Robust Modal Filtering and Control of the X-56A Model with Simulated Fiber Optic Sensor Failures

Peter M. Suh, Alexander Chin, Dimitri N. Mavris
2014 AIAA Atmospheric Flight Mechanics Conference   unpublished
A robust control law design methodology is presented to stabilize the X-56A model and command its wing shape. The X-56A was purposely designed to experience flutter modes in its flight envelope. The methodology introduces three phases: the controller design phase, the modal filter design phase, and the reference signal design phase. A mu-optimal controller is designed and made robust to speed and parameter variations. A conversion technique is presented for generating sensor strain modes from
more » ... nsor deformation mode shapes. The sensor modes are utilized for modal filtering and simulating fiber optic sensors for feedback to the controller. To generate appropriate virtual deformation reference signals, rigid-body corrections are introduced to the deformation mode shapes. After successful completion of the phases, virtual deformation control is demonstrated. The wing is deformed and it is shown that angle-ofattack changes occur which could potentially be used to an advantage. The X-56A program must demonstrate active flutter suppression. It is shown that the virtual deformation controller can achieve active flutter suppression on the X-56A simulation model.
doi:10.2514/6.2014-2053 fatcat:7i6w2ezykfgj7j5mxm4s3fjfuy