| name | welding-metallurgy |
| description | Welding metallurgy — HAZ zones, grain growth, solidification, weld microstructure, martensite formation, carbon equivalent, PWHT, hydrogen cracking, preheat, interpass temperature. |
| metadata | {"priority":7,"promptSignals":{"phrases":["welding metallurgy","HAZ","heat affected zone","preheat","PWHT","carbon equivalent","martensite","hydrogen cracking","solidification","weld microstructure"],"minScore":3}} |
Welding Metallurgy — Complete Skill
Heat Input and Thermal Cycle
Heat Input
H = (η × V × I) / v [J/mm]
V = arc voltage [V], I = current [A], v = travel speed [mm/s]
η = process efficiency: SMAW 0.80, GMAW 0.85, GTAW 0.60, SAW 1.00, FCAW 0.85
Rosenthal solution (point source, moving, steady state):
T(r,t) - T₀ = [Q/(2πλ)] × exp(-v(r-x)/(2α)) × K₀(vr/(2α))
r = distance from weld centerline, α = thermal diffusivity, K₀ = modified Bessel function
Simplified (peak temperature for HAZ):
1/(T_pk - T₀) = (4.13 × ρ × c × t²/H) + 1/(T_m - T₀)
t = plate thickness [mm], ρ × c = volumetric heat capacity [J/mm³K]
Cooling rate at 540°C (8/5 cooling time T₈₅):
t₈₅ = (6700-5σ_h)/((540-T₀)²) × (1+(1/(540-T₀) - 1/(800-T₀))) × H (3D cooling, thick plate)
σ_h = 0 for single pass; higher for preheated plates
HAZ Zones
Microstructural Zones (Low Alloy Steel)
Fusion zone (weld metal): melted and resolidified; dendritic microstructure; composition = base + filler
Coarse-grained HAZ (CGHAZ): T > 1100°C; grain growth (ASTM 1-3 vs. base 8-10); lower toughness
Fine-grained HAZ (FGHAZ): 900-1100°C; refined grains; good toughness
Intercritical HAZ: 723-900°C (Ac₁-Ac₃); partial transformation; mixed martensite/ferrite
Subcritical HAZ: < 723°C; tempering or sensitization only
CGHAZ problem: grain coarsening → large prior austenite grains → brittle martensite on cooling → low CVN impact toughness
Mitigation: higher Mn/Ni content, lower heat input, TiN pinning (limits grain growth via TiN precipitates)
HAZ Width
CGHAZ width ≈ 1-3 mm (single pass, typical structural steel)
Wider with higher heat input; narrower with laser or electron beam welding
Measure by hardness traverse or metallographic etching (nital, picral)
Solidification and Weld Microstructure
Solidification Mode
Competitive epitaxial growth from fusion boundary: grains grow in direction of maximum thermal gradient (⊥ to fusion line → toward centerline)
Primary solidification: δ-ferrite (most C-Mn steels) or austenite (austenitic SS)
Columnar to equiaxed transition (CET):
High thermal gradient + slow solidification rate → columnar dendrites
Low thermal gradient (center of wide welds) → equiaxed grains
CET beneficial for low hot cracking susceptibility
Segregation
Dendritic solidification: solute rejected to interdendritic regions
P, S, C, Si segregate to last-to-solidify (centerline, dendrite boundaries)
Sulfur → FeS at grain boundaries → hot cracking (solidification cracking)
Control: S < 0.01%, Mn/S > 20 (MnS instead of FeS); low heat input
Microstructure of Low-Alloy Steel Weld Metal
Proeutectoid ferrite (grain boundary ferrite, GBF): at prior austenite grain boundaries
Widmanstätten ferrite: plates from boundary into interior
Acicular ferrite (AF): interlocking, high-angle plates; highest toughness
Martensite/bainite: if cooling too rapid or high carbon/alloy content
Acicular ferrite nucleation: on non-metallic inclusions (TiO, MnO, SiO₂) — key for filler wire selection (Ti deoxidation → AF)
