Processing

Laser, waterjet or plasma: which cutting process for which job

Laser gives the finest edge on thin and medium sheet and cuts it fastest. Waterjet cuts almost any material, thick or thin, with no heat-affected zone, slowly and at a higher cost per metre. Plasma is the economical route through thick carbon steel where the edge will be welded or machined. Thickness, material, edge requirement and quantity decide.

8 min readPublished 22 September 2026Updated 22 September 2026

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Red-coated lens on a laser cutting head, close up on the machine
Saudi Hidayath archive

How each process cuts

A laser focuses a beam onto a spot small enough to melt the metal beneath it, and an assist gas blows the melt out of the slot it leaves, the kerf. Nitrogen keeps a stainless or aluminium edge bright; oxygen cuts carbon steel faster and leaves an oxidised edge. The path comes straight from the CAD file, so the tenth part matches the first and there is no tooling to amortise, which is why most custom sheet metalwork starts at the laser cutting service. A tube laser rotates section under the same beam, so holes, slots, mitres and saddle copes come out in one pass.

Laser cutting head piercing a steel sheet, sparks flying
Saudi Hidayath archive

A waterjet cuts cold. A hairline stream of water at very high pressure carries a fine abrasive through the material, eroding rather than melting it. Nothing is heated, so there is no burnt edge, no distortion and no change to the structure of the metal. The same nozzle cuts stainless steel, aluminium, brass, copper, stone, glass and composites, which is what the waterjet cutting service is for.

Plasma is an electric arc. Gas forced through a narrow nozzle is ionised into a jet hot enough to melt any conductive metal, and the jet's own velocity blows the melt clear. It is the fastest of the three through thick carbon steel. Hidayath runs it on a rotating pipe axis for round pipe plasma cutting, and on a multi-axis arm for robotic plasma cutting of beams, channels, angles and tube.

Edge quality and the heat-affected zone

A laser edge on sheet is narrow, near vertical and usually needs no rework. As thickness rises the striations on the cut face coarsen and a bead of re-solidified metal, dross, can cling to the bottom edge. The heat-affected zone is narrow but it exists: on stainless it shows as a thin band of heat tint beside the cut, on hardenable carbon steel as a hardened skin.

A plasma edge is wider, carries a slight bevel from the shape of the arc, and leaves dross that is knocked off before the part moves on. On a beam cope or pipe saddle that will be welded none of that matters. On stainless pipe the discolouration is removed by pickling or polishing where the finish matters.

A waterjet edge is a uniform matte with a sand-blasted texture, no heat tint and no burr. On thick material the lower edge shows a slight taper or striation. There is no heat-affected zone at all, which is the whole argument for the process.

ISO 9013 classifies the quality of thermally cut edges, laser and plasma among them, by perpendicularity and surface roughness; a drawing can call up a class from it instead of the word clean.

The Saudi consequence is on stainless. A heat-tinted edge is an oxide over metal that has given up chromium to form it, and in the humid, chloride-bearing air of Jeddah or Dammam that band is where a 304 part starts to stain and pit. Exposed coastal stainless is cut cold, or its heat-cut edges are pickled and passivated before the part leaves the shop.

Which thickness and material suits each process

Thickness and material sort the three processes more than anything else, as engineering practice rather than any one machine's range.

Laser owns thin and medium sheet in stainless, aluminium and carbon steel. It is fastest there and its edge is best there. As plate thickens the cut slows, dross appears and nitrogen consumption on stainless climbs. Copper and brass throw the beam back and are cut thin or not at all, so C26000 brass and C11000 copper sheet are usually waterjet work.

Plasma cuts only what conducts, and its economics improve as carbon steel plate and section thicken. Its natural work is ASTM A36 and S355 plate, beams, channels and pipe wall, where speed and a weld-ready edge are what the fabricator needs.

Waterjet cuts anything that can be clamped flat, at thicknesses beyond where the thermal processes give a usable edge, and it is the only choice for non-metals and for metal that must not see heat. It is slower on everything, so on thin sheet in quantity it loses to laser.

The three processes compared on mechanism, heat, kerf, edge, materials and typical work. General engineering characteristics, not the range of any Hidayath machine; the thickness a given machine cuts in a given material is confirmed on enquiry.
ProcessCuts byHeat inputKerfEdgeMaterialsTypical use
LaserFocused beam melts the metal; assist gas clears the kerfLow; narrow heat-affected zone, heat tint on stainlessNarrowestFine, near vertical; dross as plate thickensStainless, aluminium, carbon steel; brass and copper only thinSheet parts, screens, brackets, signage; tube on a tube laser
WaterjetHigh-pressure water carrying abrasive erodes the materialNone; no heat-affected zone, no distortionFine, wider than laserUniform matte, no burr or tint; slight taper on thick materialAny material: metals, stone, glass, compositesThick plate, reflective and heat-sensitive metals, blanks for machining
PlasmaIonised gas arc melts conductive metal; jet velocity clears itHighest; widest heat-affected zone, drossWidestSlight bevel, dross to remove; weld-ready after de-slaggingConductive metals; carbon steel firstThick carbon steel plate, beams, sections and pipe

Kerf, tolerance and part geometry

The kerf is the material the process removes, and the program offsets the tool path by half of it so the part comes out to size. A narrow kerf decides how fine a feature can be cut and how tightly parts nest. The laser's is the narrowest, which is why a perforated pattern or mashrabiya screen is laser work; the perforated sheet open area calculator and the article on choosing hole size and pitch start from the same geometry.

