| name | plasma-welding |
| description | Plasma arc welding (PAW) — transferred vs. non-transferred arc, keyhole mode vs. melt-in mode, plasma torch geometry, orifice gas (argon), shielding gas, welding current, travel speed, energy input calculation, HAZ and microstructure, material compatibility (stainless steel, titanium, nickel superalloys), comparison to TIG/GTAW, plasma cutting parameters, and AWS D1.6 / D17.1 applications. |
| metadata | {"priority":7,"promptSignals":{"phrases":["plasma welding","plasma arc welding","PAW welding","keyhole welding","plasma cutting","plasma torch"],"minScore":3}} |
Plasma Arc Welding (PAW) — Complete Skill
Fundamentals
Plasma Arc Generation
Plasma definition:
Ionized gas at very high temperature; electrically conductive; T_plasma = 8,000–20,000 K (much higher than TIG arc ≈ 6,000 K)
Generated by constricting the arc through a water-cooled orifice (copper nozzle)
Two-arc configurations:
Transferred arc: arc established between electrode (W) and workpiece; plasma column traverses full gap; most common for welding and cutting; higher current density
Non-transferred arc: arc between electrode and nozzle; plasma jet exits toward workpiece; used for thermal spraying, non-conducting workpieces
Electrode:
Tungsten, 2% thoriated (EWTh-2) or 2% ceriated (EWCe-2); pointed tip; DC-EN (electrode negative) for steels/titanium
Electrode recessed inside nozzle by 2–6 mm → prevents contamination from spatter; key difference from TIG
Torch Components
Pilot arc: DC high-frequency spark ignition from electrode to nozzle body; initiates plasma; then transferred to workpiece
Orifice (constricting) gas (plasma gas): argon (most common); 0.3–8 L/min; constricts arc; increases temperature density
Shielding gas: argon, argon-hydrogen, argon-helium; 10–30 L/min; protects molten pool
Water cooling: mandatory for plasma nozzle; prevents melting of copper orifice
Orifice diameter: 2–5 mm; smaller = more constricted = higher energy density = keyhole capability
Plasma Modes
Melt-in (microplasma) mode:
Low current (0.5–50 A); gentle melting; similar to TIG but more focused beam
Precise, low distortion welds; thin sections < 3 mm; electronic components, thin sheet metal
Arc divergence: less than TIG → more stable at very low currents (down to 0.1 A — plasma "microplasma")
Keyhole mode:
High current (100–400 A); high energy density penetrates through workpiece
Full penetration in single pass; no edge preparation needed up to 6–8 mm thick
Gas pressure from plasma column creates keyhole cavity → full penetration weld
Suitable for: stainless steel, titanium, nickel alloys 3–8 mm thickness
Transition (between modes): 50–100 A range depending on material and geometry
Process Parameters
Current, Voltage, Travel Speed
Welding current I [A]:
Microplasma: 0.5–50 A
Keyhole: 100–300 A (stainless); 80–250 A (titanium, more sensitive)
Arc voltage V_arc: 15–35 V (varies with arc length and gas composition)
Power P = I × V_arc [kW]
Travel speed v [mm/min]:
Microplasma: 150–600 mm/min (slow; precision)
Keyhole: 300–1,200 mm/min (faster than TIG for same thickness)
Speed balance: too slow → excessive heat input → distortion; too fast → lack of fusion
Heat input:
HI = I × V × 60 / (1000 × v) [kJ/mm; I in A; V in V; v in mm/min]
PAW keyhole: HI = 0.5–1.5 kJ/mm (lower per unit depth than TIG for same penetration)
PAW melt-in: HI = 0.1–0.5 kJ/mm
Energy density:
PAW keyhole: 10⁵–10⁶ W/cm² (comparable to laser; much higher than TIG ≈ 10⁴ W/cm²)
Gas Parameters
Plasma gas flow rate:
Argon: 0.5–3 L/min (microplasma); 2–8 L/min (keyhole)
Higher flow → more constriction → higher temperature → deeper penetration
Argon + 5–15% H₂ (forming gas): increases arc temperature → higher productivity; not for hydrogen-sensitive materials
Shielding gas:
Argon: universal; most common; excellent for titanium (must maintain inert atmosphere)
Argon-helium (25–50% He): higher thermal conductivity → better sidewall fusion for aluminum and thick steel
Argon-hydrogen (5–15% H₂): extra energy; better speed; for austenitic stainless; avoid for ferritic, martensite, duplex
Trailing gas shield:
For titanium: additional trailing shield (argon) covers weld bead until cooled < 300°C (prevents oxidation)
Color test: silver/straw = acceptable; gold/blue/grey = marginal; purple/black = rejected contamination
Keyhole Parameters
Keyhole stability:
Orifice-to-workpiece distance (CTWD): 3–6 mm (tighter than TIG ≈ 5–15 mm)
Plasma gas balance: insufficient → collapse; excessive → blow-through
