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Reading a Weld: Undercut, Porosity, Slag and Overlap Each Name a Cause
Forge

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Forge

24. September 2026NO
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Reading a Weld: Undercut, Porosity, Slag and Overlap Each Name a Cause

A finished weld is a record of how it was made. Each of the standard defects has a distinct appearance and a short list of causes, so a bead can be read backwards to the setting that produced it — which is the fastest way to learn. This is the same move the casting rung makes for porosity and cold shuts, and for the same reason: naming the fault is only useful if the name points at what to change. Seven faults cover nearly everything that goes wrong in manual arc welding.
Intermediate
2 hours

Instructions

1

The faults you can see from above

**Undercut** — a groove melted into the parent plate along the toe of the weld, not filled by weld metal. It is a notch in the full section of the part, so it matters far more than it looks. Causes: current too high, arc too long, travel too fast, or a weave that did not pause at the edges. **Overlap** — weld metal spilled over the toe and lying on top of the unmelted plate, with a sharp crevice underneath. It looks like a generous weld and it is a built-in crack. Causes: current too low, travel too slow, wrong angle. **Excessive convexity** — a tall, rope-like bead that has piled up. Adds metal and weight, adds nothing to the throat, and puts a sharp angle at the toes. Causes: travel too slow, current too low. **Spatter** — beads of metal thrown clear and stuck to the plate. Cosmetic unless it is severe, but severe spatter means the arc is too long, the current too high, damp electrodes, or the wrong polarity. Undercut and overlap are opposite ends of the same axis, so a plate with both on the same bead usually means the hand speed is wandering, not the settings.

Materials for this step:

Mild Steel PlateMild Steel Plate2 pieces

Tools needed:

Magnifying LoupeMagnifying Loupe
Wire Brush SetWire Brush Set
Steel RulerSteel Ruler
2

Porosity: gas that could not get out in time

Porosity is round, smooth-walled holes in the weld metal — scattered, clustered, or strung in a line along the bead. Round and smooth is the signature, and it is what distinguishes gas from every other cavity. The gas comes from one of four places: **Contamination.** Oil, paint, rust or moisture on the joint, boiled to gas by the arc. The joint-preparation rung is the fix. **Damp electrodes.** The flux coating absorbs water from the air. Low-hydrogen rods in particular must be kept in a heated quiver; a damp low-hydrogen rod is worse than a dry general-purpose one. **Arc too long.** A long arc lets air reach the pool past the shielding, and nitrogen and oxygen come out of solution as it freezes. **Freezing too fast.** Cold plate, or too little heat, so the pool solidifies before the bubbles can rise out. Preheat helps. Porosity in a line along the middle of a bead usually means the electrode itself — damp, or the wrong type for the plate. Scattered porosity usually means the plate was dirty.

Materials for this step:

Mild Steel PlateMild Steel Plate2 pieces
Welding ElectrodeWelding Electrode1 pack

Tools needed:

Magnifying LoupeMagnifying Loupe
HacksawHacksaw
3

Slag inclusions and lack of fusion: the two that hide

**Slag inclusion.** Flux that solidified inside the weld instead of floating out on top. Unlike porosity it is irregular and angular, and it is usually found along the toes of a previous run or in the deep corner of a joint. Causes: slag not chipped off between passes, too slow a travel so the slag runs ahead of the pool and gets buried, a joint angle too narrow for the slag to escape, or the wrong electrode angle (a stick weld must be dragged, not pushed). **Lack of fusion.** The filler froze against a face that never melted. It shows on a broken or sectioned coupon as a flat, smooth, often bright area with no torn grain. Causes: current too low, travel too fast, arc aimed at the filler pool instead of the joint face, or slag or scale on the face. Both of these are invisible from the top of the bead, and both are the reason that a weld carrying load is proved on a coupon or by a proper inspection method, not by looking at it. A fault you can see is rarely the one that fails.

Materials for this step:

Mild Steel PlateMild Steel Plate2 pieces

Tools needed:

HacksawHacksaw
File SetFile Set
Magnifying LoupeMagnifying Loupe
HammerHammer
4

Cracks, and the two times they appear

**Hot cracks** form while the weld is still solidifying, along the centre of the bead or in the crater at the end of a run. The metal is a mush of crystals with the last liquid between them; pull it apart while it is in that state and it tears. Causes: a deep narrow bead whose shape concentrates the last liquid down the middle, too much restraint, sulphur or phosphorus in the steel, and — the commonest by far — an unfilled crater. **Cold cracks** appear hours or even a day after welding, usually in the heat affected zone rather than the weld itself. They need three things together: hydrogen from the arc atmosphere, a hard brittle microstructure from fast cooling, and tensile stress. Take away any one and they do not happen. That is why the answers are low-hydrogen electrodes kept dry, preheat to slow the cooling, and less restraint. A weld that passed inspection and cracked the next morning is the classic hydrogen crack, and it is why a critical job is inspected after a delay rather than straight off the bench.

Materials for this step:

Mild Steel PlateMild Steel Plate2 pieces
Welding ElectrodeWelding Electrode1 pack

Tools needed:

Magnifying LoupeMagnifying Loupe
Wire Brush SetWire Brush Set

Materials

2

Tools Required

6

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