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Lin and Chen (2003) studied the dynamic stability of a rotating beam with a constrained damping layer.
The dynamic behavior and dynamic instability of the rotating sandwich beam with a constrained damping layer subjected to axial periodic loads are studied by the finite element method.
Experimental results from a cantilever beam with a constrained layer viscoelastic damping treatment driven with a sinusoidal input are given which show compressional deformation over a relatively wide driving frequency range.
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An exponential model with a constrained exponent offers plausible profiles.
A clamped free beam with partial active constrained layer damping (ACLD) treatment is modelled by using the finite element method.
Each limb body is modeled as a spatial beam with a uniform cross-section constrained by two sets of lumped springs.
A new model for a smart beam with a partially debonded active constrained layer damping (ACLD) patch is presented, and the effects of the debonding of the ACLD patch on both passive and hybrid control are investigated.
The modal frequencies and loss factors of a simply supported beam with an enhanced active constrained layer (EACL) damping treatment are derived by the extended Hamilton principle and Rayleigh Ritz method while open- and closed-loop control (displacement and velocity feedback) systems are considered.
The system consists of a primary beam and a constraining beam with a viscoelastic damping material forming the core.
Dynamics of a rotating flexible beam with fully covered active constrained lamped damping (ACLD) treatment is investigated.
The partially constrained layer damping (CLD) treatments are placed periodically along the beam and covered with a constrained layer to control the longitudinal wave propagation in this beam.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com