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Process 101 · Full Reference

SPOT WELDING

Resistance spot welding squeezes two sheets between copper electrodes and fires thousands of amps through them — a nugget forms in fractions of a second. The fastest joining process in the shop.

WHAT IS SPOT WELDING?

Spot welding — resistance spot welding, or RSW — is a resistance process. Two overlapping sheets are clamped between copper electrodes, and a short pulse of high current flows through them. The joint itself is the resistance: it heats, melts, and freezes into a round nugget that fuses both sheets.

No filler metal, no shielding gas, no flame. The entire weld happens in a few cycles of mains power — which is why car plants, sheet-metal shops, and appliance lines run on it. The cost per weld is pennies, and robots place thousands a shift.

0.1–0.5s per weld
5√t nugget size rule
kA weld current

STARTING PARAMETERS

Mild steel sheet, RSW — the daily bread of every body shop.

Sheet Tip dia Force Current Time
0.6 mm 3/16 in 400 lb 7–9 kA 5–8 cyc
1.0 mm 3/16 in 600 lb 9–11 kA 7–10 cyc
1.6 mm 1/4 in 800 lb 10–12 kA 8–12 cyc
2.0 mm 1/4 in 1000 lb 11–13 kA 10–15 cyc
3.0 mm 5/16 in 1400 lb 13–16 kA 12–18 cyc

SPOT vs MIG TACKING

Property Spot / RSW MIG Tacking
Time per weld0.1–0.5 s2–5 s
ConsumablesCopper tips onlyWire + gas
Filler metalNoneWire
Heat & distortionLocalized, lowHigher, more
AccessBoth sidesOne side
AppearanceDimple marksBeads to grind

WHY IT MATTERS

  • Thousands of welds per shift — the fastest production joiner
  • No filler, no gas, no grinding — pennies per weld
  • Machine-set schedule means every spot is identical
  • Robot-friendly — the reason body shells are spot welded

HOW SPOT WORKS

Current flows where the electrodes squeeze. The joint's resistance does the heating — the electrodes stay cool and the sheet between them melts into a nugget.

Force (lbs) Force (lbs) Weld current (kA) Cooling water Lap joint Weld nugget Electrode (copper) Electrode (copper)
01

CLEAN THE METAL

Oil, paint, and scale change resistance — clean surfaces are the first weld schedule entry.

02

STACK THE SHEETS

Lap joint, tight together — gaps and coatings between the sheets ruin the contact.

03

SQUEEZE

Electrodes clamp at set force — contact pressure decides the weld before current flows.

04

FIRE CURRENT

Thousands of amps flow for a few cycles; resistance heat melts the joint into a nugget.

05

HOLD FORCE

Current stops, the squeeze stays — the nugget solidifies under pressure without cracks.

06

RELEASE & MOVE

Electrodes lift and the gun indexes to the next spot — spacing is part of the schedule.

07

DRESS THE TIPS

Copper tips mushroom with use — dress them back to shape on schedule.

08

CHECK THE NUGGET

Peel test or shear coupon — nugget size is the spec, verified on real joints.

EQUIPMENT REQUIRED

Power Source

Transformer or inverter supply — delivers the kA pulse with a programmable schedule.

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Weld Gun

C-type or X-type guns — the arms hold the electrodes on both sides of the joint.

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Electrodes & Caps

RWMA Class 2 copper tips — the wearable that defines the weld shape.

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Weld Controls

Timers and monitors set cycles, current, and force — and log every spot.

Force System

Air or servo cylinders hold electrode force steady through the pulse.

Tip Dresser

Manual or automatic cutter that restores tip face shape between runs.

Cooling

Water-cooled cables and electrode barrels — resistance welding runs on cooling.

PPE

Gloves, eye protection against sparks, and dry footing near high current.

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CONSUMABLES & WEAR ITEMS

ELECTRODE SYSTEM

Caps: replaceable copper-chromium caps — the wear item every spot weld touches.

Shanks & adapters: holders that carry the cap and carry cooling water to the tip.

Classes: RWMA Class 2 for steel — Class 1 trades hardness for conductivity on aluminum.

SUPPORT ITEMS

Tip dresser blades: carbide cutters sized to the cap — fresh faces keep welds consistent.

Cooling water: treated water at a set flow — overheated tips are worn tips.

Copper cable: flexible welding cable that carries the kA without overheating.

There is no filler, no gas, no wire — RSW consumables are almost entirely copper.

