← All Processes
Process 101 · Full Reference

STUD WELDING

A metal stud, a ceramic ferrule, and a fraction-of-a-second arc — the stud becomes a weld that needs no holes, no bolts, and no access behind the plate.

WHAT IS STUD WELDING?

Stud welding fuses a metal stud directly to a base plate with an arc. The gun lifts the stud a set distance, an arc melts its tip and a pool in the plate, and at the end of the timed cycle the stud plunges into the pool. A full weld, under a second.

A ceramic ferrule surrounds the stud base during the weld — it concentrates the arc, contains the molten metal, and shapes the fillet. It cracks off after each weld and is replaced per stud. The result is a fastener that is also a weld: no holes, no threads engaged, no access from behind.

0.2–1s arc time
1/4–1 in stud range
1-sided no backing

STARTING PARAMETERS

Mild steel drawn-arc studs on plate — typical hand-gun settings.

Stud dia Current Arc time Lift Ferrule
1/4 in 500–700 A 0.2 s 1/16 in #4
3/8 in 800–1000 A 0.25 s 1/16 in #6
1/2 in 1200–1500 A 0.3 s 3/32 in #8
5/8 in 1500–1800 A 0.35 s 3/32 in #10
3/4 in 1800–2200 A 0.4 s 1/8 in #12

DRAWN ARC vs CD STUD

Property Drawn Arc CD Stud
Base metalPlate, heavy sectionsThin sheet
Weld time0.2–1 s1–10 ms
Stud sizesUp to 1 inUp to 3/8 in
FerruleYes, per weldNot required
Burn-through riskHigh on thin gaugeNegligible
Typical jobsShear studs, pipe pinsNameplates, trim, wiring

WHY IT MATTERS

  • One-sided welding — nothing behind the plate, ever
  • No holes, no leak paths, no loosening fasteners
  • Hundreds of studs an hour with a hand gun
  • The fillet is stronger than the stud shaft

HOW STUD WORKS

The gun lifts, the arc burns, the stud plunges. Three movements, one weld — in under a second.

THE TWO PROCESSES

Stud welding splits into two processes — drawn arc for heavy plate, capacitor discharge for thin sheet. Same idea, different physics.

DRAWN ARC STUD WELDING

The heavy-duty process — a timed arc burns for up to a second while a ceramic ferrule contains the pool and shapes the fillet. Studs to 1 in on structural plate.

0.2–1 s weld time
to 1 in stud size
Ferrule per weld

CAPACITOR DISCHARGE (CD)

The thin-sheet process — a capacitor bank dumps a millisecond pulse into a pointed-tip stud. No ferrule, no burn-through, small studs on light gauge.

1–10 ms weld time
to 3/8 in stud size
None ferrule
01

POSITION THE STUD

Stud and ferrule loaded in the gun chuck, set square against a clean plate.

02

SET PARAMETERS

Current, arc time, and lift come from the stud manufacturer's chart.

03

LIFT & ARC

The gun lifts the stud a set distance — the arc draws and melts both tip and plate.

04

HEAT THE POOL

For the timed cycle, the arc melts a pool in the plate and the stud end.

05

PLUNGE

At the end of the cycle the stud drives into the pool — the weld is made.

06

HOLD & COOL

The gun holds the stud still while the fillet freezes solid.

07

BREAK THE FERRULE

The ceramic ferrule cracks off with a tap — a clean fillet underneath.

08

TEST & LOG

Hammer test, bend test, or weld logs close out the batch.

EQUIPMENT REQUIRED

Power Source

DC stud welding rectifier — delivers the timed, high-current pulse.

Browse power sources →

Stud Gun

Hand, fixed, or magazine guns — the lift and plunge are built into the gun.

Browse automation →

Studs & Ferrules

Studs matched to base metal, ceramic ferrules sized to the stud.

Browse consumables →

Controller

Sets current and arc time per stud — the schedule lives here.

Ground Clamp & Cable

Clean, tight ground path — a poor ground makes weak welds.

Clean-Up Gear

Grinder, wire brush, and slag hammer for the fillet around each stud.

PPE

Shade 10+ helmet, gloves, and fire watch — the arc is real and hot.

Browse PPE →

Test Tools

Hammer and bending tool — the daily check that welds are sound.

CONSUMABLES & WEAR ITEMS

PER-WELD ITEMS

Studs: bought to size, grade, and base-metal chemistry — never mix unmatched pairs.

Ceramic ferrules: one per weld, sized to the stud — they shape the fillet, then crack off.

Gas (option): argon shielding replaces the ferrule on some gas-shielded stud jobs.

