| name | fuselage-design |
| description | Fuselage design — semi-monocoque structure, pressurization loads, hoop and axial stress, shear flow, frame/stringer sizing, fatigue life, fail-safe design, damage tolerance, FAR 25.571, skin-stringer buckling, material selection (Al/CFRP). |
| metadata | {"priority":7,"promptSignals":{"phrases":["fuselage design","fuselage structure","pressurized fuselage","fuselage fatigue","skin stringer","semi-monocoque"],"minScore":3}} |
Fuselage Design — Complete Skill
Fuselage Structural Concepts
Semi-monocoque construction: thin-shell skin carries shear; stringers carry bending stress; frames (ring frames) maintain cross-section shape and introduce concentrated loads
Monocoque: thick skin carries all loads; heavier; not practical above small sizes
Geodesic: diagonal lattice structure (WWII Vickers Wellington); efficient; manufacturing intensive
Primary structural elements:
- Skin panels: thin Al alloy or CFRP; primary shear and pressure loads; minimum gauge ~1.0–1.6 mm (Al)
- Stringers (longerons): axial bending stiffeners; Z, I, J, hat sections; pitch 100–200 mm
- Frames (ring frames): circumferential stiffeners; maintain circularity under pressure and bending; pitch 500–600 mm
- Bulkheads: pressure/load introduction bulkheads (forward/aft pressure dome, wing attachment)
Pressurization Loads
Cabin pressure differential:
Δp = p_cabin - p_ambient [kPa or psi]
Typical: Δp_max = 59.3 kPa (8.6 psi) for wide-body (differential at sea level atmosphere on ground); actual maximum operating: 56 kPa (~8.1 psi)
Proof pressure: 1.33 × limit pressure; Ultimate: 2.0 × limit pressure (FAR 25.365)
Hoop stress (circumferential — thin-wall cylinder):
σ_hoop = Δp × R / t [MPa; R = mean radius; t = skin thickness]
For R = 2.0 m (wide-body), t = 2 mm, Δp = 56 kPa: σ_hoop = 56,000 × 2.0 / 0.002 = 56 MPa
Axial stress (longitudinal):
σ_axial = Δp × R / (2t) [half of hoop stress for closed cylinder]
σ_axial = 28 MPa for same example above
Total stress at flight limit:
σ_total = σ_hoop + σ_bending_axial [bending adds to axial on tension side; subtracts on compression]
Pressure cycle fatigue:
Each flight = one full pressurization cycle
Required life: 90,000 cycles (≈ 75,000 flight hours ÷ average 0.83 hr/flight for short haul)
Design life: 1.5× required life minimum per FAR 25.571
Bending and Shear in Fuselage
Fuselage as beam:
Weight of fuselage + passengers + cargo → bending moment distribution along length
Critical section: at wing attachment (maximum bending moment)
M_max ≈ n_z × W × L / 8 [simplification; n_z = load factor; W = fuselage weight; L = fuselage length]
Shear flow (skin panel under bending and torsion):
q = VQ / I + T / (2A_enclosed) [N/mm; V = shear force; Q = first moment of area; I = second moment; T = torque; A = enclosed area]
Open section shear center:
For circular fuselage with cutouts (windows): shear center shifts from centroid → torsion coupling
Closed section: shear center = centroid for symmetric cross-section
Skin-stringer panel bending stress:
σ_stringer = M × z_stringer / I_eff [MPa; z = distance from neutral axis; I_eff = effective area moment of inertia of all stringers]
Frame and Stringer Sizing
Stringer sizing for bending:
P_stringer = σ_allowable × A_stringer [maximum stringer load; A_stringer from effective width method]
Effective skin width (Marguerre): b_eff = 1.9 × t × √(E/σ_cr) where σ_cr = buckling stress
Frame sizing for pressure and radial load:
Ring frame: bending under Δp (radial pressure × frame pitch)
M_frame = Δp × L_frame × R² / 2 [simplified; L_frame = frame pitch]
