Frequency Response Analysis of Fully Trimmed Models using Compressed Reduced Impedance Matrix Methodology 2024-01-2947
As vibration and noise regulations become more stringent, numerical models need to incorporate more detailed damping treatments. Commercial frameworks, such as Nastran and Actran, allow the representation of trim components as frequency-dependent reduced impedance matrices (RIM) in frequency response analysis of fully trimmed models.
The RIM is versatile enough to couple the trims to modal-based or physical components. If physical, the trim components are reduced on the physical coupling degrees of freedom (DOFs) for each connected interface. If modal, the RIMs are projected on the eigenmodes of the connected component. While a model size reduction is achieved compared to the original model, most numerical models possess an extensive number of interfaces DOFs, either modal or physical, leading to large dense RIM which triggers substantial memory and disk storage. Thus, the approach faces challenges related to storage capacities and efficiency, due to the demanding computational and input/output (I/O) operations.
This paper introduces a new robust and efficient methodology to further compress these RIMs when dealing with modal components. Instead of performing a conventional modal projection, the method reduces the global modes onto the coupling surfaces of each component to their most significant contributions. The paper demonstrates, on an industrial fully trimmed car body model, that if the truncation process removes enough low-effect contributions, the coupling is represented with a minor loss of accuracy, while a drastic compression of disk storage is achieved. As an additional benefit, the computational time is reduced due to the I/O handling of much smaller matrices.
Author(s):
Andre Paiva, Julien Verhaegen, Gregory Lielens, Benoit Van den Nieuwenhof
Affiliated:
Hexagon
Event:
13th International Styrian Noise, Vibration & Harshness Congress: The European Automotive Noise Conference
ISSN:
0148-7191
e-ISSN:
2688-3627
Related Topics:
Mathematical models
Noise, vibration, and harshness standards and regulations
Storage
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