Nonlinear Interactions in Systems of Multiple Order Centrifugal Pendulum Vibration Absorbers

Author:

Vidmar Brendan J.1,Shaw Steven W.,Feeny Brian F.2,Geist Bruce K.3

Affiliation:

1. e-mail:

2. Dynamics and Vibrations Laboratory, Department of Mechanical Engineering, Michigan State University, East Lansing, MI 48824

3. Chrysler Group LLC, Auburn Hills, MI 48326 e-mail:

Abstract

We consider nonlinear interactions in systems of order-tuned torsional vibration absorbers with sets of absorbers tuned to different orders. In all current applications, absorber systems are designed to reduce torsional vibrations at a single order. However, when two or more excitation orders are present and absorbers are introduced to address different orders, nonlinear interactions become possible under certain resonance conditions. Under these conditions, a common example of which occurs for orders n and 2n, crosstalk between the absorbers, acting through the rotor inertia, can result in instabilities that are detrimental to system response. In order to design absorber systems that avoid these interactions, and to explore possible improved performance with sets of absorbers tuned to different orders, we develop predictive models that allow one to examine the effects of absorber mass distribution and tuning. These models are based on perturbation methods applied to the system equations of motion, and they yield system response features, including absorber and rotor response amplitudes and stability, as a function of parameters of interest. The model-based analytical results are compared against numerical simulations of the complete nonlinear equations of motion, and are shown to be in good agreement. These results are useful for the selection of absorber parameters to achieve desired performance. For example, they allow for approximate closed form expressions for the ratio of absorber masses at the two orders that yield optimal performance. It is also found that utilizing multiple order absorber systems can be beneficial for system stability, even when only a single excitation order is present.

Publisher

ASME International

Subject

General Engineering

Reference26 articles.

1. Performance, Stability, and Localization of Systems of Vibration Absorbers,1999

2. The Dynamic Response of Multiple Pairs of Subharmonic Torsional Vibration Absorbers;J. Sound Vib.,2000

3. Tautochronic Bifilar Pendulum Torsion Absorbers for Reciprocating Engines;J. Sound Vib.,1992

4. Experimental Investigation of Circular Path Centrifugal Pendulum Vibration Absorbers,2002

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