This paper presents the description and application of a new method for stability and forced response analyses of aerodynamically coupled blades considering the interaction of various mode families. The method, here referred as multimode least square, considers the unsteady forces due to the blade motion at different modes shape families and calculates the aerodynamic matrixes by means of a least square (L2) approximations. This approach permits the prediction of mode families’ interaction with capabilities of structural, aerodynamic and force mistuning. A projection technique is implemented in order to reduce the computational domain. Application of the method on tuned and structural mistuned forced response and stability analyses is presented on a highly loaded transonic compressor blade. When considering structural mistuning the forced response amplitude magnification is highly affected by the change in aerodynamic damping due to mistuning. Analyses of structural mistuning without aerodynamic coupling might result in over-estimated or under-estimated response when the source of damping is mainly aerodynamic. The frequency split due to mistuning can cause that mode families’ interact due to reducing their frequencies separation. The advantage of the present method is that the effect of mode family interaction on aerodynamic damping and forced response is captured not being restricted to single mode families.
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September 2012
Research Papers
A New Reduced Order Modeling for Stability and Forced Response Analysis of Aero-Coupled Blades Considering Various Mode Families
Damian M. Vogt,
Damian M. Vogt
Royal Institute of Technology
, Heat and Power Technology, S-100 44 Stockholm, Sweden
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Torsten H. Fransson,
Torsten H. Fransson
Royal Institute of Technology
, Heat and Power Technology, S-100 44 Stockholm, Sweden
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Hans Mårtensson
Hans Mårtensson
VOLVO Aero Corporation
, S-461 81 Trollhättan, Sweden
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Damian M. Vogt
Royal Institute of Technology
, Heat and Power Technology, S-100 44 Stockholm, Sweden
Torsten H. Fransson
Royal Institute of Technology
, Heat and Power Technology, S-100 44 Stockholm, Sweden
Hans Mårtensson
VOLVO Aero Corporation
, S-461 81 Trollhättan, Sweden
J. Turbomach. Sep 2012, 134(5): 051008 (10 pages)
Published Online: May 8, 2012
Article history
Received:
November 16, 2010
Revised:
January 23, 2011
Online:
May 8, 2012
Published:
May 8, 2012
Citation
Mayorca, M. A., Vogt, D. M., Fransson, T. H., and Mårtensson, H. (May 8, 2012). "A New Reduced Order Modeling for Stability and Forced Response Analysis of Aero-Coupled Blades Considering Various Mode Families." ASME. J. Turbomach. September 2012; 134(5): 051008. https://doi.org/10.1115/1.4003830
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