To reveal the optimal damping mechanism of non-obstructive particle dampers(NOPDs)
the relationship between the damping performance of NOPDs and the motion mode of damping particles in NOPDs is deduced following the rheological behavior of vibrated granular particles. The motion mode of the damping particles giving the optimal damping effect is determined via cantilever system experiments
and the dissipation properties of the damping particles giving the optimal effect are analyzed numerically by the discrete element method(DEM). It is found that when the NOPD gives the optimal damping effect(Γ=3.3
f=21 Hz)
the steady granular Leidenfrost phenomenon occurs. In this circumstance
the optimal damping performance of the NOPD results mainly from two aspects
i.e. the direct energy dissipation caused by collisions and frictions between particle-particle and particle-wall
and the energy conversion from the input vibration energy to the potential energy of levitated granular particles
which can be regarded as indirect energy dissipation.
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references
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