| name | landing-gear-design |
| description | Aircraft landing gear design — tricycle vs. tailwheel, load cases (FAR/CS-25), oleo strut sizing, brake energy, shimmy, retraction kinematics, tire selection, weight estimation. |
| metadata | {"priority":7,"promptSignals":{"phrases":["landing gear design","landing gear load","oleo strut","nose gear","main gear","tire aircraft","landing gear retraction"],"minScore":3}} |
Aircraft Landing Gear Design — Complete Skill
Gear Configuration
Tricycle (Nose Wheel)
Most common: 2 main gear + 1 nose gear
CG location requirement: CG aft of main gear contact point (prevents nose-first tip)
Typical: CG at 10–20% ahead of main gear; nose gear 10–15% of aircraft weight
Advantages: ground stability (directional); pilot forward visibility; anti-ground-loop
Disadvantage: nose gear drag; weight; nose gear structural loads on rotation
Tailwheel (Conventional)
CG behind main gear → tendency to ground loop
Lighter; lower drag; for propeller clearance on tailwheel aircraft
Rarely used in modern aircraft (aerobatics, bush planes)
Load Cases (FAR/CS-25 Simplified)
Level landing (FAR 25.473):
Vertical load per main gear: V_mg = n_mg × W_max / 2
n_mg = design load factor: n = 2.0–3.0 (limit); n × 1.5 = ultimate
Spin-up and spring-back (landing):
Horizontal friction load: F_spin = μ × V_mg (μ = 0.8 braking; 0.5 static)
Dynamic amplification for oleo: apply dynamic factor C_d = 1.5–2.0 for spin-up
Three-point landing (tailwheel):
Main gear + tailwheel simultaneous; different load distribution
Braked roll:
Brake torque reaction; gear leg in bending + torsion
Turning:
Side loads from taxiway turns; steering moments
Limit side load (FAR 25.485): 0.8W (static); dynamic side load ground turn
Oleo Pneumatic Strut Design
Oleo strut = pneumatic spring + hydraulic damper in one unit
Strut sizing (load capacity):
F_max = P_air × A_piston + F_hydraulic
A_piston = F_max / (n × P_max_air)
P_max_air: typically 1000–3000 psi (7–21 MPa)
Energy absorption:
KE = ½ m_sink × V_sink² + W × S_stroke [J; S_stroke = oleo stroke length; W = weight on gear]
E_stroke = F_avg × S_stroke = η × P_max × A × S_stroke
η = load-deflection efficiency (0.50–0.65 for oleo)
Required S_stroke = KE / (η × P_max × A)
V_sink = 3.05 m/s (10 fps) → certification design sink rate
V_sink,reserve = 3.66 m/s (12 fps) → reserve energy case
Strut dimensions (typical main gear, medium aircraft, MTOW 50,000 kg):
A_piston ≈ 200–400 cm²; S_stroke = 250–500 mm; extension stroke ≈ 400–600 mm
Brake System (Energy)
Kinetic energy at max braking:
KE = ½ W V² / g (stopping from V_ref = V_LOF on rejected take-off)
V_LOF = lift-off speed (typically 1.1–1.2 V_stall)
Brake energy per wheel:
E_brake = KE / N_braked_wheels
Brake heating:
ΔT_rotor = E_brake / (m_rotor × c_p)
Must not exceed fusible plug melt temperature (≈ 180°C) or excessive brake heat criteria
Carbon brakes: c_p ≈ 720 J/kg·K; steel: c_p ≈ 460 J/kg·K
Brake assemblies: hydraulically actuated pucks on carbon-carbon rotors (modern commercial)
Anti-skid: maintains max μ_tire at all speeds
Shimmy (Nose Gear Stability)
Shimmy: self-excited lateral oscillation of nose gear (typically 10–30 Hz)
Cause: pneumatic trail unstable coupling between tire yaw and lateral forces
Prevention:
Shimmy damper: hydraulic or elastomeric; minimum damping coefficient c_min
Geometry: forward trail distance (stability if trail > 0)
Tire pressure: affects pneumatic trail and stability; proper inflation critical
Dynamic criterion: gear natural frequency must be decoupled from tire-road coupling frequency
Retraction Kinematics
Requirements:
All loads (limit) must be sustained in extended AND retracted positions (locked)
Retraction mechanism must work from 0 to limit load (partial retraction under load)
Manual extension: backup system; gravity or emergency extension
Four-bar linkage or trunnion pivot: typical for single-pivot retraction
Kinematics: check clear of fuselage/wing structure in all positions; door timing
Tire Selection
Tire loads: rated load per tire from gear load distribution
Ply rating: pressure × ply rating → strength limit
Bottoming clearance: deflected radius at maximum load must clear structure
Tire specifications (TSO-C62 / EUROCAE ED-79):
Size format: 40 × 14.0-14 (OD × width - rim diameter in inches)
Speed rating: must exceed V_max_ground + margin
Load rating: rated load > max dynamic load with factor of safety
Weight Estimation
Total gear weight ≈ 4–5% of MTOW (tricycle, commercial transport)
Main gear: ~60% of gear weight; nose gear: ~15%; structure/actuation: ~25%
Output
Provide: gear configuration, main and nose gear loads at limit [kN], oleo strut A_piston [cm²] and S_stroke [mm], brake energy per wheel [MJ], rotor temperature estimate [°C], tire size, retraction torque requirement [N·m], total gear weight estimate [kg].