Small holes tell the processes apart. A laser cuts a hole close to its own kerf width. A plasma arc struggles once the hole diameter approaches the plate thickness; it leaves a taper and an entry divot, which is why structural bolt holes are plasma-cut only where the specification allows and drilled where it does not. A waterjet cuts a small hole cleanly but pierces slowly, so a part with hundreds of holes costs more than its outline suggests.

Flatness follows heat. A long, narrow laser-cut part in thin stainless can bow as one edge heats before the other. Waterjet puts in no heat, so a large thin part stays flat, which is why decorative panels in mirror or PVD-coated sheet are cut face down under film on the waterjet when the face must arrive untouched, the same bar the V-grooving article sets for folding.

What drives the cost of each process

Cost per part is time on the machine, what the machine consumes, and what has to happen to the part afterwards.

Laser time is short on sheet and the consumables are gas and optics. Nitrogen is the one that counts: a bright stainless or aluminium edge is bought with a high flow of it, and the flow climbs with thickness. Nesting packs parts across the sheet to cut waste, and the sheet is the largest cost line on most stainless jobs; the sheet and plate weight calculator puts a figure on the blank before the enquiry goes in.

Waterjet time is long and the consumable is abrasive, garnet in the main, plus the power to hold the pressure. The slower a material cuts, the more abrasive each metre of edge consumes, so cost tracks thickness and hardness closely. Against that there is no afterwards: no dross, no heat tint, no pickling.

Plasma time is the shortest through thick carbon steel, and its consumables, electrodes and nozzles, are cheap against the metal removed. The afterwards is where its cost sits: de-slagging on every part, grinding or bevelling where the specification calls for a prepared edge, and on stainless the pickling or polishing that removes the heat tint.

Laser and waterjet carry no tooling, so the first part costs what the hundredth costs, and a short run is priced by the metre of cut and the pierce count rather than by a set-up charge.

Choosing between laser, waterjet and plasma

What is the material? Non-metals, copper, brass and heat-sensitive or hardened alloys go to the waterjet. Carbon steel section and pipe go to plasma. 304, 316L and 5052 aluminium sheet go to the laser unless thickness or the edge sends them elsewhere.

How thick is it? Sheet and light plate are laser work; thick plate is waterjet or plasma, split by the next question. The comparison of carbon steel and stainless steel for structural work makes the same point from the material side: carbon steel cuts by plasma without the surface concerns a thermal cut brings to stainless.

What happens to the edge? An edge that will be welded tolerates plasma. An edge that will be machined, polished, seen or exposed to coastal air wants a laser on sheet and a waterjet on plate. An edge that must not be hardened or softened wants the waterjet whatever the thickness.

How many, and how fine? Fine detail and small holes in quantity are laser work. A handful of thick, plain blanks is waterjet or plasma work, and the machine that is free.

Where Hidayath fits

Hidayath Metal Industries operates from three cities, ten locations and three factories in Saudi Arabia, with branches in Jeddah, Riyadh and Dammam; the group began in 1976. The service centre runs all three processes: flatbed laser cutting and tube laser cutting in stainless steel, aluminium and carbon steel; abrasive waterjet cutting of plate, brass, copper and non-metals; and plasma on a rotating pipe axis and on a robotic cell for structural sections. Material comes from Hidayath stock or is customer-supplied, subject to inspection on receipt, and the cut part can carry on to bending, V-grooving, welding, pickling, polishing or PVD on the same order.

Frequently asked

01Does laser cutting discolour stainless steel?
Yes, slightly, in a narrow band beside the cut. A nitrogen-assisted laser leaves a bright cut face, but the heat-affected zone beside it can carry a faint straw or blue tint, and an oxygen-assisted cut leaves an oxidised edge. Indoors it is usually polished off; on coastal work the edge is pickled and passivated, because the metal beneath the tint is chromium-poor and pits first.
02Can waterjet cut PVD-coated sheet without damaging the finish?
Yes. The cutting stream is confined to the kerf, so the coated face is not marked by the process itself, and the sheet is cut face down or under protective film so the abrasive slurry and the bed do not scuff it. No heat enters the sheet, so there is no tint or distortion at the edge, which is why waterjet is the choice for finished panels in mirror, hairline or PVD sheet.
03Why is plasma cutting cheaper?
Because it is fast through thick conductive metal and its consumables are cheap. Neither laser nor waterjet matches its speed through thick carbon steel, and electrodes and nozzles cost little against the metal removed. It is cheaper only when the edge can be used as cut; add grinding, bevelling or pickling for a finished edge and the saving shrinks.
04Which process for a 20 mm stainless plate?
Waterjet if the edge will be machined, polished or seen, or if the plate must stay flat and unaffected; plasma if the edge goes straight to a weld and the heat tint can be pickled off. A flatbed laser at that thickness is slow, heavy on nitrogen and prone to dross, so it is rarely the first choice. Whether a given machine cuts it at all is confirmed on enquiry against the grade and the drawing.
05Which is more accurate, laser or waterjet?
On sheet, laser: its kerf is the narrowest and its edge the most vertical. On thick plate the two are closer, because the laser edge coarsens with thickness while the waterjet edge stays uniform apart from a slight taper.

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