A Model for Improved Prediction of Force Coefficients in Grooved Squeeze Film Dampers and Oil Seal Rings

Author:

Delgado Adolfo1,San Andrés Luis23

Affiliation:

1. Structural Mechanics and Dynamics Laboratory, GE Research Center, Niskayuna, NY 12309

2. Fellow ASME

3. Department of Mechanical Engineering, Texas A&M University, College Station, TX 77843

Abstract

Abstract Squeeze film damper (SFD) designs typically implement supply grooves to ensure adequate lubricant flow into the film lands. Oil seal rings, of land film clearance c, also incorporate short and shallow grooves (length≤30c,depth≤15c) to reduce cross-coupled stiffnesses, thus promoting dynamic stability without a penalty in increased leakage. However, extensive experimental results in the archival literature demonstrate that grooves do not reduce the force coefficients as much as theory predicts. A common assumption is that deep grooves do not influence a damper or oil seal ring forced response. However, unexpected large added mass coefficients, not adequately predicted, appear to be common in many tested SFD and oil seal configurations. In the case of oil seals, experiments demonstrate that circumferential grooves do reduce cross-coupled stiffnesses but to a lesser extent than predictions would otherwise indicate. A linear fluid inertia bulk-flow model for analysis of the forced response of SFDs and oil seal configurations with multiple grooves is advanced. A perturbation analysis for small amplitude journal motions about a centered position yields zeroth and first-order flow equations at each flow region (lands and grooves). At a groove region, a groove effective depth dη, differing from its actual physical value, is derived from qualitative observations of the laminar flow pattern through annular cavities. The boundary conditions at the inlet and exit planes depend on the actual seal or SFD configuration. Integration of the resulting first-order pressure fields on the journal surface yields the force coefficients (stiffness, damping, and inertia). Current model predictions are in excellent agreement with published test force coefficients for a grooved SFD and a grooved oil seal. The results confirm that large added mass coefficients arise from the flow interactions between the feed/discharge grooves and film lands in the test elements. Furthermore, the predictions, benchmarking experimental data, corroborate that short length inner-land grooves in an oil seal do not isolate the pressure fields of adjacent film lands and hence contribute greatly to the forced response of the mechanical element.

Publisher

ASME International

Subject

Surfaces, Coatings and Films,Surfaces and Interfaces,Mechanical Engineering,Mechanics of Materials

Reference42 articles.

1. San Andrés, L. , 2009, “Modern Lubrication Theory, Lecture Notes #2: Classical Lubrication Theory,” http://rotorlab.tamu.edu/me626

2. The Squeeze Film Damper Over Four Decades of Investigations. Part I: Characteristics and Operating Features;Della Pietra;Shock Vib. Dig

3. The Squeeze Film Damper Over Four Decades of Investigations. Part II: Rotordynamic Analyses With Rigid and Flexible Rotors;Della Pietra;Shock Vib. Dig.

4. San Andrés, L. , 1985, “Effect of Fluid Inertia Effect on Squeeze Film Damper Force Response,” Ph.D. thesis, Texas A&M University, College Station, TX.

5. Delgado, A. , 2008, “A Linear Fluid Inertia Model for Improved Prediction of Force Coefficients in Grooved Squeeze Film Dampers and Grooved Oil Seal Rings,” Ph.D. thesis, Texas A&M University, College Station, TX.

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