WELDING POSITIONS

Spot welding doesn't fight gravity the way arc welding does — the electrodes clamp the joint, so the gun defines the position.

BENCH STATION

A pedestal gun at waist height — the classic shop floorwork setup, pedal-operated.

PORTABLE GUN

Manual guns reach into assemblies — the spot gun comes to the joint.

ROBOTIC CELL

Servo guns on robots place thousands of spots per shift, logged per weld.

SEAM & PROJECTION

Rotating wheel electrodes make seams; projection dies weld formed features.

JOINT PREPARATION

RSW is a contact process — the joint's resistance is the heat source, and preparation sets it.

CLEAN SURFACES

Oil, paint, and scale burn into variable resistance — clean before you clamp.

TIGHT FIT-UP

Gaps between the sheets bleed force and scatter current — clamp the stack together.

THICKNESS MATCH

Schedules are written for sheet gauges — measure and match the thinnest member.

COATINGS

Galvanized and coated steel need hotter schedules and shorter tip life — plan for it.

TIP CONDITION

A dressed, centered tip face is a parameter — check it before the run starts.

EDGE DISTANCE

Spots near a sheet edge push metal out — keep edge distance per the schedule.

WELDING TECHNIQUES

The machine runs the schedule — the craft is writing it, maintaining it, and reading the results.

WELD SCHEDULES

The recipe of force, current, and time per material and thickness — start from published data.

MULTI-PULSE

Two or more short pulses with cool periods — tames aluminum and coated steels.

TIP DRESSING

Automatic dressing every few hundred welds keeps nuggets identical all shift long.

SEAM WELDING

Rotating wheel electrodes roll a continuous overlap of nuggets — tanks, drums, ducts.

PROJECTION WELDING

Formed bumps concentrate current at exact spots — brackets and nuts on sheet metal.

HOLD & COOL

Hold time after current stops lets the nugget quench under pressure — skip it and it cracks.

UNDERSTANDING YOUR PARAMETERS

Six numbers make every spot weld. Change one and the nugget moves.

CURRENT

The kA through the joint — the primary heat control. Too low: cold nugget. Too high: expulsion.

TIME

Weld time in cycles of mains power — 1 cycle is 16.7 ms at 60 Hz. Seconds of heat in fractions.

FORCE

Electrode squeeze in lbs — sets contact resistance and holds the nugget tight as it freezes.

TIP DIAMETER

The face that shapes the nugget — sized to thickness, dressed back as it mushrooms.

HOLD TIME

Force applied after the current stops — the nugget solidifies under pressure.

PITCH

Spacing between spots — too close shunts current through the last weld and starves the next.

ADVANTAGES & LIMITATIONS

ADVANTAGES

  • Weld times in fractions of a second — unmatched speed
  • No filler, no gas, no flux — almost no consumables
  • Low, localized heat — minimal distortion on sheet
  • Perfectly suited to robots and high-volume lines
  • Every weld logged and repeatable from the schedule
  • Cheap per weld — pennies, even with tooling

LIMITATIONS

  • Lap joints only — no butt, fillet, or corner welds
  • Access needed from both sides of the joint
  • Thick plate and copper alloys are out of reach
  • Visible dimples — cosmetically unfinished by nature
  • Electrode wear demands discipline — tips degrade welds
  • No sealing or pressure integrity at the joint

INDUSTRY APPLICATIONS

If it's sheet metal made in volume, it's probably spot welded somewhere.

Automotive

Body-in-white shells — thousands of robot spots per vehicle.

Sheet Metal Fab

Cabinets, brackets, and enclosures joined at production speed.

Appliances

Washer drums, dryer bodies, and fridge cases on automated lines.

Batteries

Busbars and cell tabs in nickel and aluminum — precise, low heat.

HVAC

Ducting and housings seam-welded in continuous runs.

Furniture

Office and shelving frames assembled spot by spot.

Aerospace

Skins and stiffeners in aluminum alloys — tightly controlled nuggets.

Rail

Interior and cladding panels on rolling stock.

COMMON DEFECTS

Most spot weld defects are invisible from the outside — the nugget hides inside the stack.

EXPULSION

Appearance

Molten metal sprayed out of the joint — a cratered dimple.

Causes

Current too high, force too low, or worn tips.

Prevention

Balance the schedule and dress the tips on time.

UNDERSIZED NUGGET

Appearance

A good-looking dimple with a small, weak nugget inside.

Causes

Low current, short time, or shunting from close spacing.

Prevention

Verify with peel tests; keep pitch per the schedule.

