القطع بالليزر — الفئة
ليزر فايبر

ماكينات
القطع بالليزر

اختبر المستوى التالي من قطع المعادن مع أنظمة القطع بليزر الألياف عالية السرعة من RAXMEK. يوفر تصميمنا الهيكلي خفيف الوزن وتقنية الليزر المتقدمة سرعات قطع فائقة ودقة ميكرونية، مما يجعلها الخيار الأمثل لمعالجة الصاج الصناعي الحديث.

ISO 9001 Certified
CE Marked
OEM / ODM
FOB Shanghai
View Catalogue

Fiber Laser Cutting Technology

Our advanced CNC fiber laser cutters are engineered to process various metals—such as carbon steel, stainless steel, aluminum, and brass. We support multiple laser power configurations tailored to your specific thickness requirements.

Our Fiber Laser Processing Systems

Explore our high-performance fiber laser systems and automated deburring solutions optimized for industrial metal fabrication.

ماكينة قطع بالليزر ألياف بطاولة واحدة مفتوحة (1 - 6 كيلوواط)

ماكينة قطع بالليزر ألياف بطاولة واحدة مفتوحة (1 - 6 كيلوواط)

  • نوع الهيكل: تكوين طاولة واحدة بكابينة مفتوحة
  • سعة قدرة الليزر: 1000 واط – 6000 واط
  • خيار منطقة العمل: 1500x3000 مم / 2000x4000 مم / 2000x6000 مم
  • خيار مصدر الليزر: Raycus / IPG / Max (اختياري)
  • رأس قطع الليزر: Raytools / WSX (تركيز تلقائي)
  • نظام التحكم CNC: CypCut FSCUT2000 / FSCUT1000
  • دقة التموضع: ±0.03 مم
  • دقة إعادة التموضع: ±0.02 مم
  • التسارع الأقصى: 1.0G – 1.2G
Read More
ماكينة قطع بالليزر ألياف بطاولتين تبادليتين كابينة مغلقة (2 - 20 كيلوواط)

ماكينة قطع بالليزر ألياف بطاولتين تبادليتين كابينة مغلقة (2 - 20 كيلوواط)

  • نوع الهيكل: تكوين طاولة تبادلية مزدوجة مغلقة بالكامل
  • سعة قدرة الليزر: 2000 واط – 20000 واط (قدرة فائقة)
  • خيار منطقة العمل: 1500x3000 مم / 2000x4000 مم / 2000x6000 مم
  • وقت تبديل الطاولة: 15 – 20 ثانية (محرك سلسلي عالي السرعة)
  • خيار مصدر الليزر: Raycus / IPG / Max (اختياري)
  • رأس قطع الليزر: Raytools / Precitec (تركيز تلقائي مع تقنية المستشعرات)
  • نظام التحكم CNC: CypCut FSCUT8000 / FSCUT2000
  • التسارع الأقصى: 1.2G – 1.5G
  • السرعة القصوى للتموضع: 100 م/دقيقة – 120 م/دقيقة
Read More