Back purge required: inert gas on root side to prevent oxidation at keyhole root
Detecting keyhole:
Current × orifice_diameter combination: keyhole requires I ≥ I_keyhole_threshold
I_keyhole ≈ 150 × t^0.5 (amperes; t = thickness in mm; approximate; depends on material)
Microstructure and Properties
Stainless Steel (Austenitic 304/316)
Single-pass keyhole weld (6 mm plate):
HAZ width: 2–4 mm (narrower than TIG multi-pass; less total heat input)
Weld microstructure: fully austenitic + delta ferrite (Ferrite Number 3–8 FN)
Sensitization risk: carbon steel grades; minimize HI or use L-grade (304L, 316L)
Properties:
Weld tensile strength ≥ 95% of base material
Corrosion resistance: maintained if FN > 3 (prevents hot cracking) and no sensitization
Hot cracking: prevented if FN ≥ 3; use ER308L or ER316L filler (if added)
Titanium (Ti-6Al-4V)
Plasma keyhole welding:
Very high reactivity to oxygen and nitrogen above 300°C → requires excellent shielding
Acceptable weld: silver/gold coloration (minor TiO₂ — acceptable) or silver (ideal)
HAZ structure: coarsened alpha phase; beta grain growth; potential embrittlement
Trailing shield:
Argon trailing torch or glove box enclosure; ≥ 99.998% Ar purity
Flowrate: ≥ 15–20 L/min trailing shield; maintain until T < 300°C under shield
Properties:
Tensile strength: ≥ 896 MPa (≥ 95% of base Ti-6Al-4V); if properly shielded
Notch sensitivity: clean Ti weld; avoid oxide contamination (causes significant reduction in fatigue life)
Nickel Superalloys (Inconel 625, 718)
PAW keyhole for thick Inconel:
HI must be controlled to avoid HAZ liquation cracking (grain boundary liquation at 1,250–1,290°C)
Travel speed: higher speed (> 600 mm/min) with lower HI preferred
Post-weld heat treatment: stress relieve per AMS 2770 or AMS 5664 spec
Filler (if used): ERNiCrMo-3 (Alloy 625) or ERNiCrMo-14 (low C for 718)
Carbon Steel / Low-Alloy Steel
Keyhole PAW:
Single pass up to 8 mm without beveling
HAZ: narrow; coarse-grained HAZ; martensite if high-C steel; preheat required for CE > 0.40
Preheat: same as TIG/SMAW — per AWS D1.1 or AWS D1.6 tables; CE formula
Comparison: PAW vs. TIG (GTAW)
| Parameter | PAW (Keyhole) | TIG/GTAW |
|---|
| Max single-pass depth | 8 mm | 3 mm |
| Travel speed | Higher (up to 2×) | Baseline |
| Heat input | Lower per depth | Higher per depth |
| HAZ width | Narrow | Wider |
| Equipment cost | Higher | Lower |
| Torch-to-work distance | Short (3–6 mm) | Larger tolerance |
| Wire filler needed | No (autogenous keyhole) | Often yes |
| Microplasma (< 1 A) | Yes | No (arc unstable) |
| Arc stability at low A | Excellent | Limited |
| Oxide cleaning | No (DCEN) | AC for aluminum |
Plasma Cutting
Parameters
Plasma cutting (different from PAW; higher current; non-transferred preferred for thick plate):
Current: 100–300 A (manual); 300–1,000 A (mechanized/CNC)
Gas: argon-H₂ or O₂ (for steel); N₂ or air (economical); Ar-H₂ for stainless and aluminum
Cut quality: ISO 9013 quality class 1–5 (squareness, roughness)
Cutting speed:
10 mm steel at 100 A: ~1,500 mm/min; 20 mm: ~600 mm/min; 50 mm: ~150 mm/min
Dross: caused by too-slow or too-fast speed; optimize per material and thickness
Standoff:
Manual: 3–6 mm; CNC: controlled by voltage-height (THC — torch height control)
Water injection plasma (HyDefinition, Hypertherm): very fine cut; ISO 9013 class 1–2
Standards and References
| Standard | Scope |
|---|
| AWS A5.18 | Carbon steel filler metals |
| AWS D1.6 | Structural welding — stainless steel |
| AWS D17.1 | Aerospace welding (PAW commonly used) |
| AMS 2680 | Plasma arc welding of aerospace parts |
| ISO 9013 | Thermal cutting — quality classes |
| ASME IX (QW) | Welding procedure qualification (including PAW) |
| MIL-STD-2219 | Fusion welding for aerospace applications |
Output
Provide: mode (microplasma/keyhole/melt-in), material and thickness [mm], current I [A], voltage V [V], travel speed [mm/min], heat input HI [kJ/mm], plasma gas (type; flow rate [L/min]), shielding gas (type; flow rate [L/min]), back-purge gas and flow [L/min], trailing shield for titanium (Yes/No; flow rate [L/min]), orifice diameter [mm], CTWD [mm], penetration achieved (full/partial; single pass), expected HAZ width [mm], FN (if stainless; verify FN ≥ 3), coloration acceptance criterion (if titanium), preheat required (CE > 0.40 → preheat [°C]), filler wire (if used: AWS classification), post-weld heat treatment (PWHT) required, visual acceptance per AWS D17.1 or ASME IX, and applicable standard (AMS 2680, AWS D17.1, ASME IX, ISO 9013 for plasma cutting).