| name | induction-hardening |
| description | Induction hardening process design — Lenz's law, skin depth, power density, frequency selection, case depth, quench parameters, distortion, residual stress, Jominy correlation, AMS 2304/2301, scanning vs. single-shot, tempering requirements, gear and shaft applications. |
| metadata | {"priority":7,"promptSignals":{"phrases":["induction hardening","induction heat treatment","induction case hardening","surface hardening induction","induction coil design","case depth induction"],"minScore":3}} |
Induction Hardening — Complete Skill
Physics of Induction Heating
Lenz's Law and Eddy Currents
Principle: alternating current in coil induces eddy currents in workpiece (Lenz's law); eddy currents generate heat by Joule heating: P = I²R
Induced EMF:
EMF = -N × dΦ/dt = -N × A × dB/dt [V; N = turns; Φ = flux; A = area; B = flux density]
Eddy current density:
J(x) = J₀ × e^(-x/δ) [A/m²; x = depth from surface; δ = skin depth]
Skin depth (penetration depth):
δ = 503 × √(ρ / (f × μ_r)) [mm; ρ = electrical resistivity [Ω·m]; f = frequency [Hz]; μ_r = relative magnetic permeability]
For steel (below Curie point ~768°C):
ρ ≈ 2×10⁻⁷ Ω·m; μ_r = 50–200 (ferromagnetic; depends on field strength and temperature)
δ ≈ 503 × √(2×10⁻⁷ / (f × 100)) = 0.225 / √f [mm; f in Hz; for μ_r = 100]
For steel (above Curie point — paramagnetic):
μ_r = 1; ρ ≈ 1.2×10⁻⁶ Ω·m
δ ≈ 503 × √(1.2×10⁻⁶ / f) = 0.55 / √f [mm; increases 2–4× when austenitic]
Frequency Selection
Case depth vs. frequency:
Effective case depth ≈ 2–3 × δ (at operating frequency)
| Frequency | Skin Depth (cold steel) | Typical Case Depth | Application |
|---|
| 60 Hz | 10–30 mm | 10–25 mm | Large shaft bore heating |
| 1 kHz | 2.3–7 mm | 5–15 mm | Large gear teeth, crankshafts |
| 10 kHz | 0.7–2 mm | 2–6 mm | Gears, shafts, bearings |
| 100 kHz | 0.2–0.7 mm | 0.5–2 mm | Small gears, cams, thin components |
| 400 kHz | 0.1–0.35 mm | 0.2–0.8 mm | Thin cases, small parts, valves |
Gear hardening frequency selection:
For through-hardening of tooth: f < 1 kHz
For case hardening of tooth flank only: f = 10–300 kHz
For contour hardening (tooth profile follows hardened zone): dual frequency (DF) process
DF process: 10–30 kHz + 150–400 kHz simultaneously → both tooth flank and root case
Power Density
Power density required to heat steel:
P_specific = ρ_steel × c_p × ΔT / t_heat [W/m³; ρ_steel = 7,800 kg/m³; c_p = 502 J/(kg·K); ΔT = temperature rise; t_heat = heating time]
For ΔT = 800°C in t = 2 s:
P_specific = 7,800 × 502 × 800 / 2 = 1.57 × 10⁹ W/m³ = 1.57 kW/cm³
Coil efficiency and coupling:
Power to workpiece: P_work = η_coupling × P_input [η_coupling = 0.6–0.85 for typical setups]
Gap between coil and workpiece: 2–5 mm typical; larger gap → lower η
Generator power sizing:
P_generator = (P_specific × V_heated) / η_coupling × η_generator [kW; V_heated = heated volume in m³]
Case Depth and Hardness
Effective Case Depth (ECD)
Definition: depth below surface at which hardness equals 50 HRC (or equivalent per AMS 2304)
AMS 2304: ECD = depth to 513 HV (HV is Vickers hardness; 513 HV ≈ 50 HRC)
AMS 2301: 50% martensite rule (microstructural criterion)
Case depth range by application:
Gears: ECD = 0.15–0.30 × module (SAE J1249); typical 0.5–2.5 mm
Shafts (bending fatigue): ECD ≥ 0.3 mm (minimum for fatigue benefit)
Crankshafts: ECD = 2–5 mm for journal surfaces
Camshaft lobes: ECD = 1–3 mm (moderate case, hard surface)
Bearing races: ECD = 0.5–1.5 mm
SAE J1249 case depth formula for gears:
ECD_min = 0.15 × m_n [module in mm; ECD in mm]
ECD_max = 0.30 × m_n
Hardness Profile
Surface hardness target:
Steel ≥ 0.4% C: 55–62 HRC surface hardness achievable
Minimum surface hardness for wear: 55 HRC (automotive gears)
Typical profile: 60 HRC surface → gradient → 45 HRC at ECD → core hardness 28–45 HRC
Jominy correlation (prior hardenability governs core):
Core is not quenched; core hardness = as-rolled or normalized hardness (typically HRC 25–35)
Shallow case: core must have adequate toughness; don't use high-hardenability steel unnecessarily
Process Parameters
Scanning vs. Single-Shot
Single-shot (encircling coil): entire zone heated simultaneously; one-shot quench
- Uniform case; simpler fixturing; better for small parts
- Risk: thermal mass limits case depth uniformity in complex shapes
Scanning: coil moves relative to workpiece at controlled rate
- Scanning rate: v_scan = 1–30 mm/s (controls case depth and power density)
- For shaft journals: rotate while scanning → uniform circumferential heating
- Spray quench integrated with coil movement
Simultaneous quench (single-shot): quench immediately after coil power off
Progressive quench (scanning): quench zone follows heating zone → prevents self-tempering
Quench Parameters
Quench media:
Water: fastest quench; high distortion risk; used for low-hardenability steel (1045)
Polymer quench (PAG, polyalkylene glycol): 5–20% concentration in water; reduced quench severity; lower distortion; preferred for gears and complex shapes
Oil quench: slower; least distortion; for highly hardenability steels (4340, 8620 carburized)
Air cool: insufficient for induction hardening depths > 2 mm (too slow)
Quench severity (Grossmann H factor):
H = 0.2 (still oil) → H = 1.0 (agitated water) → H = 2.0 (brine/caustic)