Laser vs. Alternative Cutting Technologies

AttributeFiber LaserCO₂ LaserPlasma CutterWaterjetOxy-fuelMechanical
Cutting MechanismHigh-power fiber optic laser beam (solid-state)Gas laser (infrared CO₂ tube)High-temperature plasma arcHigh-pressure water + abrasive (garnet) or pure waterjetChemical combustion (oxygen + fuel) to melt/oxidize metalPhysical cutting by blade, router, shear, or stamping/punch
Best MaterialsFerrous & non-ferrous metals (steel, stainless, aluminium, copper)Metals and many organics (wood, acrylic, plastics). Less efficient on highly reflective metals vs fiberElectrically conductive metals (mild steel, stainless)Metals, stone, glass, composites, plastics — virtually any materialCarbon (mild) steel and other ferrous materials (not for most non-metals)Wood, plastics, composites, thin sheet metals (shear/punch for metals)
Typical Thickness Range (Practical)Thin → medium; commonly 0.5–20 mm (depends on power); high-power units extend higherThin → medium; often used up to ~12–25 mm for some metals (depends on power)Thin → very thick for mild steel; effective from ~1 mm to 50+ mm depending on systemVery thin → very thick (0.1 mm to 200+ mm depending on pump & abrasive)Medium → very thick carbon steel; typically 5–300+ mmThin to medium (depends on machine): routers/punches for sheets up to ~6–20 mm; shears for thin plate
Cutting SpeedVery fast on thin/medium metals (high productivity)Fast, but often slower than fiber for thin reflective metalsVery fast on thick mild steel (higher feed at thickness)Slow (material removal via erosion)Slow to moderate (depends on thickness)Fast for simple straight cuts (shear); variable for routing
Edge QualityExcellent — narrow kerf, smooth, minimal dross; often cut-readyGood — smooth but slightly wider kerf than fiber; may require finishing on some materialsRougher edge, dross present — usually needs finishingExcellent — very smooth, no thermal HAZ; likely cut-readyRough with significant HAZ and slag; requires secondary cleaningDepends — shear/punch leaves burrs; router can produce smooth finish on non-metals
Kerf WidthNarrow (0.1–0.5 mm)Slightly widerWider (2–6 mm depending on torch & gap)Narrow (0.5–2 mm)Wide (several mm)Varies (blade width, cutter type)
Heat Affected Zone (HAZ)SmallModerateLargeNone (cold cutting)Large (oxidation & heat)None for physical cutting methods; variable otherwise
Precision / ToleranceVery high (±0.05–0.2 mm typical)High (but generally slightly less precise than fiber on reflective metals)Moderate to low (±0.5 mm or more)High (±0.1–0.3 mm)Low precision on fine featuresHigh for CNC routing/punching (depends on tooling)
ConsumablesLow (assist gas — O₂/N₂ — and optics cleaning)Moderate (mirrors, lenses, gas)High (electrodes, nozzles)High (abrasive — garnet; pump maintenance)Fuel gases and oxygen; minimal wear partsTooling (blades, bits, punches) replacements
Maintenance EffortRelatively low (solid-state)Higher (tube maintenance, optics alignment)Moderate (torch consumables)Moderate–high (pump, abrasive handling)Low–moderate (gas systems, torch maintenance)Varies — routine tool change & alignment
Energy EfficiencyHigh (more electrical efficiency than CO₂)Lower efficiency (CO₂ tubes use more power)ModerateLow (high hydraulic power)Low–moderateVariable
Initial CostMedium → high (depending on power & automation)Medium → highLow → mediumHigh (waterjet equipment & pumps)Low → mediumLow → medium
Operating Cost (Typical)Low → moderate (low consumables, high uptime)Moderate → higherModerate → high (consumables + gas)High (abrasives + pump energy + maintenance)Low (cheap gases)Low → moderate (tool wear)
Safety & EnvironmentalFumes when cutting coated materials (requires extraction); laser safety required (enclosure & interlocks)Similar to fiber; CO₂ lasers need proper ventilation and safetySmoke, UV, hot spatter — ventilation & PPE requiredMinimal thermal emissions but high noise & water/abrasive disposal concernsSignificant fumes, slag, flame hazards; ventilation requiredNoise, dust, chip management; less thermal hazard for non-thermal methods

Fiber Laser Cutting Machine FAQ

What is a fiber laser cutting machine and how does it function?

A fiber laser cutter is an industrial system that uses a solid-state laser source to produce a highly concentrated light beam. This beam is routed through flexible optical fibers to the cutting head, where it melts or vaporizes metal. An assist gas (like nitrogen or oxygen) blows away the molten metal, producing high-accuracy cuts.

What materials can be processed by a RAXMEK fiber laser?

Our systems cut a wide variety of metals, including mild/carbon steel, stainless steel, aluminum, brass, copper, titanium, and other non-ferrous alloys. Thick reflective metals like copper require higher wattage configurations and specialized optics.

How does fiber laser technology compare to CO2 lasers?

Fiber lasers offer 2 to 3 times higher electrical efficiency than CO2 lasers, cut thin-to-medium sheets significantly faster, and require no reflective mirror maintenance. They also handle reflective metals (like brass and copper) much more safely.

What is the typical lifespan and maintenance requirement?

The solid-state laser source lasts up to 100,000 hours of operation. Since there are no moving mirrors or laser gas chambers, routine maintenance is limited to keeping the protective lens clean, replacing nozzle consumables, and ensuring the chiller has clean water.

Which factors determine the cost of a fiber laser cutting system?

Key cost factors include the laser source wattage (ranging from 1kW to 30kW+), worktable dimensions (single bed vs. dual shuttle exchange tables), structural frame weight, and additional options like integrated rotary tube cutters or safety enclosures.

Request a Custom Quote

Have questions about our fiber laser cutting machines or need a customized quote? Send us your requirements and our team will get back to you within 24 hours.

تواصل معنا وسنرد عليك في أقرب وقت ممكن. نحن نتطلع للاستماع إليك!