
Summary: Modal analysis is established as one of the fundamental strategies in approaching structural dynamic problems. Despite its universal appeal, it is fundamentally a linear theory and cannot be applied to significantly nonlinear systems without incurring substantial difficulties in implementation and interpretation of results. This paper documents a number of attempts to reconcile nonlinearity with modal analysis. Three main approaches are discussed, each of which is characterized by a different philosophy.
frequency-response function distorsion, invariants of nonlinear systems, nonlinearity, Forced motions for nonlinear problems in mechanics, System identification, Experimental work for problems pertaining to mechanics of particles and systems, modal analysis, system identification
frequency-response function distorsion, invariants of nonlinear systems, nonlinearity, Forced motions for nonlinear problems in mechanics, System identification, Experimental work for problems pertaining to mechanics of particles and systems, modal analysis, system identification
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