Abstract Noise has various effects on comfort, performance and health of human. Sound are analysed by human brain based on the frequencies and amplitudes. In a dynamic system, transmission of sound and vibrations depend on frequency and direction of the input motion and characteristics of the output. It is imperative that automotive manufacturers invest a lot of effort and money to improve and enhance the vibro-acoustics performance of their products. The enhancement effort may be very difficult and time-consuming if one relies only on ‘trial and error’ method without prior knowledge about the sources itself. Complex noise inside a vehicle cabin originated from various sources and travel through many pathways. First stage of sound quality refinement is to find the source. It is vital for automotive engineers to identify the dominant noise sources such as engine noise, exhaust noise and noise due to vibration transmission inside of vehicle. The purpose of this paper is to find the vibro-acoustical sources of noise in a passenger vehicle compartment. The implementation of spectral analysis method is much faster than the ‘trial and error’ methods in which, parts should be separated to measure the transfer functions. Also by using spectral analysis method, signals can be recorded in real operational conditions which conduce to more consistent results. A multi-channel analyser is utilised to measure and record the vibro-acoustical signals. Computational algorithms are also employed to identify contribution of various sources towards the measured interior signal. These achievements can be utilised to detect, control and optimise interior noise performance of road transport vehicles.
[1]
Richard J. Ruhala,et al.
Tire/Pavement Interaction Noise Source Identification Using Multi-Planar Nearfield Acoustical Holography
,
1999
.
[2]
Quentin Leclere.
ETUDE ET DEVELOPPEMENT DE LA MESURE INDIRECTE D'EFFORTS - Application à l'identification des sources internes d'un moteur Diesel
,
2003
.
[3]
Chun Lu,et al.
Passive and active interior noise control of box structures using the structural intensity method
,
2006
.
[4]
Quentin Leclere,et al.
Application of multi-channel spectral analysis to identify the source of a noise amplitude modulation in a diesel engine operating at idle
,
2005
.
[5]
U Sandberg,et al.
ROAD SURFACE INFLUENCE ON TIRE/ROAD NOISE--1
,
1980
.
[6]
Julius S. Bendat,et al.
Engineering Applications of Correlation and Spectral Analysis
,
1980
.
[7]
G. Tomlinson.
Developments in the use of the Hilbert transform for detecting and quantifying non-linearity associated with frequency response functions
,
1987
.
[8]
A. Papoulis,et al.
The Fourier Integral and Its Applications
,
1963
.
[9]
Kiyoung Kim,et al.
A HILBERT TRANSORM APPROACH IN SOURCE IDENTIFICATION VIA MULTIPLE-INPUT SINGLE-OUTPUT MODELING FOR CORRELATED INPUTS
,
1998
.
[10]
A. G. Piersol.
Use of coherence and phase data between two receivers in evaluation of noise environments
,
1978
.
[11]
H. Nahvi,et al.
Index for vehicle acoustical comfort inside a passenger car
,
2008
.
[12]
Amiya R Mohanty,et al.
Structure-borne noise reduction in a truck cab interior using numerical techniques
,
2000
.