Predicting the energy dissipation associated with contact of underplatform dampers remains a critical challenge in turbomachinery blade and friction damper design. Typical turbomachinery blade forced vibration response analyses rely on reduced order models and simplified nonlinear codes to predict blade vibration characteristics in a computationally tractable manner. Recent research has focused on both the model reduction process and simulation of the contact dynamics. This paper proposes two academic turbine blade geometries with coupled underplatform dampers as vehicles by which these model reduction and forced response simulation techniques may be compared. The blades correspond to two types of freestanding turbine blades and demonstrate the same qualitative behavior as more complex industry geometries. The blade geometries are fully described here and analyzed using the same procedure as used for an industry-specific blade. Standard results are presented in terms of resonance frequency, amplitude, and damping across a range of aerodynamic excitation. In addition, the predicted blade vibration characteristics are examined under variations in the contact interface: friction coefficient, damper / platform surface roughness, and damper mass, with relative sensitivities to each term generated. Finally, the effect of the number of modes retained in the reduced order model is studied to uncover patterns of convergence as well as to provide additional sets of standard data for comparison with other model reduction and forced response simulation methods.
Skip Nav Destination
ASME Turbo Expo 2017: Turbomachinery Technical Conference and Exposition
June 26–30, 2017
Charlotte, North Carolina, USA
Conference Sponsors:
- International Gas Turbine Institute
ISBN:
978-0-7918-5093-0
PROCEEDINGS PAPER
Academic Blade Geometries for Baseline Comparisons of Industry-Specific Forced Response Predictions
James H. Little, II,
James H. Little, II
University of Central Florida, Orlando, FL
Search for other works by this author on:
Jeffrey L. Kauffman,
Jeffrey L. Kauffman
University of Central Florida, Orlando, FL
Search for other works by this author on:
Matthias Huels
Matthias Huels
Siemens AG, Mülheim an der Ruhr, Germany
Search for other works by this author on:
James H. Little, II
University of Central Florida, Orlando, FL
Jeffrey L. Kauffman
University of Central Florida, Orlando, FL
Matthias Huels
Siemens AG, Mülheim an der Ruhr, Germany
Paper No:
GT2017-64877, V07BT35A028; 12 pages
Published Online:
August 17, 2017
Citation
Little, JH, II, Kauffman, JL, & Huels, M. "Academic Blade Geometries for Baseline Comparisons of Industry-Specific Forced Response Predictions." Proceedings of the ASME Turbo Expo 2017: Turbomachinery Technical Conference and Exposition. Volume 7B: Structures and Dynamics. Charlotte, North Carolina, USA. June 26–30, 2017. V07BT35A028. ASME. https://doi.org/10.1115/GT2017-64877
Download citation file:
22
Views
0
Citations
Related Proceedings Papers
Related Articles
On Nonlinear Forced Vibration of Shrouded Turbine Blades
J. Turbomach (January,2008)
Effects of Contact Interface Parameters on Vibration of Turbine Bladed Disks With Underplatform Dampers
J. Eng. Gas Turbines Power (March,2012)
Impulse Mistuning of Blades and Vanes
J. Eng. Gas Turbines Power (July,2017)
Related Chapters
Fundamentals of Structural Dynamics
Flow Induced Vibration of Power and Process Plant Components: A Practical Workbook
Fluidelastic Instability of Tube Bundles in Single-Phase Flow
Flow-Induced Vibration Handbook for Nuclear and Process Equipment
Engineering Design about Electro-Hydraulic Intelligent Control System of Multi Axle Vehicle Suspension
International Conference on Instrumentation, Measurement, Circuits and Systems (ICIMCS 2011)