Evaluation of Energy and Power Flow in a Nonlinear Energy Sink Attached to a Linear Primary Oscillator

Author:

Silva Christian E.1,Maghareh Amin2,Tao Hongcheng3,Dyke Shirley J.4,Gibert James5

Affiliation:

1. Intelligent Infrastructure Systems Lab, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907

2. Lyles School of Civil Engineering, Purdue University, West Lafayette, IN 47907

3. Advanced Dynamics and Mechanics Lab, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907

4. Professor Department of Mechanical Engineering and Civil Engineering, Purdue University, West Lafayette, IN 47907

5. Assistant Professor Department of Mechanical Engineering, Advanced Dynamics and Mechanics Lab, Purdue University, West Lafayette, IN 47907

Abstract

Abstract The objective of this study is to develop a novel methodology to assess the energy flow between a nonlinear energy sink (NES) and the primary system it is attached to in terms of energy orientation, which is directly related to the sign of the power present on the primary system. To extend the work done in previous studies, which have focused primarily on the analytical treatment, characterization, and performance evaluation of NES as passive nonlinear dampers for structures under different types of excitations, this study incorporates a methodology for determining whether energy is entering or leaving a primary oscillator when interacting with an NES, by means of considering the power flow of the primary oscillator. Several current measures for evaluating the effectiveness of the NES at extracting and dissipating energy irreversibly are considered through numerical simulations of systems with different damping cases of the NES. Each case provides a different dissipation scenario in the combined system, which is subjected to different types of base excitation signals such as impulse and seismic records. The methodology is further validated experimentally using a two degrees-of-freedom system with an NES attached to the second mass. Comparisons of the modeled responses versus the measured responses are provided for several physical damping realization scenarios in the NES.

Funder

National Secretariat of Science, Technology, and Innovation of the Government of Ecuador

College of Engineering of Purdue University

Publisher

ASME International

Subject

General Engineering

Reference37 articles.

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3. Irreversible Passive Energy Transfer in Coupled Oscillators With Essential Nonlinearity;Kerschen;SIAM J. Appl. Math.,2005

4. Experimental Study of Nonlinear Energy Pumping;McFarland,2004

5. Experimental Study of Non-Linear Energy Pumping Occurring at a Single Fast Frequency;Mcfarland;Int. J. Non-Linear Mech.,2005

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