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As the modal analysis bases on linear theory, the non-linearities are hard to include.
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Traditional modal analysis based methods are linear methods.
A modal analysis based on the Finite Element Method (FEM) is performed to obtain quickly the features of this resonance.
The approach is first demonstrated by synthetic modal analysis based upon a finite element model of a cantilever beam.
Moreover, it allows to extend the applicability of many modal analysis based applications towards the domain of in-operation modal testing.
It will turn out that the method has considerable, computational advantages compared to the usually applied method of modal analysis based on eigenfunction expansions.
A comparison was made between the results of a classic input output and the new output-only modal analysis based on transmissibility measurements.
One is the spectrum modal analysis based on the time-depending wind forces acting on the cylinder at rest and the other is the aeroelastic computations.
A modal analysis based on a High Resolution technique shows that the ABH significantly increases the Modal Overlap Factor (MOF) of the beam, thus reducing the resonant behaviour of the structure.
The aim of our study is (i) to assess whether approximate techniques can accurately predict the behavior of laminated glass structures and (ii) to propose a simple tool for modal analysis based on the Enhanced Effective Thickness concept.
A modal analysis based on extended operators for the (continuous) beam and (discrete) rigid body establishes a piecewise linear state-to-state mapping for transition between the in-contact and not-in-contact conditions.
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