Comprehensive cutting parameters, assist gas selection, common challenges, and best practices for mild steel, stainless steel, aluminum, brass, copper, and galvanized steel.

Mild steel is one of the most commonly processed materials in laser cutting due to its affordability, strength, and versatility. Fiber laser machines deliver high-speed and precise cutting for fabrication, automotive, electrical, and industrial applications.
Most commonly used — improves cutting speed through oxidation.
Suitable for thin sheets and cost-effective production.
Stainless steel requires high precision and oxidation-free cutting to maintain its corrosion resistance and appearance. Nitrogen assist gas is essential for achieving clean, shiny edges.
Preferred — prevents oxidation and produces smooth, shiny edges.

Aluminum is lightweight and widely used in automotive, aerospace, EV, and fabrication industries. However, its reflective nature and high heat conductivity make laser cutting more challenging than steel.
Aluminum reflects laser energy, especially at lower power levels.
Heat spreads rapidly through the material, affecting cut stability.
Improper parameters may create rough edges or slag.
Fiber lasers are highly effective for reflective materials like aluminum.
Nitrogen prevents oxidation and improves edge quality.
Accurate focus improves energy concentration.
Higher wattage helps stabilize cutting performance.
Prevents oxidation and improves edge quality on aluminum.

Brass and copper are highly reflective and conductive metals commonly used in electrical and decorative applications. Fiber laser machines are best suited for processing these materials.
Helps produce oxidation-free edges on brass and copper.
Fiber laser machines are best suited for brass and copper due to their wavelength advantage over highly reflective metals.
Use anti-reflective protection systems
Maintain clean optics
Use stable gas pressure
Optimize piercing parameters carefully

Galvanized steel contains a zinc coating that improves corrosion resistance but creates additional cutting considerations — particularly around fume management and edge quality.
The zinc coating evaporates during cutting and may create fumes or spatter.
Improper settings can damage coating quality.
Requires proper ventilation and extraction.
Preferred for cleaner and smoother edges.
Suitable for economical thin-sheet processing.

Laser cutting capability depends on laser power, material type, assist gas, beam quality, and machine design. Higher power machines process thicker materials at faster speeds.
Better beam quality improves cutting efficiency.
Proper gas pressure improves molten material removal.
Slower speeds may be required for thick materials.
Our application engineers help you select the correct power and configuration for your specific material and production requirements.