| name | overhead-crane |
| description | Overhead crane design — CMAA 70/74 classification (service classes A–F), girder design (box/I-beam, deflection limits L/888), end truck, wheel load, fatigue (ASME B30.2 stress cycles), lifting mechanism (wire rope, drum, hook, load block), runway rail design, electrical classification (OSHA 1910.179), anti-sway control, ASME HST hoist standards, and seismic considerations. |
| metadata | {"priority":7,"promptSignals":{"phrases":["overhead crane","bridge crane","crane girder design","CMAA 70","crane fatigue","hoist design"],"minScore":3}} |
Overhead Crane Design — Complete Skill
Classification
CMAA Service Classes
CMAA Specification 70 (Electric Overhead Traveling Cranes):
Classifies cranes by loading spectrum and duty cycle
| Class | Description | Example | Cycles/Year |
|---|
| A | Standby / infrequent | Powerhouse; maintenance | < 500 |
| B | Light service | Light manufacturing; assembly | 500–2,500 |
| C | Moderate service | Machine shop; general manufacturing | 2,500–10,000 |
| D | Heavy service | Heavy manufacturing; steel mills | 10,000–25,000 |
| E | Severe service | Mill duty; continuous production | 25,000–100,000 |
| F | Continuous severe | Magnet service; ladle cranes | > 100,000 |
Load spectrum:
Class A: frequently lifts maximum load (full rated capacity); single load bin
Class D: Σ(n_i × (P_i/P_max)^3) loading spectrum; mixed loads; lower average
Impact factor φ (dynamic load factor):
φ = 1.0 + 0.1 × v_hoist / √(H) [CMAA; v_hoist = hoist speed m/s; H = lift height m]
Or simplified: φ = 1.15 (Class A/B); φ = 1.25 (Class C); φ = 1.33 (Class D–F)
Applied to hook load: P_dynamic = φ × P_rated
FEA Group Classification (ISO 4301-1/FEM 1.001):
M1–M8 mechanism groups; relates to classification factor m and spectrum factor k_Q
ISO alternative to CMAA; internationally preferred
Structural Design — Bridge Girder
Girder Types
Box girder:
Two webs + top/bottom flanges; high torsional stiffness; preferred for longer spans (> 15 m) and heavy cranes
Built-up welded plate construction; webs and flanges from plate
Single-girder (I-beam or fabricated):
Up to ~25 m span; lighter loads (Class A/B/C)
Trolley runs on bottom flange or on rail on top flange
Twin-girder:
Trolley rail on top of each girder; most common for heavy cranes
Girder Sizing
Deflection limit (CMAA 70):
Vertical live load deflection: ΔL ≤ L/888 [L = girder span]
Calculated for rated load + impact at center of span (simply supported)
Maximum live load deflection (simple beam with mid-span load P):
Δ = P × L³ / (48 × E × I) [I = moment of inertia of girder cross-section]
Required I: I_min = P × L³ / (48 × E × L/888) = P × L² × 888 / (48E) = 18.5 × P × L² / E
Example (P = 200 kN, L = 20 m, E = 200 GPa):
I_min = 200,000 × 20² × 888 / (48 × 200,000,000) = 200,000 × 400 × 888 / (9.6×10⁹) = 7.4×10⁻⁴ m⁴ = 74,000 cm⁴
Bending stress check (CMAA 70 Section 3):
f_b = M_max / S [S = section modulus]
Allowable: F_b = 0.60 × F_y (Class A/B); F_b = 0.55 × F_y (Class C/D); F_b = 0.50 × F_y (Class E/F)
F_y: typically 250 MPa (A36) or 345 MPa (A572 Gr. 50)
Maximum moment (trolley at mid-span):
M_max = (P_dynamic + w_girder × L/2) × L / 4 [w_girder = girder self-weight per unit length]
Shear check:
V_max at end truck ≈ (P_dynamic + W_trolley) + W_girder × L / 2
f_v = V_max / (A_web); allowable F_v = 0.40 × F_y
Web local buckling:
h/t_w ≤ 300 (compact web; no longitudinal stiffeners required; A36)
If h/t_w > 260: add transverse stiffeners (CMAA Table 3.2.6)
Crane Rail on Girder Top Flange
Rail selection:
Rail type from wheel load: A.S.C.E. 20–135 lb/yard rails
Wheel load P_wheel = P_dynamic / (N_wheels) [N_wheels = number of wheels per bridge end]