GUN WEAR

Chucks & collets: grip the stud during lift and plunge — they wear with use.

Ground pads & cables: burn and fatigue — inspect before every shift.

Feet & locators: the parts that square the gun to the plate get knocked around.

No filler, no flux to remove — the ferrule IS the disposable, and the stud IS the fastener.

WELDING POSITIONS

Stud welding runs in every position — but gravity decides the pool, and the equipment follows.

DOWNWARD

The natural position — best pool control, highest quality, fastest production.

HORIZONTAL

Wall studs and shear connectors — the ferrule keeps the pool in place.

OVERHEAD

Deck and soffit studs with special guns — the pool holds in the ferrule cup.

MECHANIZED

Magazine and robot guns on plate lines — thousands of studs per shift.

JOINT PREPARATION

The arc is brief — everything it touches must be ready the first time.

CLEAN PLATE

Rust, paint, and oil burn into the weld — grind and degrease the stud footprint.

SQUARE CONTACT

The stud meets the plate square — a tilted stud makes a one-sided fillet.

GROUND PATH

A tight ground clamp on clean metal — resistance in the path shows up in the weld.

COATED STEEL

Galvanized and painted plate changes the arc — plan extra current and care.

THIN PLATE

Light gauges burn through with drawn arc — switch to CD or reduce the schedule.

STUD CONDITION

Clean, undamaged stud ends — the weld starts at the point, not the packaging.

WELDING TECHNIQUES

One process, three arc styles — the application picks the technique.

DRAWN ARC

The standard — timed arc, ferrule-contained pool, studs to 1 in on plate.

CAPACITOR DISCHARGE

Millisecond pulse for thin sheet — no ferrule, no burn-through, small studs.

SHORT ARC

A shorter, gentler arc for thinner base metals with drawn-arc equipment.

GAS SHIELDED

Argon replaces the ferrule — used where ferrule marks or debris are a problem.

AUTO-FEED

Magazine-loaded guns feed studs automatically — production rate without the reload.

TEST DISCIPLINE

Hammer-bend a stud from every batch — a stud that bends and doesn't break passes.

UNDERSTANDING YOUR PARAMETERS

Six numbers make every stud weld — all of them come from the stud chart first.

CURRENT

Amps through the arc — sized to the stud diameter. Too low: cold weld. Too high: spatter.

ARC TIME

Seconds the arc burns — controls pool size and penetration on the base plate.

LIFT

The arc gap the gun draws — too little sputters, too much blows the pool.

PLUNGE

Stud travel into the pool — the depth that buries the arc and expels the slag.

FERRULE SIZE

Shapes the fillet — a too-big ferrule gives a thin collar, too-small splashes.

VOLTAGE

Set by the power source for the arc — follow the machine and stud chart together.

ADVANTAGES & LIMITATIONS

ADVANTAGES

  • One-sided welding — no access behind the plate, ever
  • Complete weld in under a second — hundreds an hour
  • No holes, no leak paths, nothing to loosen
  • Fillet stronger than the stud shaft when done right
  • Clean, consistent, and logged per weld
  • Low operator skill curve — schedules do the work

LIMITATIONS

  • Stud must match the base metal chemistry
  • A fresh ceramic ferrule is consumed per weld
  • Coated and thin plates complicate the schedule
  • Stud size range tops out around 1 in
  • Removing a stud means grinding it off
  • Gravity still matters overhead — pool control is real

INDUSTRY APPLICATIONS

If something must be fixed to steel fast — from one side — a stud is usually the answer.

Structural Steel

Shear studs on beams — welded by the thousand per AWS D1.1.

Shipbuilding

Pins, hangers, and brackets in hull compartments — one side only.

Boiler Tubes

Insulation pins and tube supports on pressure vessels and boilers.

Automotive

Trim pins, brackets, and grounding studs on body panels.

Electrical

Grounding and bonding studs welded straight to steel enclosures.

HVAC & Insulation

Insulation pins and hanger studs on ductwork and tanks.

Rail

Cable supports and fittings on railcar and locomotive steel.

Bridges

Deck studs and connectors per AWS D1.5 bridge rules.

COMMON DEFECTS

Stud welds fail in a second — the defects are visible in the fillet within seconds too.

POOR PENETRATION

Appearance

A thin, raised collar — the pool never really bit the plate.

Causes

Current too low or arc time too short for the stud.

Prevention

Set the schedule from the stud chart and verify with a bend test.

POROSITY

Appearance

Pitted, spongy fillet — gas trapped in the fast-freezing weld.

