Abstract

Vibro-impacts are common in various automotive engine and transmission gear applications. They are known to cause excessive noise levels, often called rattling or hammering. Input and output fluctuations acting on such systems cause tooth separations and sequences of impacts allowed by backlash at the gear mesh interfaces. The fluctuations leading gear rattling have often been studied for specific applications with the excitations produced typically by an internal combustion engine. As such, rattle evaluations have been often empirical and specific to the systems considered. In this study, an experimental test setup of a gear pair is developed to emulate the same torque fluctuations in a laboratory environment. This setup is used to establish an impact velocity-based rattle severity index defined by the measured torsional behavior of the drive train that is shown to correlate well with the measured sound pressure levels. With that, a validated dynamic model of the experimental setup is employed to predict the same index to allow estimation of rattle noise outcome solely from a torsional dynamic model of the drivetrain. Predicted rattle severity indexes are shown to agree well with the measured ones within wide ranges of torque fluctuations and backlash magnitudes, allowing an assessment of rattle performance of a drivetrain solely from a torsional model.

References

1.
Singh
,
R.
,
Xie
,
H.
, and
Comparin
,
R. J.
,
1989
, “
Analysis of Automotive Neutral Gear Rattle
,”
J. Sound Vib.
,
131
(
2
), pp.
177
196
.
2.
Karagiannis
,
K.
, and
Pfeiffer
,
F.
,
1991
, “
Theoretical and Experimental Investigations of Gear-Rattling
,”
Nonlinear Dyn.
,
2
(
5
), pp.
367
338
.
3.
Padmanabhan
,
C.
,
Rook
,
T. E.
, and
Singh
,
R.
,
1995
, “
Modeling of Automotive Gear Rattle Phenomenon: State of the Art
,”
SAE Technical Paper No. 951316
.
4.
Fernandez-Del-Rincon
,
A.
,
Diez-Ibarbia
,
A.
, and
Theodossiades
,
S.
,
2019
, “
Gear Transmission Rattle: Assessment of Meshing Forces Under Hydrodynamic Lubrication
,”
Appl. Acoust.
,
144
, pp.
85
95
.
5.
Moetakef
,
M.
,
Zouani
,
A.
,
Felice
,
M.
,
Baumann
,
J.
,
Campbell
,
B.
,
Pesheck
,
E.
,
Baudson
,
R.
, and
Cabrol
,
M.
,
2019
, “
An Analytical Methodology for Engine Gear Rattle and Whine Assessment and Noise Simulation
,”
SAE Technical Paper No. 2019-01-0799
.
6.
Pfeiffer
,
F.
, and
Prestl
,
W.
,
1994
, “
Hammering in Diesel-Engine Driveline Systems
,”
Nonlinear Dyn.
,
5
(
4
), pp.
477
492
.
7.
Zhao
,
H. A.
, and
Reinhart
,
T. E.
,
1999
, “
The Influence of Diesel Engine Architecture on Noise Levels
,”
SAE Technical Paper No. 1999-01-1747
.
8.
Joshi
,
Y. V.
, and
Kelleher
,
J. E.
,
2014
, “
Gear Train Mesh Efficiency Study: The Effects of an Anti-backlash Gear
,”
SAE Int. J. Commer. Veh.
,
7
(
1
), pp.
271
277
.
9.
Spessert
,
B.
, and
Ponsa
,
R.
,
1990
, “
Investigation in the Noise from Main Running Gear, Timing Gears and Injection Pump of Diesel Engines