Rail contact stress (Hertz): σ_contact = 0.418 × √(P_wheel × E_rail / r_wheel × (1 + r_wheel/L_rail))
Rail clips and holddowns:
AIST Technical Report 6: rail fastener requirements; allow ±3 mm lateral float
Rail welding: typically not welded (thermal expansion); clips at 400–800 mm spacing
End Truck and Runway
End Truck Design
End truck:
Bridge end-beams + wheels + bearings; connects main girder to runway rail
Wheel load = (bridge + trolley + load) / number_of_runway_wheels
Runway wheel size: proportional to load; 200–800 mm diameter (AISI 1060 forged)
Runway alignment:
Span tolerance: ±3 mm for crane rail span (CMAA 70 Section 7)
Rail joint gap: < 3 mm; elevated joint heights < 1.5 mm (reduce wheel impact)
Buffer stops:
Energy absorber at runway ends; absorb kinetic energy of crane impact
E_impact = 0.5 × m_bridge × (v_travel)² × damping_factor
Spring or hydraulic buffers; CMAA 70 Section 4
Runway Rail and Support Structure
Column caps and runway girder:
Runway girder deflection limit: L/600 vertical; L/400 lateral (AISC/CMAA)
Runway rail splice: butt joint with backing bar weld; no elevated joint
Runway girder fatigue: AASHTO Category C at rail clip holes; Category B at welds
Hoist Mechanism
Wire Rope and Drum
Wire rope selection:
Rope classification: 6×19 (general purpose); 6×36 (flexibility); 8×19 (flexible; lower fatigue life)
Rope diameter: D_rope ≥ √(P_hook / (k × F_u_rope)) [k = safety factor = 5 minimum per ASME B30.2; F_u = rope breaking strength]
Rope breaking strength (approximate): F_u ≈ 32.4 × D_rope² (kN; D in mm; 6×19 IWRC improved plow steel)
Drum design:
Drum diameter: D_drum ≥ C₁ × D_rope [C₁ = drum/rope ratio; C₁ ≥ 18 for Class B; C₁ ≥ 30 for Class E/F per CMAA]
Number of drum wraps: N_wraps = H / (π × D_drum) + 2 dead wraps
Drum groove: spiral groove radius = D_rope/2 + 0.5 mm; helix angle < 4°
Fleet angle:
Angle between rope and drum axis: ≤ 2° (groove; CMAA recommendation)
Fleeting angle exceeds 2°: accelerated rope wear; install sheave compensator
Wire rope bending fatigue:
Rope fatigue life reduces with D/d ratio (D = sheave/drum diameter; d = rope diameter)
D/d < 16: very short life; D/d = 26: standard; D/d ≥ 40: high-cycle applications (Class E/F)
Rope end connection:
Spelter socket (wedge and swaged): efficiency 100% (full breaking strength)
Wire rope clip (U-bolt): efficiency 80%; requires 3 clips minimum
Hook (open swaged eye): efficiency 90%
Hook and Load Block
Hook rating:
Hook load = rated load × impact factor φ; hooks rated per load class
ASME B30.10: hook design, marking, inspection
Hook material: ASTM A668 Class F forging; proof load = 2× rated load
Hook throat opening: minimum per load rating table
Block and sheave:
Number of parts of rope: N_rope × F_pull = P_hook → N_rope = P_hook / F_pull (F_pull = hoist motor pull per rope)
Block efficiency: η = (1 - f^N_rope) / (N_rope × (1-f)) [f = sheave friction factor ≈ 0.02–0.05 per sheave]
Sheave diameter: same D/d requirement as drum
Hoist Motor and Brake
Motor power:
P_motor = P_hook × v_hoist / η_mechanical [η_mech = gear + rope efficiency = 0.85–0.95]
P_motor [kW] = (P_hook [N] × v_hoist [m/s]) / (1000 × η)
Motor class (NEMA or IEC):
IEC duty class S4 (periodic duty) or S3 (intermittent) for hoist motor
Service factor from CMAA classification: Class A → S.F. 1.0; Class F → S.F. 1.5
Brake:
Hoist brake: spring-set electromagnetic brake; holds load when de-energized (fail-safe)
Braking torque: T_brake ≥ 1.5 × rated motor torque (CMAA requirement)
OSHA 1910.179: brake holding capacity ≥ 125% of rated load
Fatigue Design
Stress Cycles and CMAA
Fatigue stress calculation:
Stress range ΔS = maximum stress - minimum stress (at connection or weld detail)