Polymer quench: H = 0.4–0.8 (depending on concentration and agitation)
Delay time (dwell before quench):
Typical: < 0.5 s (minimize conduction from surface to core); longer dwell → deeper total case
Tempering After Induction Hardening
Mandatory: always temper to relieve residual tensile stress at surface-core interface and reduce brittleness
Temper temperature: 150–220°C (low-temperature temper; preserves hardness ≥ 55 HRC)
AMS 2301: temper within 4 hours of quench; at 150–175°C × 1–2 hours minimum
Self-tempering: residual heat from core flows back to surface after quench; can substitute for furnace tempering for thick parts if calculated properly
Laser tempering (selective): use laser to re-temper specific zones; useful for crankpins post-induction
Distortion and Residual Stress
Residual Stress Profile
Compressive residual stress at surface: key benefit of induction hardening
Mechanism: martensite transformation expands volume at surface → core constrains → net compression at surface
Typical: σ_residual = -200 to -600 MPa (compressive) at surface → tension in core for equilibrium
Effect on fatigue:
Compressive surface residual stress raises effective mean stress toward compression → shifts Goodman line → fatigue life improves 2–5× vs. through-hardened
Torsional residual stress:
For scanning direction: residual stress has axial and circumferential components
Bending: surface compression increases fatigue limit 30–50% vs. un-hardened shaft
Distortion Sources
Thermal gradients: rapid heating/cooling → non-uniform thermal expansion → plastic deformation
Transformation strains: martensite (BCC, 4% larger volume than austenite FCC) → expansion only in case
Residual stress relaxation: if exceeds yield → shape change
Distortion control:
Fixturing: rigid holding during heating and quench; mandrel for bores
Quench timing: uniform quench onset; spray quench symmetry
Pre-stress relieving: normalize or anneal before induction if cold-worked material
Post-process grinding: typically 0.1–0.3 mm stock removal (profile and straightness)
Dimensional change prediction:
Bore shrinks 0.01–0.05% per mm diameter after case hardening (martensite expansion is outer case, core doesn't transform)
Shaft length: grows 0.01–0.03% per mm heated length; compensate by fixturing
Steel Selection for Induction Hardening
Required carbon content: ≥ 0.35% C for 50+ HRC surface (0.40–0.55% C optimal)
Hardenability: DI (ideal diameter) sized for required core properties; induction hardening doesn't require high hardenability for case (surface cools fast regardless)
Common steels:
1045 (C45): simple, low-cost; core HRC 25–35; adequate for shafts, farm equipment
4140 (42CrMo4): better core strength (HRC 30–40); gears, crankshafts
4340 (36CrNiMo4): highest core strength (HRC 40–55); high-performance applications
8620: carburizing grade — also induction hardenable; good toughness
1070–1080: high-carbon; leaf springs, wear parts; excellent surface hardness; brittle core
Pre-hardened feedstock: QT (quench and temper) to ~HRC 28–32 before induction → improves core properties; reduces distortion vs. normalized
Coil Design
Single-turn encircling coil: high efficiency for uniform round parts (bearings, journals)
Multi-turn coil: better coupling efficiency; for longer zones
Internal (ID) coil: for bore hardening; current direction reversal; flux concentrators needed
Profiled coil: shaped to gear tooth profile; hairpin coil for rack teeth
Flux concentrators:
Soft magnetic flux concentrator (Fluxtrol, Ferrotron): guides field to specific zone
Increases coupling efficiency by 20–40%; reduces stray heating of unintended areas
Coil material: copper tube (water-cooled); 1/4–1/2 inch OD; wall 1–2 mm; current density 30–80 A/mm² in coil
Quality Control
Hardness testing: Vickers (HV); Rockwell HRC; micro-Vickers cross-section traverse every 0.1 mm
Case depth measurement: cross-section metallographic etch; measure hardened zone to ECD definition
Magnetic Barkhausen Noise (MBN): non-destructive; sensitive to residual stress and case depth; used for 100% online QC
Crack detection: magnetic particle inspection (MPI) per ASTM E1444; fluorescent MT for induction-hardened surfaces
Standards
| Standard | Scope |
|---|
| AMS 2304 | Induction hardening — case depth (50 HRC criterion) |
| AMS 2301 | Heat treatment of steel — 50% martensite criterion |
| SAE J1249 | Gear case depth requirements |
| ASTM E18 | Rockwell hardness testing |
| ASTM E384 | Micro-Vickers hardness testing |
| ASTM E1444 | Magnetic particle inspection |
| ISO 15787 | Technical specifications for heat-treated ferrous parts |
Output
Provide: part type (shaft/gear/cam/bearing), material (grade and initial condition), target surface hardness [HRC] and ECD [mm], frequency selected [kHz] with skin depth δ [mm] justification, power density [kW/cm³] and generator power [kW], process type (single-shot/scanning, scanning rate [mm/s] if applicable), quench medium (polymer concentration [%] and H factor), temper temperature [°C] and time [min], distortion expected [mm/100mm] and mitigation, residual surface stress [MPa] (compressive), fatigue improvement factor vs. untreated, quality inspection method (MBN/MPI/cross-section hardness traverse), and applicable standard (AMS 2304, SAE J1249, ISO 15787).