,”
SAE Technical Paper No. 900012
.
10.
Russo
,
R.
,
Brancati
,
R.
, and
Rocca
,
E.
,
2009
, “
Experimental Investigations About the Influence of Oil Lubricant Between Teeth on the Gear Rattle Phenomenon
,”
J. Sound Vib.
,
321
(
3–5
), pp.
647
661
.
11.
Kadmiri
,
Y.
,
Rigaud
,
E.
,
Perret-Liaudet
,
J.
, and
Vary
,
L.
,
2012
, “
Experimental and Numerical Analysis of Automotive Gearbox Rattle Noise
,”
J. Sound Vib.
,
331
(
13
), pp.
3144
3157
.
12.
Baumann
,
A.
, and
Bertsche
,
B.
,
2015
, “
Experimental Study on Transmission Rattle Noise Behaviour With Particular Regard to Lubricating Oil
,”
J. Sound Vib.
,
341
, pp.
195
205
.
13.
Brancati
,
R.
,
Rocca
,
E.
, and
Savino
,
S.
,
2015
, “
A Gear Rattle Metric Based on the Wavelet Multi-resolution Analysis: Experimental Investigation
,”
Mech. Syst. Signal Process
,
50–51
, pp.
161
173
.
14.
Forcelli
,
A.
,
Grasso
,
C.
, and
Pappalardo
,
T.
,
2004
, “
The Transmission Gear Rattle Noise: Parametric Sensitivity Study
,”
SAE Technical Paper No. 2004-01-1225
.
15.
Dion
,
J. L. L.
,
Le Moyne
,
S.
,
Chevallier
,
G.
, and
Sebbah
,
H.
,
2009
, “
Gear Impacts and Idle Gear Noise: Experimental Study and Non-linear Dynamic Model
,”
Mech. Syst. Signal Process
,
23
(
8
), pp.
2608
2628
.
16.
Rigaud
,
E.
, and
Perret-Liaudet
,
J.
,
2020
, “
Investigation of Gear Rattle Noise Including Visualization of Vibro-impact Regimes
,”
J. Sound Vib.
,
467
, p.
115026
.
17.
Doǧan
,
S. N.
,
Ryborz
,
J.
, and
Bertsche
,
B.
,
2006
, “
Design of Low-Noise Manual Automotive Transmissions
,”
Proc. Inst. Mech. Eng. K: J. Multi-Body Dyn.
,
220
(
2
), pp.
79
95
.
18.
Brancati
,
R.
,
Rocca
,
E.
, and
Russo
,
R.
,
2005
, “
A Gear Rattle Model Accounting for Oil Squeeze Between the Meshing Gear Teeth
,”
Proc. Inst. Mech. Eng. D: J. Automob. Eng.
,
219
(
9
), pp.
1075
1083
.
19.
Rocca
,
E.
, and
Russo
,
R.
,
2011
, “
Theoretical and Experimental Investigation Into the Influence of the Periodic Backlash Fluctuations on the Gear Rattle
,”
J. Sound Vib.
,
330
(
20
), pp.
4738
4752
.
20.
Di Bernardo
,
M.
,
Budd
,
C. J.
,
Champneys
,
A. R.
, and
Kowalczyk
,
P.
,
2008
,
Piecewise-Smooth Dynamical Systems, Theory and Applications
, Applied Mathematical Sciences Book Series, Vol.
40
,
Springer
,
London, UK
.
21.
Oppenheimer
,
C. H.
, and
Dubowsky
,
S.
,
2003
, “
A Methodology for Predicting Impact-Induced Acoustic Noise in Machine Systems
,”
J. Sound Vib.
,
266
(
5
), pp.
1025
1051
.
22.
Tien
,
M. H.
, and
D’Souza
,
K.
,
2019
, “
Transient Dynamic Analysis of Cracked Structures With Multiple Contact Pairs Using Generalized HSNC
,”
Nonlinear Dyn.
,
96
(
2
), pp.
1115
1131
.
23.
Padmanabhan
,
C.
, and
Singh
,
R.
,
1995
, “
Dynamics of a Piecewise Non-linear System Subject to Dual Harmonic Excitation Using Parametric Continuation
,”
J. Sound Vib.
,
184
(
5
), pp.
767
799
.
You do not currently have access to this content.