Dynamic Modal Correlation of an Automotive Rear Subframe, with Particular Reference to the Modelling of Welded Joints

This paper presents a comparison between the experimental investigation and the Finite Element (FE) modal analysis of an automotive rear subframe. A modal correlation between the experimental data and the forecasts is performed. The present numerical model constitutes a predictive methodology able t...

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Bibliographic Details
Published inAdvances in Acoustics and Vibration Vol. 2017; pp. 158 - 166
Main Authors Rotondella, Vincenzo, Merulla, Andrea, Baldini, Andrea, Mantovani, Sara
Format Journal Article
LanguageEnglish
Published New York Hindawi Limiteds 01.01.2017
Hindawi
John Wiley & Sons, Inc
Hindawi Limited
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ISSN1687-6261
1687-627X
1687-627X
DOI10.1155/2017/8572674

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Summary:This paper presents a comparison between the experimental investigation and the Finite Element (FE) modal analysis of an automotive rear subframe. A modal correlation between the experimental data and the forecasts is performed. The present numerical model constitutes a predictive methodology able to forecast the experimental dynamic behaviour of the structure. The actual structure is excited with impact hammers and the modal response of the subframe is collected and evaluated by the PolyMAX algorithm. Both the FE model and the structural performance of the subframe are defined according to the Ferrari S.p.A. internal regulations. In addition, a novel modelling technique for welded joints is proposed that represents an extension of ACM2 approach, formulated for spot weld joints in dynamic analysis. Therefore, the Modal Assurance Criterion (MAC) is considered the optimal comparison index for the numerical-experimental correlation. In conclusion, a good numerical-experimental agreement from 50 Hz up to 500 Hz has been achieved by monitoring various dynamic parameters such as the natural frequencies, the mode shapes, and frequency response functions (FRFs) of the structure that represent a validation of this FE model for structural dynamic applications.
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ISSN:1687-6261
1687-627X
1687-627X
DOI:10.1155/2017/8572674