Experimental study of targeted energy transfer from an acoustic system to a nonlinear membrane absorber

2010 ◽  
Vol 329 (14) ◽  
pp. 2768-2791 ◽  
Author(s):  
R. Bellet ◽  
B. Cochelin ◽  
P. Herzog ◽  
P.-O. Mattei
2021 ◽  
Vol 184 ◽  
pp. 108342
Author(s):  
Jianwang Shao ◽  
Qimeng Luo ◽  
Guoming Deng ◽  
Tao Zeng ◽  
Jinmeng Yang ◽  
...  

2006 ◽  
Vol 47 (1-3) ◽  
pp. 285-309 ◽  
Author(s):  
Gaetan Kerschen ◽  
Jeffrey J. Kowtko ◽  
D. Michael Mcfarland ◽  
Lawrence A. Bergman ◽  
Alexander F. Vakakis

Author(s):  
Jianwang Shao ◽  
Xian Wu ◽  
Bruno Cochelin

The targeted energy transfer (TET) phenomenon has been observed in the field of acoustics, which provides a new approach to passive sound control in low frequency domain. The TET phenomenon has been investigated firstly inside one tube (1D acoustic system) with a membrane nonlinear energy sink (NES) or a loudspeaker nonlinear absorber, then inside an acoustic cavity (3D acoustic system) with a membrane NES. 3D acoustic cavities have been considered as more general geometry for the acoustic medium in view of applications in the acoustic field and the membrane NES is mounted directly on the wall of the acoustic cavity. The placement of a membrane NES on the wall involves a weak coupling between the membrane NES and a considered acoustic mode, which constitute the two degrees-of-freedom (DOF) system. The beginning of TET phenomenon of the two DOFs system has been analyzed and the desired working zone for the membrane NES has also been defined. The two thresholds of the zone have been determined by an analytical formula and semi-analytically, respectively. The parametric analysis of the membrane NES by using the two DOFs system has been investigated to design the membrane NES. In order to enhance the robustness and the effective TET range in acoustic cavities, a three DOFs system with two membranes and one acoustic mode is studied in this paper. We consider two different membranes and two almost identical membranes to analyze the TET phenomenon, respectively. The desired working zone for the membrane NES and the value of the plateau which are obtained by the two DOFs system are applied to analyze the three DOFs system. We observe that two membranes can enlarge the desired working zone of the NES.


2021 ◽  
Author(s):  
Mohi U. Rahamat Ullah

Targeted energy transfer (TET) refers to the spatial transfer of energy between a primary structure of interest and isolated oscillators called the energy sink (ES). In this work, the primary structure of interest is a slender beam modeled by the Euler-Bernoulli theory, and the ES is a single-degree-of-freedom oscillator with either linear or cubic nonlinear stiffness property. The objective of this study is to characterize the TET and the effectiveness of ES under impact and periodic excitations. By using the scientific computation package, MATLAB, numerical simulations are carried out based on excitations of various strength and locations. Both time and frequency domain characterizations are used. For the impact excitation, the ES with the cubic nonlinear stiffness property is more superior to the linear oscillator in that larger percentage of the impact energy can be dissipated there. The main energy transfer was found to be due to a 3- to-1 frequency coupling between the first bending mode and the ES. For the periodic excitation, however, both linear and nonlinear ES exhibit generally poorer performance than the case with the impact excitation. Future works should focus on the frequency-energy relationship of the periodic solution of the underlying Hamiltonian, as well as using finite element model to verify the simulation results.


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