σ_frame = M_frame / Z_frame ≤ σ_allow
Frame-skin attachment: rivets or fasteners; shear flow transferred from skin to frame
q_transfer = V_skin / L_frame [shear per unit length]
Skin-Stringer Buckling
Skin panel buckling (between stringers/frames):
σ_cr_skin = k_c × π² × E × (t/b)² / (12(1-ν²)) [k_c = buckling coefficient; b = panel width; function of aspect ratio and boundary conditions]
For long panels (a/b > 3): k_c ≈ 4.0 (SS edges); k_c ≈ 6.98 (clamped edges)
Postbuckling (effective width):
Skin may buckle at σ_cr < σ_stringer_load; redistributes load to stringers
Total load capacity = stringer load + effective skin load (σ_allow × b_eff × t)
b_eff = 0.5 × (t/t_stringer) × √(σ_cr/σ) × b [approximate]
Stringer crippling stress (Johnson-Euler column):
If stringer slenderness L/ρ > critical: Euler column buckling
σ_cr_column = π²E / (L/ρ)² [Euler]; for L/ρ < 100: use Johnson formula
Fatigue and Damage Tolerance (FAR 25.571)
Fail-safe requirement: damage to any single structural member must not cause total failure; remaining structure must carry limit load
Damage tolerance design: structure can sustain specific detectable cracks → inspection intervals maintain safety
Fuselage skin fatigue:
Hoop stress cycle: Δσ = 2 × σ_hoop_max = 2 × Δp × R / t [per flight]
Crack growth: da/dN = C × (ΔK)^m [Paris law; ΔK = Δσ × √(πa) × F]
Inspection interval:
N_inspect ≤ (N_2a_critical - N_2a_initial) / 2 [two-inspection-interval criterion]
a_critical: max crack not causing critical net section failure
Wide Spread Fatigue Damage (EWSFD):
Multiple cracks in adjacent frames → regulatory requirement to demonstrate structure free from WFD to design service goal (DSG) × 2.0
Damage tolerance hot spots:
Window corners (stress concentration K_t ≈ 3.5); door cutouts; stringer runouts; frame attachments
Shot peen or cold work window holes: extends initiation life 2–3×
Material Selection
Aluminum alloys:
2024-T3: fuselage skin (tension-dominated); K_IC = 34–40 MPa√m; damage tolerant
7075-T73: compression-dominated (wing upper skin); less crack-tolerant
7150-T7751: improved corrosion + K_IC vs. 7075; modern wide-body upper skin
2524-T3: 40% better damage tolerance than 2024; used on 777 fuselage
CFRP fuselage:
787 / A350: CFRP barrel sections; 20–25% weight saving vs. Al
IM7/8552 or T800H/3900-2B: intermediate modulus fiber; toughened epoxy matrix
Damage tolerance: BVID (barely visible impact damage) must not propagate in 150,000 flights
Inspection: thermographic imaging or tap test for CFRP delamination
Standards
| Standard | Scope |
|---|
| FAR 25.571 | Damage tolerance and fatigue evaluation of structure |
| FAR 25.365 | Pressurization loads |
| MIL-HDBK-5J (MMPDS) | Metallic materials properties for aerospace |
| CMH-17 (ACMAR) | Composite materials handbook — CFRP design |
| ASTM E1820 | Fracture toughness for damage tolerance |
| FAR 25.305 | Ultimate load strength requirements |
Output
Provide: fuselage diameter [m] and length [m], skin thickness [mm] at critical section, material (2024-T3 / CFRP), cabin Δp [kPa], hoop stress σ_hoop [MPa] and axial stress σ_axial [MPa], total combined stress at critical load case [MPa] vs. allowable, bending moment at wing attachment M [kN·m], skin buckling stress σ_cr [MPa] and margin, stringer section (dimensions, A_stringer [cm²], pitch [mm]), frame pitch [mm] and sizing, fatigue life (cycles to detectable crack at hot spot), inspection interval [cycles], damage tolerance compliance method (fail-safe/damage tolerance per FAR 25.571), and applicable standard (FAR 25.571, MMPDS, CMH-17).