Number of cycles N: from crane service class × design life
CMAA 70 fatigue categories:
Class A/B cranes: rarely governs fatigue (low cycle count)
Class D/E/F: fatigue governs; use AISC fatigue categories or ASME B30 criteria
AISC fatigue categories at welds:
Category B: base metal at fillet-welded attachments; ΔF_n = 110 MPa (2×10⁶ cycles)
Category C: shear connectors; web stiffener welds; ΔF_n = 69 MPa (2×10⁶ cycles)
Category D: web copes; short attachment welds; ΔF_n = 48 MPa
Cumulative fatigue (Miner's rule):
Σ n_i / N_i ≤ 1.0 [n_i = actual cycles at ΔS_i; N_i = allowable cycles at ΔS_i]
OSHA and Safety Standards
OSHA 1910.179 (Overhead and Gantry Cranes)
Required safeguards:
Hoist limit switches: upper and lower travel limit
End stops at runway ends; bumpers on crane bridge and runway
Emergency stop accessible to operator
Load testing: 125% proof test before first use; records maintained
Inspection requirements:
Pre-shift inspection by operator (hooks, rope, controls, brakes)
Periodic inspection (monthly/annually based on service class)
Rope discard criteria: 6 broken wires in any rope lay; outside wire wear > 1/3 of original diameter; kinking
Rated load marking:
Visible from ground; rated capacity in tons on both sides of crane bridge (ASME B30.2-3.1.7)
No side-loading: crane designed for vertical lift only (no tipping)
ASME B30 Series
ASME B30.2: Overhead and Gantry Cranes (top-running bridge; single or multiple girder)
ASME B30.16: Overhead Underhung Cranes (monorail, bottom-running)
ASME B30.11: Monorails and Underhung Cranes
ASME HST-4/HST-6: Electric/manual chain hoists
Anti-Sway Control
Load Pendulum Dynamics
Natural frequency of hanging load:
f_n = (1/2π) × √(g/L) [L = rope length [m]; f_n in Hz]
At L = 5 m: f_n = 0.22 Hz; At L = 20 m: f_n = 0.11 Hz
Sway angle from crane acceleration:
θ_sway = arctan(a_crane / g) ≈ a_crane / g [for small angles; a_crane = bridge/trolley acceleration]
Anti-sway input shaping:
Zero-vibration (ZV) input shaping: command pulse sequence timed to cancel residual sway
ZV shaper: two impulses at t = 0 and t = T_n/2 with amplitudes A₁ = 1/(1+K); A₂ = K/(1+K)
K = e^(-ζ × π / √(1-ζ²)); T_n = 1/f_n
Results in zero sway at end of move if crane dynamics match model
Active sway control:
Feedback of rope angle (sensor: encoder or camera) → modulate trolley velocity → close loop
Available in modern PLCs: anti-sway function block
Standards and References
| Standard | Scope |
|---|
| CMAA Specification 70 | Electric overhead traveling cranes |
| CMAA Specification 74 | Top-running bridge cranes (metric) |
| ASME B30.2 | Overhead and gantry cranes |
| OSHA 29 CFR 1910.179 | Overhead cranes (general industry) |
| ASME HST-4/-6 | Hoist standards |
| AIST Technical Report 6 | Crane runway systems |
| ISO 4301-1 | Crane classification |
| FEM 1.001 | European crane design rules |
Output
Provide: crane type (single/double girder, top-running/underhung) and service class (A–F; CMAA 70), rated capacity [tons or kN] and span L [m], bridge girder (box or I-beam; cross-section: h/b/flange thickness/web thickness [mm]; I [cm⁴]; S [cm³]), deflection check: Δ_max [mm] vs. L/888 limit [mm], bending stress f_b [MPa] vs. allowable F_b [MPa], wheel load [kN] per runway wheel, dynamic impact factor φ, drum diameter [mm] and D/d ratio (rope), wire rope: diameter [mm], classification (6×19), safety factor (5.0 min), brake holding capacity [% of rated load], hoist motor power [kW], fatigue category (AISC) for critical weld detail and ΔS_n limit [MPa], compliance summary (OSHA 1910.179; ASME B30.2 limit switches; proof test 125%), and applicable standard (CMAA 70, ASME B30.2, OSHA 1910.179).