| name | ship-structures |
| description | Ship structures — longitudinal strength (hull girder bending), section modulus, wave bending moment, local strength, classification society rules (DNV, ABS, LR), fatigue, corrosion allowance. |
| metadata | {"priority":7,"promptSignals":{"phrases":["ship structure","hull girder","wave bending moment","section modulus ship","longitudinal strength","DNV ship","ABS classification"],"minScore":3}} |
Ship Structures — Complete Skill
Hull Girder Concept
Ship hull acts as a beam subjected to wave-induced bending moments
Hogging: wave crest amidships → hull hogged → deck in tension, keel in compression
Sagging: wave trough amidships → hull sagged → deck in compression, keel in tension
Wave Bending Moment
IACS/ClassNK simplified formula:
M_sw = ±C₁ L² B (C_b + 0.7) × 10⁻³ [kN·m]
L = ship length [m]; B = beam [m]; C_b = block coefficient
C₁ = wave bending factor from IACS
Rule design moment:
M_total = M_still_water + M_wave
M_still_water: from loading manual (varies with cargo distribution)
M_wave: from class rules
Required Section Modulus
Minimum section modulus (IACS UR S7):
Z_min = M_design / σ_allow [cm³]
σ_allow: typically 175–235 MPa (depending on class and yield strength)
Actual section modulus:
Z = I_NA / y_max
I_NA = second moment of area about neutral axis
y_max = distance from NA to extreme fiber (deck or keel)
Section modulus calculation (Simpson's rule or direct):
Z = (Σ A_i y_i²) / y_max for longitudinal elements (deck, bottom, side shell, longitudinals)
Structural Scantlings (Classification Rules)
Plate thickness (local strength — lateral pressure):
t = c × s × √(P / σ_all) + t_corr
s = plate spacing [m]; P = design lateral pressure [kPa]; c = coefficient (boundary conditions)
t_corr = corrosion allowance: 1.5–3.5 mm (one side); 3.0–5.0 mm (both sides, tanks)
Frame and longitudinal section modulus:
Z_frame = M_frame × s_f / σ_all (from lateral pressure bending)
Structural Systems
Transverse framing: frames cross the beam; longitudinals run fore-aft
Simpler construction; less longitudinal strength; used in bulkers/tankers historically
Longitudinal framing: longitudinals run fore-aft; transverse web frames at intervals
Better longitudinal strength for large ships; preferred for VLCCs, large bulkers
Double hull: inner and outer bottom/side → contains spills (MARPOL); structural redundancy
Structural Members
Tank top / main deck: thick (typically 13–20 mm for VLCCs)
Shell plating: 12–22 mm for hull; varies with local pressure
Longitudinals: T-bar or bulb flat; spaced 600–900 mm
Web frames: intercostal plates + face plate; every 3–5 frame spacings
Floors: solid plate floors at double bottom intersections
Buckling Check
Longitudinal plates (column buckling):
Critical compressive stress: σ_cr = k × π² E / (12(1-ν²)) × (t/s)²
Must satisfy: σ_applied < σ_cr / safety factor
IACS and class rules define minimum plate requirements to avoid buckling
Fatigue in Ships (IACS/DNV)
Critical locations:
Hatch corners, longitudinal connections to web frames, hold frames (ore/bulk)
Hot spots at bracket toes, weld terminations
IACS UR S11 / DNV-RP-C203:
S-N curve based on structural detail (FAT class)
Long-term stress spectrum from North Atlantic scatter diagram
Miner's D ≤ 1.0 (cumulative damage criterion)
Hatch corner fatigue:
Stress concentration K_t = 3–5 at sharp corners → elliptical or circular cutout reduces K_t
Corrosion and Protection
Corrosion allowance: added to structural thickness (above rule minimum)
Typically: 0.5 mm/side (coated tanks); 1.5–2.5 mm/side (uncoated bilge)
Cathodic protection:
Sacrificial anodes (zinc or aluminum) in ballast tanks and sea chests
SACP (sacrificial anode cathodic protection) design:
I_required = i_d × A_submerged (i_d ≈ 5–20 mA/m² depending on coating efficiency)
Coatings:
IMO PSPC (Performance Standard for Protective Coatings): epoxy coating in ballast tanks
Minimum DFT: 320 μm total; 2-coat system; inspection during application
Output
Provide: M_design [kN·m], Z_required [cm³], Z_actual [cm³], plate thickness [mm] (deck/keel/shell), section modulus adequacy (%), corrosion allowance [mm], fatigue damage D at critical detail, CP anode mass [kg].