Chapter 13: Stall Flashcards
Stall Reason (2)
Excessive AoA
Adverse pressure gradient
Largest 3D Stall AoA: glider, fighter, commercial?
Why
- Fighter bc. low aspect ratio -> high downwash -> higher induced AoA and lower effective AoA -> retards stall.
- Commercial
- Glider
Tapered / Swept Wings Stall Characteristics (4)
No natural buffet (tip stalls first)
Wing drop (tip stalls first)
Cp moves forward (longitudinal instability)
Downwash on horizontal stabilizers (Cp moves inwards)
Reducing Tip Stalling (6)
Vortillon Wing fence (reduce spanwise flow) Saw tooth (LE, restrict spanwise flow) Washout Reduce camber Sharp LE (stall first)
Aileron Manoeuver Near Stall
Aileron increases local AoA -> stall wing tip
Instead of lifting wing, wing falls
= low speed aileron reversal
Stall, what affects it (9)
Mass Landing Gear Powered stall Thrust on wing CG position Sweepback Compressibility Load Factor Contaminant
Effect on Vs
Powered stall
Thrust on Wings
Thurst increases lift -> Vs decreases
Thurst energises airflow -> Vs decreases
Effect on Vs
Landing Gear
CG Forward
Mass Increase
LG Pitch down tendency -> more elevator downforce -> more lift -> Vs increases
CG forward -> more elevator downforce -> more lift -> Vs increases
Mass -> More lift -> Vs increases
Effect on Vs
Straight vs Sweeback Wing
Compressibility
Sweepback: lower Cl max, lower AoA stall, stall region not abrupt -> Vs increases
Compressibility: TAS > 300 kn
air loses energy, Vs increases
Effects on Vs
Load Factor
Contaminant Types (3) and Effects
LF increases -> Vs increases Vs = Vs1g * sqrt(LF)
Contaminants = ice, snow, water
increase mass, degrade wing performance -> Vs increases