Advanced Squeak and Rattle Noise Prediction for Vehicle Interior Development - Numerical Simulation and Experimental Validation

Author:

Rauter Andreas1,Utzig Lukas2,Weisheit Konrad2,Marburg Steffen3

Affiliation:

1. TUM-Chair of Vibroacoustics / BMW Group

2. BMW Group

3. TUM-Chair of Vibroacoustics

Abstract

<div class="section abstract"><div class="htmlview paragraph">Squeak and rattle (SAR) noise audible inside a passenger car causes the product quality perceived by the customer to deteriorate. The consequences are high warranty costs and a loss in brand reputation for the vehicle manufacturer in the long run. Therefore, SAR noise must be prevented. This research shows the application and experimental validation of a novel method to predict SAR noise on an actual vehicle interior component. The method is based on non-linear theories in the frequency domain. It uses the Harmonic Balance Method (HBM) in combination with the Alternating Frequency/Time Domain Method (AFT) to solve the governing dynamic equations. The simulation approach is part of a process for SAR noise prediction in vehicle interior development presented herein. In the first step, a state-of-the-art linear frequency-domain simulation estimates an empirical risk index for SAR noise emission. Critical spots prone to SAR noise generation are located and ranked. In the second step, the non-linear simulation approach calculates a quantitative measure for the SAR noise generated at these critical spots. This computation considers the root cause for SAR noise, the non-linear forces emerging from critical contact interaction, i.e. stick-slip for squeak and repeated impact for rattle noise. In the third step, a shaker test validates the numerical results. Therefore, a full-scale test rig is built comprising an equipped vehicle interior assembly mounted on a frame. Thereby, the presented SAR noise prediction process featuring the novel non-linear frequency domain simulation approach is validated and applied to developing a complex vehicle interior assembly.</div></div>

Publisher

SAE International

Reference37 articles.

1. Zeller , P. 2018 10.1007/978-3-658-18520-6

2. Trapp , M. and Chen , F. Automotive Buzz, Squeak and Rattle: Mechanisms, Analysis, Evaluation and Prevention 1st Amsterdam and Boston, MA Butterworth-Heinemann/Elsevier 2012 9780080559117

3. Nolan , S.A. , Rediers , B.E. , Loftus , H.M. , and Leist , T.

4. Kavarana , F. and Rediers , B. Squeak and Rattle - State of the Art and Beyond SAE Technical Paper 1999-01-1728 1999 10.4271/1999-01-1728

5. Naganarayana , B.P. , Shankar , S. , Bhattachar , V.S. , Brines , R.S. et al. N-Hance: Software for Identification of Critical BSR Locations in Automotive Assemblies using Finite Element Models SAE Technical Paper 2003-01-1522 2003 10.4271/2003-01-1522

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