Optimal: maximum acicular ferrite fraction → controlled inclusion composition + density + cooling rate
Martensite Formation and Hardness
Martensite Start Temperature
M_s ≈ 539 - 423C - 30.4Mn - 17.7Ni - 12.1Cr - 7.5Mo [°C] (Andrews equation)
M_f ≈ M_s - 215°C (martensite finish; below: untransformed austenite = retained)
Hardness of martensite: H_m ≈ 884C^0.302 [HV] (Vickers) — increases strongly with carbon
Maximum allowable HAZ hardness:
General: HV 350 (NACE MR0175 for sour service)
Structural: HV 400 (most codes)
Above → risk of hydrogen-induced cracking
Carbon Equivalent (Hardenability)
IIW: CE = C + Mn/6 + (Cr+Mo+V)/5 + (Ni+Cu)/15
CE < 0.40: no preheat needed (restraint-dependent)
CE 0.40-0.60: preheat 100-200°C
CE > 0.60: high preheat required
Pcm (Ito-Bessyo, for higher strength steels):
Pcm = C + Si/30 + Mn/20 + Cu/20 + Ni/60 + Cr/20 + Mo/15 + V/10 + 5B
Pcm ≤ 0.25: low cold cracking risk
Hydrogen-Induced Cracking (HIC / Cold Cracking)
Conditions for HIC
All three must be present:
- Susceptible microstructure (martensite, HV > 350)
- Hydrogen (from electrode moisture, surface contamination, base metal)
- Residual/applied tensile stress
Hydrogen source in welding: cellulosic electrodes (E6010: ~40 mL/100g), basic low-H (E7018: <4 mL/100g)
Classification: H4 (<4 mL/100g), H8 (<8 mL/100g), H16 (<16 mL/100g)
Prevention of HIC
Preheat temperature:
T_preheat from CE + plate thickness + hydrogen level + restraint
Rule: T_preheat ≈ 350 × √(Pcm - 0.08) + log(0.8H_D + 7.5δ) (Terada-Ikeda)
Practical: AWS D1.1 Table 4.2 (SMAW) or calculate from Pcm
Key actions:
- Use low-hydrogen electrodes (E7018) — bake before use (300°C × 1hr)
- Maintain preheat and interpass temperature
- Slow cooling (insulated blanket) to allow H to diffuse out
- PWHT if required (stress relief + H removal)
PWHT (Post-Weld Heat Treatment)
Objectives
- Reduce residual stresses (to 20-30% of yield)
- Temper HAZ martensite (restore toughness)
- Allow hydrogen to diffuse out (if not done before)
- Dimensional stability (stress relieving)
Temperature and Hold Time
Carbon steel (ASME BPVC): 595-650°C × 1 hr/25mm thickness (min 1 hr)
Low alloy (2.25Cr-1Mo, P22): 700-760°C × 2 hr/25mm
Austenitic SS: solution anneal 1050-1100°C (sensitization reversal) — not standard PWHT
Heating rate: ≤ 55°C/hr for thick sections (> 25mm)
Cooling rate: ≤ 55°C/hr above 315°C (prevent thermal shock)
Larson-Miller Parameter (Tempering Effectiveness)
LMP = T × (C + log₁₀(t)) × 10⁻³
T = temperature [R or K], t = time [hr], C = constant (≈ 20 for steels)
Equal LMP → equal metallurgical effect: higher T × shorter t equivalent to lower T × longer t
Sensitization of Austenitic Stainless Steel
Sensitization: Cr₂₃C₆ precipitates at grain boundaries (450-850°C range)
→ Cr-depleted zones at boundaries → susceptible to intergranular corrosion (IGC) and SCC
Prevention:
Low-C grades (304L, 316L: C < 0.03%): less sensitization tendency
Stabilized grades (347 with Nb, 321 with Ti): TiC or NbC preferred over Cr₂₃C₆
Solution anneal (1050°C, rapid quench): dissolves Cr carbides, restores Cr uniformity
Weld decay: HAZ at sensitization temperature range → IGC in HAZ, not weld metal
Double sensitization: if 321 is used but service temp passes through 450-850°C twice
Output
Provide: calculated CE (IIW) and Pcm, preheat temperature T_min [°C], maximum HAZ hardness prediction [HV], HAZ zone widths [mm], solidification mode (δ/γ), PWHT temperature and time [°C × hr], hydrogen level recommendation (H4/H8/H16), sensitization risk assessment for stainless.