Key Action Mechanisms of Intentional Mistuning
Abstract
:1. Introduction
2. AMM Formulation
2.1. Limit of Large Intentional Mistuning
- (i)
- the coupling among the blades takes place through the elastic influence coefficients , , ,⋯;
- (ii)
- the intentional mistuning pattern has to be designed to remove the most relevant coupling; and
- (iii)
- the damping has to be large as compared to the remaining coupling among the blades of the same type.
3. Verification of AMM Results
3.1. Alternate Mistuning Pattern
3.2. Effect of Relative Size of Damping-Coupling
3.3. Importance of the Separation in Frequency of the Adjacent Blades
4. Beyond Alternate Mistuning Pattern
5. Main Results and Conclusions
- Blades are coupled through the elastic forces. The magnitude of this coupling is measured by the influence coefficients () associated with the frequency deviations of the modal family ();
- The effect of the intentional mistuning is to separate in frequency the different types of blades, reducing the coupling between them;
- In order to attenuate the effect of random mistuning, the intentional mistuning pattern should first separate in frequency those blades that show a high elastic coupling, and then, the damping of the modal family, , should be much larger than the remaining influence coefficients;
- The AMM analysis gives also a very simple expression for the limit value of the maximum vibration amplitude that the blades can experience when the intentional mistuning is effective in uncoupling them:(the tuned vibration amplitude).
- The analysis in [10] considered the case of a rotor with an even number of blades and coupling only with the adjacent blades (only one elastic influence coefficient ). In this situation, the alternate mistuning was always effective in reducing the amplification and the sensitivity to random mistuning, independently of the magnitude of the damping.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Castanier, M.P.; Pierre, C. Modeling and analysis of mistuned bladed disk status and emerging directions. J. Propuls. Power 2006, 22, 384–396. [Google Scholar] [CrossRef]
- Ewins, D.J.; Chan, Y.J. Vibration of rotating bladed discs: Mistuning, Coriolis, and robust design. In Proceedings of the IUTAM Symposium on Emerging Trends in Rotor Dynamics, New Delhi, India, 23–26 March 2011; Gupta, K., Ed.; Springer: Berlin/Heidelberg, Germany, 2011; pp. 163–175. [Google Scholar]
- Ewins, D.J. The effects of detuning upon the forced vibrations of bladed-disks. J. Sound Vib. 1969, 9, 65–79. [Google Scholar] [CrossRef]
- Castanier, M.; Pierre, C. Investigation of the combined effects of intentional and random mistuning on the forced response of bladed disks. In Proceedings of the Joint Propulsion Conferences, AIAA-98-3720. American Institute of Aeronautics and Astronautics, Cleveland, OH, USA, 13–15 July 1998. [Google Scholar]
- Mignolet, M.P.; Hu, W.; Jadic, I. On the Forced Response of Harmonically and Partially Mistuned Bladed Disks. Part I. J. Rotating Mach. 2000, 6, 29–41. [Google Scholar] [CrossRef] [Green Version]
- Mignolet, M.P.; Hu, W.; Jadic, I. On the Forced Response of Harmonically and Partially Mistuned Bladed Disks. Part II. J. Rotating Mach. 2000, 6, 43–56. [Google Scholar] [CrossRef] [Green Version]
- Castanier, M.P.; Pierre, C. Using intentional mistuning in the design of turbomachinery rotors. AIAA J. 2002, 40, 2077–2086. [Google Scholar] [CrossRef]
- Lim, S.; Castanier, M.P.; Pierre, C. Intentional mistuning design space reduction based on vibration energy flow in bladed disks. ASME 2004, 41715, 373–384. [Google Scholar]
- Han, Y.; Murthy, R.; Mignolet, M.P.; Lentz, J. Optimization of intentional mistuning patterns for the mitigation of the effects of random mistuning. J. Eng. Gas Turbines Power 2014, 136, 062505. [Google Scholar] [CrossRef]
- Campobasso, M.S.; Giles, M.B. Analysis of the effect of mistuning on turbomachinery aeroelasticity. In Proceedings of the 9th International Symposium on Unsteady Aerodynamics, Aeroacoustics and Aeroelasticity of Turbomachines (ISUAAAT 2000), Moscow, Russia, 4–8 September 2000; Ferrand, P., Ed.; Staphane Aubert (Presses Universitaires de Grenoble): Grenoble, France, 2000; pp. 885–896. [Google Scholar]
- Martel, C.; Corral, R. Asymptotic description of maximum mistuning amplification of bladed disk forced response. J. Eng. Gas Turbines Power 2009, 131, 022506. [Google Scholar] [CrossRef]
- Khemiri, O.; Martel, C.; Corral, R. Forced response of mistuned bladed disks: Asymptotic description and FEM validation. AIAA J. Propuls. Power 2013, 30, 397–406. [Google Scholar] [CrossRef] [Green Version]
- Martel, C.; Sánchez-Álvarez, J.J. Maximum mistuning amplification of the forced response vibration of turbomachinery rotors in the presence of aerodynamic damping. J. Sound Vib. 2017, 397, 108–122. [Google Scholar] [CrossRef] [Green Version]
- Feiner, D.M.; Griffin, J.H. A Fundamental Model of Mistuning for a Single Family of Modes. J. Turbomach. 2002, 124, 597–605. [Google Scholar] [CrossRef]
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Sánchez-Álvarez, J.J.; Martel, C. Key Action Mechanisms of Intentional Mistuning. Appl. Sci. 2021, 11, 5650. https://doi.org/10.3390/app11125650
Sánchez-Álvarez JJ, Martel C. Key Action Mechanisms of Intentional Mistuning. Applied Sciences. 2021; 11(12):5650. https://doi.org/10.3390/app11125650
Chicago/Turabian StyleSánchez-Álvarez, Jose Joaquin, and Carlos Martel. 2021. "Key Action Mechanisms of Intentional Mistuning" Applied Sciences 11, no. 12: 5650. https://doi.org/10.3390/app11125650
APA StyleSánchez-Álvarez, J. J., & Martel, C. (2021). Key Action Mechanisms of Intentional Mistuning. Applied Sciences, 11(12), 5650. https://doi.org/10.3390/app11125650