Causes

Dirty plate or stud, or a damp ferrule.

Prevention

Clean both parts; store ferrules dry.

UNDERCUT

Appearance

A groove where the fillet meets the plate — a stress notch.

Causes

Arc too hot or the pool pulled away from the base.

Prevention

Lower current, check ferrule fit, keep the gun square.

MISALIGNED STUD

Appearance

The stud leans — the fillet is fat on one side, starved on the other.

Causes

Gun not square to the plate or a worn chuck.

Prevention

Square the gun, replace the chuck, check the locator feet.

INCOMPLETE FUSION

Appearance

A cold joint — the stud sits on the plate without fusing.

Causes

Lift too small, low current, or a contaminated stud end.

Prevention

Check lift and current; use fresh, clean studs.

SPATTER

Appearance

Metal beads around the weld — the pool threw material.

Causes

Current too high or the ferrule damaged.

Prevention

Dial the schedule down; fit a fresh ferrule.

BURN-THROUGH

Appearance

A hole or sag behind the weld on thin plate.

Causes

Drawn-arc heat on thin gauge metal.

Prevention

Switch to CD welding or a short-arc schedule.

BRITTLE WELD

Appearance

The stud snaps clean at the fillet — a hammer test catches it.

Causes

Wrong stud chemistry for the plate or cold weld.

Prevention

Match material grades; verify schedule with bend tests.

STUD SAFETY

A real arc, real current, and a shower of hot ceramic — stud welding packs standard hazards into fractions of a second.

ARC EYE

It's a real arc with real UV — shade 10+ helmet, every single weld.

BURNS

The pool and stud are red-hot — gloves on, hands off until cool.

HIGH CURRENT

Amps of DC at the gun — dry gloves, dry ground, sound cables.

FERRULE FRAGMENTS

Cracked ceramic flies hot — safety glasses under the helmet.

FIRE

Sparks and slag on construction sites — clear the area, hold a fire watch.

SHIELDING GAS

Argon in confined spaces displaces oxygen — vent before entering.

GROUND PATH

A poor ground turns the structure into the circuit — check the clamp daily.

LOCKOUT

Power lockout before chuck changes, gun service, or cable repair.

STANDARDS & SPECIFICATIONS

The documents behind stud weld quality, material, and qualification.

Standard Covers
AWS D1.1Structural steel — shear studs and their testing
AWS D1.5Bridge welding — deck stud rules
AWS C5.4Recommended practices for stud welding
ISO 14555Arc stud welding of metallic materials
ISO 13918Studs and ceramic ferrules for arc stud welding
ASME Section IXStud weld qualification for pressure equipment
ASTM A108Stud material — steel bars for studs
EN ISO 14555European adoption of the stud welding rules

FREQUENTLY ASKED QUESTIONS

The questions every shop asks before bringing stud welding onto the floor.

What is stud welding?
Stud welding fuses a metal stud directly to a base plate with an arc. The stud lifts, an arc melts its tip and a pool in the plate, then the stud plunges into the pool — a complete weld in under a second.
How fast is it?
A drawn-arc weld takes about 0.2–1 second of arc time. Hand guns place hundreds of studs an hour; magazine-fed guns do thousands per shift.
Does the plate need holes or backing?
No. Stud welding works from one side only — no holes, no nuts, no access behind the plate. That single fact is why construction and shipbuilding run on it.
What metals can be stud welded?
Mild steel to mild steel, stainless to stainless, aluminum to aluminum, and more — the stud must match the base metal chemistry, which is why studs are bought per application.
How strong is a stud weld?
Done right, the stud fails in the shaft, not the weld — the fillet is stronger than the stud. That is exactly what the standard hammer and bend test checks.
Is the ferrule necessary?
For drawn-arc welding, yes — the ferrule concentrates the arc, contains the pool, and shapes the fillet. It cracks off after every weld and is replaced per stud.
Can you stud weld thin sheet?
That's capacitor discharge (CD) welding — a millisecond pulse welds small studs to thin sheet without burn-through. Drawn arc suits heavier plate.
Is stud welding structural-grade?
Yes — shear studs on steel beams are welded per AWS D1.1 and tested by hammering and bending. It is a code-covered structural process, not a fastening trick.

RELATED PROCESSES

NEXT TOPICS

PUT IT TO WORK

VIDEO LIBRARY

Watch the process sections — stud positioning, ferrule fitting, and bend testing — on real metal.

Watch Videos

DOWNLOADABLE PDF GUIDE

A shop-floor cheat sheet with the schedule table, ferrule sizes, and test criteria.

Download from Library