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A Nonlinear vibration analysis of forced response for a bladed-disk with dry friction dampers
Author(s) -
Liu Tianyuan,
Zhang Di,
Xie Yonghui
Publication year - 2019
Publication title -
journal of low frequency noise, vibration and active control
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.419
H-Index - 25
eISSN - 2048-4046
pISSN - 1461-3484
DOI - 10.1177/1461348419834759
Subject(s) - nonlinear system , damper , vibration , control theory (sociology) , jacobian matrix and determinant , frequency domain , numerical continuation , solver , mechanics , harmonic balance , structural engineering , physics , mathematics , engineering , mathematical analysis , computer science , bifurcation , acoustics , mathematical optimization , quantum mechanics , artificial intelligence , control (management)
This paper focuses on the steady vibration characteristics of the bladed-disk subjected to the dry friction damping under periodic excitation. The multi-harmonic method and continuation procedure are combined to trace the solution of the nonlinear forced vibration problem. To obtain a stable and fast nonlinear solver, the analytical formulation of Jacobian matrix in frequency-domain is derived for elastic Coulomb friction model with variable normal force. Furthermore, the continuation method is generalized to trace the solution via different parameters, including not only commonly used excitation frequency but also other design parameters of interest. In numerical simulations, a two degrees of freedom system and a lumped parameter bladed-disk model with dry friction dampers are employed to validate the effectiveness and stability of the method. Meanwhile, the effects of damper design parameters on the responses are investigated, especially the effect of normal force is studied to find the optimal solution. The results indicate that the proposed analytical method can provide an accurate quantitative assessment for the optimum design of the bladed-disk dampers.

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