The noise, vibration and harshness (NVH) performance of passenger vehicles strongly depends on the fluid-structure interaction between the air in the vehicle cavity and the sheet metal structure of the vehicle. Most of the noise and vibration problems related to this interaction come from resonance peaks of the sheet metal, which are excited by external forces (road, engine, and wind). A reduction in these resonance peaks can be achieved by applying bitumen damping layers, also called deadeners, in the sheet metal. The problem is where these deadeners shall be fixed, which is usually done in a trial-and-error basis. In this work, one proposes the use of embedded sensitivity to locate the deadeners in the sheet metal of the vehicle, more specifically in the vehicle roof. Experimental frequency response functions (FRFs) of the roof are obtained and the data are processed by adopting the embedded sensitivity method, thus obtaining the sensitivity of the resonance peaks on the local increase in damping due to the deadeners. As a result, by examining the sensitivity functions, one can find the optimum location of the deadeners that maximize their effect in reducing the resonance peaks of interest. After locating the deadeners in the optimum positions, it was possible to verify a strong reduction in resonance peaks of the vehicle roof, thus showing the efficiency of the procedure. The main advantage of this procedure is that it only requires FRF measurements of the vehicle in its original state not needing any previous modification of the vehicle structure to find the sensitivity functions.

1.
Bienert
,
J.
, 2002, “
Optimization of Damping Layers in Car Bodies
,”
Proceedings of the 2002 International Conference on Noise and Vibration Engineering, ISMA
, pp.
2005
2010
.
2.
Fujii
,
T.
,
Shibuya
,
S.
,
Sato
,
Y.
,
Jankowski
,
U.
,
Muller-Bechtel
,
M.
, and
Schneider
,
P.
, 2004, “
New Body in White Concept Through Topology Optimization
,”
VDI-Ber.
0083-5560,
1846
, pp.
603
610
.
3.
Behrens
,
A. W.
, and
Ellert
,
J.
, 2005, “
Buckling Texturing Technology for Increase in Stability of Thin Sheet Metal Structures—Simulation and Application
,”
Proceedings of the 11th International Conference Sheet Metal 2005, Advanced Materials Research
, pp.
623
630
.
4.
Nakanishi
,
M.
,
Kobayashi
,
Y.
, and
Yamada
,
G.
, 2002, “
Simultaneous Optimal Design of Stiffness and Damping of a Flexible Structure Reinforced by FRP Sheets
,”
JSME Int. J., Ser. C
1340-8062,
45
(
1
), pp.
99
106
.
5.
Franco
,
F.
,
Cunefare
,
K. A.
, and
Ruzzene
,
M.
, 2005, “
Structural-Acoustic Optimization of Sandwich Panels
,”
Proceedings of the ASME International Design Engineering Technical Conferences and Computers and Information Engineering Conference DETC2005
, pp.
2391
2400
.
6.
Manz
,
H.
, and
Breitbach
,
E.
, 2001, “
Application of Smart Materials in Automotive Structures
,”
Proc. SPIE
0277-786X,
4332
, pp.
197
204
.
7.
Carfagni
,
M.
,
Citti
,
P.
,
Governi
,
L.
, and
Pierini
,
M.
, 2004, “
Vibroacoustic Optimization of Stiffening Ribs and Damping Material Distribution on Sheet Metal Parts
,”
Shock Vib.
1070-9622,
11
(
3–4
), pp.
271
280
.
8.
Wodkte
,
H. W.
,
Eschenauer
,
H. A.
, and
Lamancusa
,
J. S.
, 1993, “
Layout of Extensional Surface Damping Treatment for Minimal Resonance Response
,
14th Biennial Conference on Mechanical Vibration and Noise
, September 19–22, Albuquerque, NM,
American Society of Mechanical Engineers
, Design Engineering Division (Publication) DE, Advances in Design and Automation, Vol.
65
(2), pp.
131
138
.
9.
Kostelnik
,
R. J.
,
Brant
,
A. L.
, and
Battle
,
K. J.
, 1987, “
Headliners Designed to Dampen Roof Vibration
,” SAE Technical Paper Series, pp.
1
13
.
10.
Kang
,
S. W.
,
Lee
,
J. M.
, and
Kim
,
S. H.
, 2000, “
Structural-Acoustic Coupling Analysis of the Vehicle Passenger Compartment With the Roof, Air-Gap, and Trim Boundary
,”
ASME J. Vibr. Acoust.
0739-3717,
122
(
3
), pp.
196
202
.
11.
Marburg
,
S.
,
Hardtke
,
H. J.
,
Schmidt
,
R.
, and
Pawandenat
,
D.
, 1997, “
Application of the Concept of Acoustic Influence Coefficients for the Optimization of a Vehicle Roof
,”
Eng. Anal. Boundary Elem.
0955-7997,
20
(
4
), pp.
305
310
.
12.
Yang
,
C.
,
Adams
,
D. E.
, and
Yoo
,
S. W.
, 2003, “
Diagnosing Vibration Problems With Embedded Sensitivity Functions
,”
Sound Vib.
0038-1810,
37
, pp.
12
17
.
13.
Johnson
,
T. J.
,
Yang
,
C.
,
Adams
,
D. E.
, and
Ciray
,
S.
, 2005, “
Embedded Sensitivity Functions for Characterizing Structural Damage
,”
Smart Mater. Struct.
0964-1726,
14
(
1
), pp.
155
169
.
14.
Yang
,
C.
,
Adams
,
D. E.
,
Derriso
,
M.
, and
Gordon
,
G.
, 2008, “
Structural Damage Identification in a Mechanically Attached Metallic Panel Using Embedded Sensitivity Functions
,”
J. Intell. Mater. Syst. Struct.
1045-389X,
19
(
4
), pp.
475
485
.
You do not currently have access to this content.