In fibre laser cutting of carbon steel, oxygen is not simply a stream of gas that blows molten metal out of the kerf. It participates in the cutting process directly: oxygen reacts exothermically with the iron in the steel, releasing additional heat that supplements the laser energy and dramatically increases the cutting speed and thick-plate capability. Without this exothermic contribution, cutting thick carbon steel with a fibre laser becomes significantly slower and more energy-intensive.
The quality and consistency of this exothermic reaction depends directly on two things: the purity of the oxygen assist gas and the stability of the delivery pressure at the cutting head. This is why compressor selection for a laser cutting installation is not simply a matter of picking a machine that “produces oxygen at the right pressure” — it requires understanding how pressure delivery behaviour and gas purity affect cut quality at the machine level.
The oxygen assist gas pressure at the cutting head varies by application and material thickness. As a general guide:
| Material / Application | Typical Head Pressure | Compressor Outlet Needed |
|---|---|---|
| Thin carbon steel (1 – 3 mm) | 0.3 – 0.6 MPa | 0.6 – 0.8 MPa |
| Medium carbon steel (4 – 10 mm) | 0.5 – 0.8 MPa | 0.8 – 1.0 MPa |
| Thick carbon steel (10 – 25 mm) | 0.8 – 1.2 MPa | 1.2 – 1.5 MPa |
| Very thick / high-speed cutting (>25 mm) | 1.0 – 1.5 MPa | 1.5 – 1.6 MPa |
| General installation specification | Variable | 1.5 MPa (15 bar) standard |
The compressor outlet pressure must exceed the head pressure by enough to overcome distribution losses in the pipework between compressor and machine, and to allow for pressure regulator headroom at the machine. In practice, most laser cutting installations specify the compressor at 1.5 MPa (15 bar) to cover all thickness ranges and to provide sufficient regulator headroom. This is the standard specification for the ZW series machines we supply to this application.
⚠️ Always confirm the recommended assist gas pressure with your laser machine manufacturer. Different machine brands and cutting head designs have different requirements. The specification in their machine manual is the authoritative reference — not the general ranges above.
The exothermic oxygen cutting reaction is sensitive to gas purity. Lower oxygen purity means a weaker and less consistent exothermic contribution, which manifests as:
Industrial laser cutting applications typically require oxygen purity of 99.5% or better. Standard PSA oxygen, which produces 93 ± 3% oxygen, is generally not suitable for high-quality fibre laser cutting — PSA oxygen is more appropriate for glass furnace combustion or water treatment where purity tolerance is wider.
Sources of 99.5% oxygen for laser cutting installations:
The oxygen consumption per laser machine head depends on the cutting head design, nozzle diameter, and the operating pressure. A typical fibre laser cutting head at 1.0 MPa consumes approximately 0.3 to 0.8 m³/min of oxygen at inlet conditions, depending on nozzle size and cutting mode.
For a multi-head installation, the required compressor flow is:
Total flow = (flow per head × number of heads) + 20% contingency
Example: 8 cutting heads, each consuming 0.5 m³/min
In practice, not all heads will run simultaneously at full demand. If your production schedule results in a maximum simultaneous demand of 60% of total heads, you can size more conservatively — but we recommend discussing your duty cycle with us before reducing from the peak demand calculation.
Moisture in the oxygen assist gas stream causes two problems in laser cutting:
The solution is an adsorption dryer between the oxygen source and the booster compressor inlet, reducing the dew point to −40°C or below before the gas enters the compression train. Our booster compressors have inter-stage coolers with moisture separators that remove condensed water at each stage — but they do not reduce the vapour content below the inter-stage temperature dew point. An upstream adsorption dryer is required to achieve the low dew points that laser cutting demands.
Specify the adsorption dryer for the maximum expected flow at the maximum expected inlet temperature — a dryer undersized for summer ambient temperatures will not deliver the required dew point during hot weather.
The economic break-even point between cylinder supply and on-site liquid oxygen with a booster depends on several variables: oxygen consumption per month, cylinder rental costs, delivery frequency, and the upfront capital cost of the booster system.
As a rough guide, installations consuming more than approximately 500 to 800 Nm³/month of 99.5% oxygen typically find that on-site liquid oxygen with a booster compressor is more economical than cylinder delivery over a 3 to 5 year horizon. The specific calculation depends on local liquid oxygen pricing and delivery costs.
We do not supply liquid oxygen or PSA generators, but we supply the booster compressors and can advise on the interface specification between any source gas system and our compressors. For a cutting centre considering the transition from cylinder supply to on-site generation, contact us with your current consumption and we can provide a compressor specification and indicative capital cost for comparison.
For full specifications on the ZW series range for laser cutting applications, visit our medium-pressure oxygen booster compressor page.
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