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Aeroelasticity (made simple)
Terry A. Weisshaar Purdue University Armstrong Hall 3329 Purdue Aeroelasticity
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Purdue Aeroelasticity
Details Class in ARMS 1021 Purdue Aeroelasticity
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Grading - Tests and Homework
Homework is assigned on Fridays and is handed in at the beginning of each class the following Friday. Homework counts 30% of final grade score Two tests (two hours long) – each 35% of final grade score One test the week before Spring Break – covers static aeroelasticity Second exam during Finals Week – covers dynamic aeroelasticity AAE556 – Spring 2008
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Course materials Text distributed free
Reading assignments for each lecture Help me edit Notes, homework and supplemental material available on the AAE website Look under AAE556 Restricted folder Reading for Wednesday Chapter 1 Chapter 2, sections Purdue Aeroelasticity
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Purdue Aeroelasticity
What’s it all about? What is aeroelasticity? Why is it important? When is it important? Key features of aeroelastic response Purdue Aeroelasticity
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Aeroelasticity definition & effects
Aeroelasticity is a design activity concerned with interactions between aerodynamic forces and structural deformation, both static and dynamic, and the influence of these interactions on aircraft performance. Aerodynamic load and structural deflection interaction Static stability Control surface effectiveness Flutter and dynamic response Purdue Aeroelasticity
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Classical aeroelastic problems
Static aeroelasticity wing divergence , aero/structure stiffness load redistribution - drag, stresses change aileron reversal, lack of control lift ineffectiveness, vertical tail yaw control Flutter and dynamic response self-excited wing vibration/destruction self-excited panel vibration, LCO Purdue Aeroelasticity
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Venn diagram showing interactions
Aerodynamic forces L=qSCL Inertial Forces F=ma Elastic F=kx Vibrations Static aeroelasticity Dynamic stability Flutter Purdue Aeroelasticity
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Purdue Aeroelasticity
Flutter at a glance Purdue Aeroelasticity
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Early history- static aeroelasticity
Aerodynamic forces L=qSCL Elastic Forces F=kx Static aeroelasticity Purdue Aeroelasticity
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Aeroelasticity changes history and puts the hex on monoplanes
Langley Wright Bleriot Purdue Aeroelasticity
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Samuel Langley well financed, doomed to failure
Excessive wing twist caused by too much wing camber Before After “almost everything unexpected during the development process is bad” Purdue Aeroelasticity
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The Wright Stuff innovation in action
Wing morphing (warping) in action Wing warping Purdue Aeroelasticity
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Griffith Brewer weighs in on aeroelasticity – sort of …
Purdue Aeroelasticity
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Bleriot XI - monoplane wing warping England here we come!
Purdue Aeroelasticity
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Purdue Aeroelasticity
John B. Moissant Moissant in Bleriot airplane airplane Cross-Channel flight 1910 Moissant all-aluminum airplane 1910 The end of the trail-Dec. 31, Purdue Aeroelasticity
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Control effectiveness
Reduced ability, or loss of ability, to roll or turn quickly aileron reversal Purdue Aeroelasticity
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Swept wing load redistribution
1.0 Total lift is the same spanwise center of pressure moves inboard to reduce root bending moment Aerodynamic forces L=qSCL Elastic Forces F=kx Static aeroelasticity Purdue Aeroelasticity
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Purdue Aeroelasticity
Forward swept wings X-29 began as a Ph.D. dissertation topic in 1972 Purdue Aeroelasticity
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Aeroelastic tailoring
Intentional use of directional stiffness and load interaction to create beneficial performance Purdue Aeroelasticity
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Flutter and dynamic response
Aerodynamic forces L=qSCL Inertial Forces F=ma Elastic F=kx Vibrations Static aeroelasticity Dynamic stability Flutter Purdue Aeroelasticity
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Purdue Aeroelasticity
Heinkel flutter Purdue Aeroelasticity
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Purdue Aeroelasticity
Flutter in practice Purdue Aeroelasticity
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Purdue Aeroelasticity
Classical Flutter frequency airspeed wing bending and torsion aileron frequency & motion Purdue Aeroelasticity
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Purdue Aeroelasticity
Glider flutter Purdue Aeroelasticity
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Engines and under-wing stores
Purdue Aeroelasticity
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Supersonic and hypersonic flight
Purdue Aeroelasticity
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Panel flutter – going into space
Frequency merging – amplitude limited by nonlinear effects - creates noise and fatigue Supersonic flow Dead air Purdue Aeroelasticity
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Purdue Aeroelasticity
Body-freedom flutter Purdue Aeroelasticity
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Aeroelasticity regulations
Civil aviation - FAR 23 and FAR 25 Military - Navy MIL-A-8870C Air Force - AFGS-8722 Joint Services Guide Specification, Aircraft Structures Purdue Aeroelasticity
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Purdue Aeroelasticity
Military Specification Airplane strength and rigidity vibration, flutter and divergence Prevent flutter, divergence and other dynamic and static instabilities Control structural vibrations Prevent fatigue failure Prescribe structural dynamic analyses, laboratory and ground tests, flight tests required to demonstrate compliance with design requirements Purdue Aeroelasticity
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The future … new configurations, old and new problems
Purdue Aeroelasticity
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