Analysis of the vibration attenuation of rotors supported by magnetorheological squeeze film dampers as a multiphysical finite element problem

The development of a new mathematical model of a flexible rotor supported by magnetorheological squeeze film dampers, working out the methodology for derivation of semi-analytical relations for determination of magnetic induction in the damper gap, specification of the extent of their validity and applicability, and learning more on the influence of the magnetorheological damping devices on the lateral vibration attenuation of flexible rotors are the principal contributions of the presented article.The worked out approach to investigation of rotors supported by magnetorheological dampers speeds up the simulations.According to meaning of the authors, it is novel and has a strong potential of practical applications. Placing damping devices between the rotor and its frame is a frequently used engineering solution for reducing excessive vibrations of rotating machines. Their damping effect must be controllable to achieve their optimum performance in a wide range of operating speeds. This is enabled by magnetorheological squeeze film dampers, the damping force of which can be controlled by changing magnetic flux passing through the lubricating layer. The magnetorheological oil is represented in the developed mathematical model by Bingham material. The magnetic induction in the damper gap is a significant parameter that directly influences resistance against the flow of the magnetorheological oil and generates the additional magnetic force acting on the rotor journal. Therefore, three approaches (1D, 2D, and 3D) to determination of the semi-analytical relations describing its distribution in the lubricating film were proposed, tested, and compared. The appropriate coefficients were determined by repeatedly solving 2D or 3D magnetostatic problems for the specified damper dimensions, design, and rising magnitude of the journal eccentricity utilizing the finite element and least square methods. In the developed computational model of the rotating machine, the rotor shaft is represented by a beam like-body that is discretised into finite elements. The magnetorheological dampers are implemented by springs and force couplings. The principal contribution of this article consists in the development of a methodology, based on three approaches, for the derivation of closed form formulas describing the distribution of magnetic induction in the damper gap as a function of the rotor journal eccentricity and angular position. The individual approaches give some differences in the results that are consequent upon the distinguishing level used for modelling the damping device. The extent of their applicability is discussed in the article. The developed computational models are intended for the investigation of the vibration attenuation of rotor systems in a wide range of rotational speeds.

[1]  Paola Forte,et al.  Analysis of the steady state unbalance response of rigid rotors on magnetorheological dampers: stability, force transmission and energy dissipation , 2014 .

[2]  E. Hahn,et al.  Vibration Control of Rotor by Squeeze Film Damper with Magnetorheological Fluid , 2005 .

[3]  Paola Forte,et al.  A computational investigation of the transient response of an unbalanced rigid rotor flexibly supported and damped by short magnetorheological squeeze film dampers , 2012 .

[4]  Guang Meng,et al.  Dynamic performance and control of squeeze mode MR fluid damper–rotor system , 2005 .

[5]  Meng Guang,et al.  Electro-Rheological Multi-layer Squeeze Film Damper and Its Application to Vibration Control of Rotor System , 2000 .

[6]  Aly El-Shafei,et al.  Experimental Investigation of Adaptive Control Applied to HSFD Supported Rotors , 2000 .

[7]  Paul E. Allaire,et al.  A magnetic damper for first-mode vibration reduction in multimass flexible rotors , 1990 .

[8]  S. Rohde,et al.  Tribology: Friction, Lubrication, and Wear , 1981 .

[9]  Paola Forte,et al.  A Computational Investigation of the Steady State Vibrations of Unbalanced Flexibly Supported Rigid Rotors Damped by Short Magnetorheological Squeeze Film Dampers , 2013 .

[10]  Shin Morishita,et al.  Controllable Squeeze Film Damper (An Application of Electro-Rheological Fluid) , 1992 .

[11]  Emiliano Rustighi,et al.  Design of a novel magneto-rheological squeeze-film damper , 2006 .

[12]  Seung-Bok Choi,et al.  Analysis of a Short Squeeze-Film Damper Operating with Electrorheological Fluids , 1995 .

[13]  Emiliano Rustighi,et al.  A Magnetorheological Fluid Damper for Rotor Applications , 2004 .

[14]  Clifford R. Burrows,et al.  An Appraisal of a Proposed Active Squeeze Film Damper , 1991 .

[15]  J. Zapomel,et al.  Mathematical modelling of a long squeeze film magnetorheological damper for rotor systems , 2010 .

[16]  Petr Ferfecki,et al.  Determination of the transient vibrations of a rigid rotor attenuated by a semiactive magnetorheological damping device by means of computational modelling , 2014 .