Metamodels Resulting from Two Different Geometry Morphing Approaches Are Suitable to Direct the Modification of Structure-Born Noise Transfer in the Digital Design Phase
Abstract
:1. Introduction
2. Fundamentals and State of the Art
2.1. NVH Optimization in the Digital Design Phase
2.2. Morphing
Application of Morphing
2.3. Morphing Alternatives
3. Method
3.1. Direct Morphing Approach
3.2. Box Morphing Approach
3.3. Metamodeling
4. Application
4.1. Scenario
4.2. Method Comparison
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
CAD | Computer Aided Design |
CAE | Computer Aided Engineering |
EFFD | Extended-Free-Form-Deformation |
FE | Finite Element |
FEM | Finite Element Method |
FFD | Free-Form-Deformation |
FRF | Frequency Response Function |
NVH | Noise, Vibration and Harshness |
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Method | Predicted Amplitude | |||
---|---|---|---|---|
Manually | ||||
Optimization Direct | ||||
Optimization Box |
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von Wysocki, T.; Leupolz, M.; Gauterin, F. Metamodels Resulting from Two Different Geometry Morphing Approaches Are Suitable to Direct the Modification of Structure-Born Noise Transfer in the Digital Design Phase. Appl. Syst. Innov. 2020, 3, 47. https://doi.org/10.3390/asi3040047
von Wysocki T, Leupolz M, Gauterin F. Metamodels Resulting from Two Different Geometry Morphing Approaches Are Suitable to Direct the Modification of Structure-Born Noise Transfer in the Digital Design Phase. Applied System Innovation. 2020; 3(4):47. https://doi.org/10.3390/asi3040047
Chicago/Turabian Stylevon Wysocki, Timo, Michael Leupolz, and Frank Gauterin. 2020. "Metamodels Resulting from Two Different Geometry Morphing Approaches Are Suitable to Direct the Modification of Structure-Born Noise Transfer in the Digital Design Phase" Applied System Innovation 3, no. 4: 47. https://doi.org/10.3390/asi3040047
APA Stylevon Wysocki, T., Leupolz, M., & Gauterin, F. (2020). Metamodels Resulting from Two Different Geometry Morphing Approaches Are Suitable to Direct the Modification of Structure-Born Noise Transfer in the Digital Design Phase. Applied System Innovation, 3(4), 47. https://doi.org/10.3390/asi3040047