| name | gearbox-design |
| description | Gearbox design — gear ratio selection, spur/helical/bevel/planetary layout, shaft design, bearing selection, housing design, lubrication system, power density, AGMA 6014/API 613, center distance, efficiency, thermal rating. |
| metadata | {"priority":7,"promptSignals":{"phrases":["gearbox design","gearbox layout","planetary gearbox","bevel gearbox","AGMA 6014","API 613 gearbox"],"minScore":3}} |
Gearbox Design — Complete Skill
Gear Ratio Selection and Layout
Single-Stage Reduction Limits
Spur/helical single stage: i = 1–6 (practical); up to 8 with special design
Bevel single stage: i = 1–5 (shaft intersection angle 90°)
Worm single stage: i = 5–80 (high ratio in one stage; low efficiency 50–90%)
Planetary single stage: i = 3–12 (compact; high power density)
Epicyclic double-ring: i up to 20
Multi-Stage Layout
Total ratio: i_total = i₁ × i₂ × i₃ (cascaded stages)
Optimal stage ratio distribution:
For minimum gearbox size: i₁ ≈ i₂ ≈ √i_total (2-stage); i₁ ≈ i₂ ≈ i₃ ≈ ∛i_total (3-stage)
High-speed stage → low torque → smaller gears; low-speed stage → high torque → larger gears
Center distance:
a = m × (z₁ + z₂) / 2 [mm; m = module; z = number of teeth]
Larger a → heavier but stronger; smaller → more compact but limited power
Planetary Gearbox
Kinematic relationship:
i = 1 + z_ring / z_sun [with carrier as output; sun as input; ring fixed]
i = z_ring / z_planet [with ring as output; carrier fixed] (not common)
Power split: sun → N_planets (typically 3–5); each planet carries T_total / N_planets
→ compact, high power density; shared load → lower tooth stress
Planet carrier design:
Floating planet: planet pins self-aligns; equal load sharing possible
Fixed carrier (integrated): rigid; manufacturing critical for equal planet loading
Load sharing factor (K_Hα): accounts for non-uniform load distribution → AGMA 2001
Double planetary (compound):
Two sets of planets meshing with two ring gears → very high ratio in small space; used in automotive automatic transmissions
Shaft Design for Gearboxes
Torque from power:
T = P / ω = P × 60 / (2π × N) [N·m; P in W; N in RPM]
Tangential force at pitch circle:
F_t = 2T / d_pitch [N; d_pitch = pitch diameter]
Radial force: F_r = F_t × tan(φ_t) [φ_t = transverse pressure angle; 20° typical → F_r = 0.364 F_t]
Axial force (helical): F_a = F_t × tan(β) [β = helix angle]
Shaft sizing (combined bending + torsion):
σ_eq = √(σ_b² + 3τ²) [von Mises; σ_b = 32M/(πd³); τ = 16T/(πd³)]
d_shaft ≥ [32/(π) × √(M² + T²) / σ_allow]^(1/3) [simplified; combined Tresca criterion]
Critical speed (first lateral):
f_c = π/(2L²) × √(EI/m_eff) [Hz; simplified for uniform shaft; L = span between bearings]
Design criterion: f_c > 1.3 × maximum operating speed (for subcritical) or f_c < 0.7 × min speed (supercritical)
Bearing Selection for Gearboxes
Bearing types and typical applications:
- Cylindrical roller (NU, NJ): radial loads; allows axial freedom; high-speed; input shaft
- Tapered roller: combined radial + axial; face-to-face pair for pinion shaft; automotive differentials
- Deep groove ball: moderate radial + axial; high-speed; low-torque positions
- Four-point contact ball: bi-directional axial + radial; limited space; planet pin bearings
- Spherical roller: misalignment tolerance; heavy radial; output shaft of large gearboxes
L10h bearing life:
L10h = 10⁶/(60n) × (C/P)^k [hours; C = dynamic load rating; P = equivalent dynamic load; k = 3 for ball, 10/3 for roller]
Target life: industrial: L10h ≥ 20,000 h; API 613: ≥ 100,000 h for critical machinery; automotive: ≥ 10 years / 200,000 km
Equivalent dynamic load:
P = X × F_r + Y × F_a [X, Y = bearing-specific factors from SKF/FAG catalog]
For tapered roller: P = 0.4F_r + 0.4F_a (typical at moderate axial ratio)
SKF a_SKF / a_ISO 281 modified rating:
L10h_modified = a₁ × a_SKF × L10h [a₁ = reliability factor; a_SKF = ISO life modification factor including lubrication]
