NASA NTRS · 19910013021
Design and test of three active flutter suppression controllers
Abstract
Three flutter suppression control law design techniques are presented. Each uses multiple control surfaces and/or sensors. The first uses linear combinations of several accelerometer signals together with dynamic compensation to synthesize the modal rate of the critical mode for feedback to distributed control surfaces. The second uses traditional tools (pole/zero loci and Nyquist diagrams) to develop a good understanding of the flutter mechanism and produce a controller with minimal complexity and good robustness to plant uncertainty. The third starts with a minimum energy Linear Quadratic Gaussian controller, applies controller order reduction, and then modifies weight and noise covariance matrices to improve multi-variable robustness. The resulting designs were implemented digitally and tested subsonically on the Active Flexible Wing (AFW) wind tunnel model. Test results presented here include plant characteristics, maximum attained closed-loop dynamic pressure, and Root Mean Square control surface activity. A key result is that simultaneous symmetric and antisymmetric flutter suppression was achieved by the second control law, with a 24 percent increase in attainable dynamic pressure.
Keep this discovery
Explore connections, maps & timelines
Christhilf, David M., Waszak, Martin R., Adams, William M., Srinathkumar, S., Mukhopadhyay, Vivek. 1991-03-01. Design and test of three active flutter suppression controllers. https://ntrs.nasa.gov/citations/19910013021
Cite the original work for its findings. Save a collection to share your selection of sources.