol. Int.
,
42
(
11–12
), pp.
1651
1662
.
19.
Paulin
,
C.
,
Fouvry
,
S.
, and
Meunier
,
C.
,
2008
, “
Finite Element Modelling of Fretting Wear Surface Evolution: Application to a Ti–6A1–4V Contact
,”
Wear
,
264
(
1
), pp.
26
36
.
20.
Cruzado
,
A.
,
Urchegui
,
M. A.
, and
Gómez
,
X.
,
2012
, “
Finite Element Modeling and Experimental Validation of Fretting Wear Scars in Thin Steel Wires
,”
Wear
,
289
(
25
), pp.
26
38
.
21.
Long
,
Y.
,
Long
,
Z.
, and
Cen
,
S.
,
2001
, “
Method of Area Coordinate—From Triangular to Quadrilateral Elements
,”
Adv. Struct. Eng.
,
4
(
1
), pp.
1
11
.
22.
Yue
,
T.
, and
Wahab
,
M. A.
,
2014
, “
Finite Element Analysis of Stress Singularity in Partial Slip and Gross Sliding Regimes in Fretting Wear
,”
Wear
,
321
(
321
), pp.
53
63
.
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