| name | resistance-welding |
| description | Resistance welding — spot (RSW), seam, projection, flash butt, nugget formation, heat generation Q=I²Rt, electrode force, weld schedule, lobe curve, AWS C1.1, automotive applications. |
| metadata | {"priority":7,"promptSignals":{"phrases":["resistance welding","spot welding","RSW","resistance spot weld","nugget formation","electrode force","seam welding"],"minScore":3}} |
Resistance Welding — Complete Skill
Heat Generation Principle
Joule heating:
Q = I² × R × t [J]
I = welding current [A]; R = contact resistance [Ω]; t = weld time [s]
Heat localized at interface (highest resistance) → nugget forms
Total resistance:
R_total = R_electrode/workpiece + R_workpiece,1 + R_interface + R_workpiece,2 + R_electrode/workpiece
R_interface >> R_workpiece initially: surface asperities → concentrated heating
As temperature rises: R_interface drops → bulk material resistivity dominates (positive feedback if ρ increases with T)
Heating efficiency:
Only fraction Q at interface produces nugget; rest goes to electrodes and workpiece bulk
Efficiency η_thermal ≈ 40–80% (higher for short time, low force, high R material)
Spot Welding (RSW) — AWS C1.1
Process Variables
Weld schedule: 3-phase (squeeze → weld → hold)
- Squeeze time: ~10–30 cycles (60Hz AC); allows electrode to seat before current
- Weld time: 5–30 cycles; controls nugget growth
- Hold time: 5–15 cycles; nugget solidifies under pressure; prevents ejection
Welding current: typically 5,000–30,000 A (low voltage 2–10 V across secondary)
Electrode force F: typically 1–5 kN depending on material and thickness
Nugget Size
Minimum nugget diameter (AWS C1.1):
d_n_min = 4√t_sheet [mm; t_sheet in mm] for t < 3 mm
d_n_min = 3√t_sheet for t ≥ 3 mm
Typical nugget penetration: 20–80% of each sheet thickness (target 30–60%)
Weld shear strength (tensile-shear test):
F_ts = τ × π/4 × d_n² [N]
τ ≈ 0.6 × S_u,material (conservative for nugget)
Cross-tension strength: 30–60% of tensile-shear; peel mode
Lobe Curve (Process Window)
Current vs. weld time plot showing:
- Lower boundary: minimum current for nugget formation (cold weld)
- Upper boundary: maximum current before expulsion (spatter)
- Process window between boundaries → robust welding
Wide lobe: robust process; narrow lobe → tight process control required
Electrode condition, coating, fit-up affect lobe position and width
Electrode Materials and Wear
Copper alloys (RWMA Classes):
Class 1 (99.9% Cu): highest conductivity; low strength; for aluminum
Class 2 (CuCr or CuCrZr): best balance; most common for steel
Class 3 (CuBe or CuCo): high strength; for higher hardness materials
Electrode tip shapes:
Truncated cone (Type C or D): flat face; standard for steel
Dome (Type B): rounded; for non-flat workpieces
Offset (Type E, F, G): access to corners and flanges
Electrode wear: tip mushrooms → diameter increases → current density drops → cold welds
Dress cycle: every 200–500 welds for steel; every 50–100 for Zn-coated (galvanized) → electrode pickup of Zn destroys tip faster
Coated Steel (Galvanized/Aluminized)
Coating melts first → surface flooding → higher contact resistance variation
Solutions: higher current, longer squeeze, electrode conditioning, slotted electrodes
Seam Welding (RSEW)
Continuous weld from overlapping spot welds using rotating disk electrodes
Applications: fuel tanks, radiators, hermetic containers
Parameters: peripheral speed of electrode rolls + weld frequency → controls overlap
Weld speed (mm/s) = electrode speed × cos(pitch angle)
Overlap: 50–70% (hermetic seam); 20–40% (structural)
Projection Welding (RPW)
Embossed projections on one workpiece concentrate current and force
Projection size: ~40–60% of sheet thickness in height; diameter ≈ 2× height
Advantage: multiple simultaneous welds; better heat localization; longer electrode life
Applications: threaded fasteners, brackets, multiple weld points in one stroke
Flash Butt Welding (FBW)
Workpieces brought to contact → arc flashing → heating → parts upset together
Applications: rail joining, pipe butt welding, chain links, billets
Process:
- Pre-heat (low current, light contact)
- Flash (steady arcing; metal ejected as flash)
- Upset (high force, extinguish arc, forge joint)
Weld quality: flash removes oxides; upset creates forged nugget
Post-weld: remove flash bead (trim or grind)
Pulsation (Multi-Impulse) Welding
Multiple current pulses with cool time between → controls heat input
Used for: high-carbon steel, hot-dip galvanized, dissimilar thickness
Reduces spatter; allows higher peak current without burning through
Thermal Analysis (Simplified)
Nugget growth model:
r_n(t) ≈ r_electrode × (1 - exp(-t/τ_thermal))
τ_thermal = ρ_metal × c_p × V_nugget / Q_rate
Temperature at interface:
T_interface = T_ambient + Q_rate / (ρ c_p × A_electrode × δ_heat) [very rough]
Nugget forms when T_interface > T_solidus of material
RSW Weld Quality Inspection
Destructive:
Peel test: tear apart lap joint; nugget buttons out → pass (required button diameter)
Chisel test: wedge between sheets; peel to reveal nugget
Tensile-shear test: measure F_ts; compare to acceptance
Non-destructive:
Ultrasonic (phased array PAUT): image nugget; detect cold welds, holes, sticking
IR thermography: monitor surface T during welding → correlates to Q deposited
Process monitoring: current, voltage, force traces → machine learning for weld quality
ASTM B833: copper alloy electrodes for resistance welding
AWS C1.1M: recommended practices for resistance welding
AWS D8.1M: automotive steel sheet welding; nugget criteria for various thicknesses
Material-Specific Considerations
| Material | Weld Issue | Solution |
|---|
| AHSS (DP, TRIP) | Expulsion, interface fracture | Pulsation, upslope; quench by hold time |
| Aluminum | Low resistivity; oxide; sticking | High current (30–50 kA); dome electrode; conditioning |
| Stainless SS | Low conductivity; sensitization | Short weld time; cool electrodes |
| Coated steel | Zn/Al pickup; inconsistent R | Frequent electrode dressing; compound tip |
| Dissimilar thickness | Current path asymmetry | Offset electrodes; rebalanced force |
Output
Provide: weld current I [kA], weld time t [cycles at 60Hz], electrode force F [kN], nugget diameter d_n [mm] vs. AWS minimum, tensile-shear strength F_ts [kN], lobe curve boundaries (min/max current at design time), electrode type (RWMA class and tip shape), electrode dress frequency, weld schedule (squeeze/weld/hold/cool times), applicable standard (AWS C1.1, D8.1M for automotive).