CRACKING

Appearance

Fine cracks in or around the nugget — often found at the edge.

Causes

Hold time too short or force released while the nugget is hot.

Prevention

Extend hold time — keep force on until the weld cools.

SURFACE BURN

Appearance

Darkened, rough, or discolored marks at the electrode contact.

Causes

Poor tip contact, dirty metal, or overheating the face.

Prevention

Dress tips, clean sheets, check cooling water.

STICKING ELECTRODES

Appearance

The tip welds itself to the sheet — tearing metal on release.

Causes

Excess heat at the electrode face or contaminated tips.

Prevention

Cool the face, dress tips, lower the current a notch.

INTERFACIAL FRACTURE

Appearance

The peel test pulls the nugget apart through its middle — flat fracture faces.

Causes

Undersized or brittle nugget — the classic hidden failure.

Prevention

Nugget must pull a button; schedule or material is wrong.

EDGE MELT-OUT

Appearance

The nugget breaks through the sheet edge — melted corner.

Causes

Spots placed too close to the edge of the sheet.

Prevention

Keep edge distance — generally 1.5× the tip diameter.

COPPER PICKUP

Appearance

Copper-colored deposits on the weld or brittle spots in the nugget.

Causes

Tip face overheated — copper transferred into the weld.

Prevention

Cool, dress, and keep the schedule inside the window.

SPOT SAFETY

Low voltage, enormous current — RSW hazards are pinch points, heat, and kilowatts of electricity.

HIGH CURRENT

Thousands of amps at the tips — a shorted circuit is a fire and a burn.

PINCH POINTS

Gun jaws clamp with hundreds of pounds — fingers clear of the tips, always.

BURNS

Tips and sheet run hot — gloves on, and don't touch right after a weld.

FLYING SPARKS

Expulsion throws molten metal — safety glasses and a clear path.

PRESSURE

Air and hydraulic systems hold energy — lock out pressure before servicing guns.

COOLING WATER

Water plus electricity is a shock hazard — dry hands, leak-checked hoses.

COPPER DUST

Tip dressing makes copper dust — extract it, don't breathe it.

LOCKOUT

Power and air lockout before tip changes and gun maintenance.

STANDARDS & SPECIFICATIONS

The documents behind spot weld quality, schedules, and acceptance.

Standard Covers
AWS C1.1Recommended practices for resistance welding of steel
AWS C1.5Resistance welding of aluminum
AWS D8.9Spot weld testing of automotive materials
RWMA Bulletin 16Resistance welding equipment standards and electrodes
ISO 14373Spot welding of uncoated and coated low-carbon steel
ISO 14324Destructive testing of resistance spot welds
ISO 17652Spot welding of coated sheet — quality requirements
ISO 16432Spot welding of aluminum and its alloys

FREQUENTLY ASKED QUESTIONS

The questions every shop asks before adding or tuning a spot welding station.

What is spot welding?
Resistance spot welding presses two sheets between copper electrodes and fires a short, high-current pulse through them. Joint resistance heats the metal and a nugget fuses the sheets in fractions of a second.
How strong is a spot weld?
A proper nugget shears at thousands of pounds — strength is decided by nugget size, which runs about 5√t of the thinnest sheet. Rows of spots multiply the strength.
What metals can be spot welded?
Low-carbon steel, stainless, aluminum, and coated steels — each with its own schedule. Copper and brass conduct heat away too well to form a nugget.
When should you not use it?
Sealed or load-bearing welds, thick plate, one-sided access, or cosmetic surfaces. Spot welds are lap joints with dimples — production tooling, not structural pipework.
How big should the nugget be?
Roughly 5 times the square root of the thinnest sheet thickness — about 5 mm on 1 mm sheet. Verified with peel tests, shear coupons, or the dimple against the schedule.
How often do electrodes need maintenance?
Copper tips mushroom and burn with use. Production cells dress tips every few hundred welds with an automatic dresser and replace caps on a set schedule.
Can you spot weld galvanized steel?
Yes — but zinc burns at weld temperature, raising current demand and shortening electrode life. Higher current, more force, and more frequent dressing are the standard answer.
Why is it used in car plants?
It is the cheapest, fastest way to join sheet metal — no filler, no gas, no grinding. Robots place thousands of logged spots per body shell.

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VIDEO LIBRARY

Watch the schedule sections — squeeze, current firing, and peel testing — on real metal.

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DOWNLOADABLE PDF GUIDE

A shop-floor cheat sheet with the schedule table, nugget size rule, and maintenance intervals.

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