DYNAMIC CHARACTERIZATION OF AN INTEGRAL SQUEEZE FILM BEARING SUPPORT DAMPER FOR A SUPERCRITICAL CO2 EXPANDER Conference Paper uri icon

abstract

  • Copyright 2017 ASME. The present work advances experimental results and analytical predictions on the dynamic performance of an integral squeeze film damper (ISFD) for application in a high-speed super-critical CO2 (sCO2) expander. The test campaign focused on conducting controlled orbital motion mechanical impedance testing aimed at extracting stiffness and damping coefficients for varying end seal clearances, excitation frequencies, and vibration amplitudes. In addition to the measurement of stiffness and damping; the testing revealed the onset of cavitation for the ISFD. Results show damping behavior that is constant with vibratory velocity for each end seal clearance case until the onset of cavitation/air ingestion, while the direct stiffness measurement was shown to be linear. Measurable added inertia coefficients were also identified. The predictive model uses an isothermal finite element method to solve for dynamic pressures for an incompressible fluid using a modified Reynolds equation accounting for fluid inertia effects. The predictions revealed good correlation for experimentally measured direct damping, but resulted in grossly overpredicted inertia coefficients when compared to experiments.

published proceedings

  • PROCEEDINGS OF THE ASME TURBO EXPO: TURBINE TECHNICAL CONFERENCE AND EXPOSITION, 2017, VOL 7A

author list (cited authors)

  • Ertas, B., Delgado, A., & Moore, J.

complete list of authors

  • Ertas, Bugra||Delgado, Adolfo||Moore, Jeffrey

publication date

  • January 2017