Abstract
Model validation of uncertain structures is a challenging research focus because of uncertainties involved in modeling, manufacturing processes, and measurement systems. A stochastic method employing Monte Carlo simulation (MCS) and hierarchical cluster analysis (HCA) is presented to give an accurate validation outcome with acceptable calculation cost. Parameters exhibiting the significant effect on modal features are identified by Analysis of Variance. To reduce the calculation burden during direct MCS, Radial Basis Function is employed to generate a low-order model of the response space. Particular emphasis is placed on HCA and model assessment, which are applied to distinguish the global best solution from local best solutions in the complete parameter space. The procedure integrating parameter selection, uncertainty propagation, uncertainty quantification, parameter calibration, and model assessment is suitable for models with massive degrees-of-freedom and complex input-output relationship. FE-models of a satellite are given to illustrate the approach's application on complicated engineering structures.
| Original language | English |
|---|---|
| Pages (from-to) | 22-33 |
| Number of pages | 12 |
| Journal | Finite Elements in Analysis and Design |
| Volume | 67 |
| Early online date | 19 Jan 2013 |
| DOIs | |
| Publication status | Published - 31 May 2013 |
Funding
Supports for this research are provided by the National Sciences Foundation of China under Grant 10972019 and by the Graduate Innovation Practice Fund of Beihang University under Grant YCSJ-01-201208, which are greatly acknowledged.
Keywords
- analysis of variance
- hierarchical cluster analysis
- model validation
- Monte Carlo simulation
- radial basis function
- uncertainty
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