L10h_modified used for design verification at required reliability and lubrication conditions
Lubrication System
Splash (bath) lubrication:
Suitable: peripheral velocity < 15 m/s; bottom gear dips in oil; simplest; automotive final drives
Oil level: 1/3 of lowest gear submerged (spur); ≤ 1 module depth (helical, bevel)
Heat removal: limited; requires external cooler if high duty cycle
Forced (pressure) lubrication:
Required: > 15 m/s pitch line velocity or continuous high duty; API 614 / API 613 requirements
Oil pump (gear or vane): pressure 1.5–5 bar; directed oil jets to gear mesh and bearings
Filter: 10–25 μm absolute; 5 μm for precision bearings
Oil cooler: shell-and-tube or plate; maintain T_oil ≤ 80°C supply; 120°C maximum
API 614 / API 613 oil system:
Dual filters: change filter without shutdown
Dual oil coolers: redundancy
Rundown tank: gravity oil supply for 1–2 min after emergency shutdown
Pressure gauges and temperature points: per API 614
Gear oil selection (API grades):
ISO VG 46–68: high-speed lightly loaded gears (turbines); low viscosity → EHD film; low friction
ISO VG 100–150: medium-speed industrial gearboxes
ISO VG 220–460: slow-speed high-load applications (worm gears, heavy industrial)
API GL-4: manual transmissions; moderate EP additives
API GL-5: rear axles; high EP additives (may damage yellow metals)
Minimum film thickness (EHD):
h_min = 3.63 × U^0.68 × G^0.49 × W^(-0.073) × R [Hamrock-Dowson; U = speed parameter; G = materials parameter; W = load parameter; R = radius]
Specific film thickness: Λ = h_min / √(Ra₁² + Ra₂²) > 2.0 → full film lubrication
Housing Design
Cast iron housing: most common; good vibration damping; FE analysis for deflection < 0.01 module at bearing seats
Ductile iron (GGG50): higher strength than gray iron; preferred for high-load housings
Aluminum housing: weight savings 60%; for automotive; lower stiffness → need thicker walls or ribs
Welded steel: custom heavy industrial; high strength; poor damping
Bearing bore tolerance:
Tolerance: H7 (housing bore) / j6 or k5 (shaft); provides light interference for rotating inner ring
For outer ring (rotating load): M7 interference in housing bore
Thermal expansion:
Housing CTE × ΔT × L_center_distance → center distance change → affects backlash
Steel gearbox: Δa = 12 × 10⁻⁶ × ΔT × a [μm; a in mm; ΔT in °C]
Gearbox Thermal Rating
Heat generated:
Q_generated = P_input × (1 - η) [W; η = gearbox efficiency]
Gearbox efficiency (approximate):
Per stage: spur = 0.98–0.99; helical = 0.98–0.99; bevel = 0.97–0.99; worm = 0.50–0.90
Bearings: 0.99–0.995 per stage; seals: 0.995 per seal
Thermal equilibrium:
Q_generated = Q_radiated + Q_forced_cooling
For splash-lubricated gearbox: Q_radiated = h_conv × A_housing × (T_oil - T_ambient)
h_conv ≈ 10–15 W/(m²·K) natural convection; 30–50 W/(m²·K) with fan
Maximum continuous power (thermally limited):
P_thermal = h_conv × A_housing × ΔT_max / (1 - η) [W; ΔT_max = maximum allowable oil temperature rise]
Standards
| Standard | Scope |
|---|
| AGMA 6014-A06 | Gear power rating for cylindrical shell and trunnion gearboxes |
| AGMA 2001-D04 | Fundamental rating (bending/contact) |
| API 613 | Special purpose gear units for petroleum industry |
| API 614 | Lubrication systems for petroleum industry |
| ISO 6336 | Load capacity calculation for spur/helical gears |
| AGMA 6009 | Specifications for enclosed helical gearboxes |
Output
Provide: gear arrangement (spur/helical/planetary/bevel), stage ratios and total ratio, module and number of teeth for each stage, center distance [mm], pitch line velocity [m/s], tangential force F_t [kN], shaft diameters [mm] and critical speed [RPM], bearing type and L10h life [hours], lubrication type (splash/forced), oil ISO VG grade, specific film thickness Λ, gearbox efficiency per stage and total, power loss Q [kW], thermal rating (max continuous P [kW] without overcooling), housing material, and applicable standard (AGMA 6014, API 613, ISO 6336).