Effect of lateral confinement on the apparent mass of particle dampers
arXiv:2007.07961
Abstract
We study, via DEM simulations, the apparent mass and loss factor of particle dampers (PD) attached to a vertically driven, single degree of freedom mechanical system. Although many studies focus on , less work has been devoted to . It has been recently demonstrated [M. Masmoudi \textit{et al}. Granular Matter 18 (2016) 71.] that non-linearly depends on the driving acceleration according to a power law, . Experiments using 3D packings of particles suggest . However, simulations with 1D columns of particles on a vibrating plate and theoretical predictions based on the inelastic bouncing ball model (IBBM) suggest that . These findings left open questions whether m may depend on the dimensionality of the packing or on lateral interactions between walls and grains. In turn, was shown to follow a universal curve, , whatever the dimensionality and the constraints in the motion of the grains. In this work, we consider PD under different confinement conditions in the motion of the particles (1D, quasi-1D, quasi-2D and 3D). We find that the dynamical response of the PD ( and ) is not sensitive to the lateral confinement or dimensionality. However, we have observed two distinct regimes: (i) In the inertial regime, decays according to the IBBM for all dimensions, , while falls with an apparent power law behaviour that matches Masmoudi's experiments, , for all dimensions but only in the range of moderate acceleration, before becoming negative for very high accelerations. (ii) In the quasi-static regime, both and display a complex behavior as functions of the excitation amplitude, but tend to the IBBM prediction, and .
21 pages, 5 figures