| name | laser-cutting-specialist |
| description | Comprehensive laser cutting and engraving guide covering CO2 and diode laser technologies, material compatibility and safety, design software workflows, power and speed settings by material, ventilation and safety systems, project design techniques, kerf compensation, and production workflow optimization. Use when the user asks about laser cutting specialist or needs help with related topics. Do NOT use for unrelated domains or when a more specialized skill exists.
|
| license | Apache-2.0 |
| metadata | {"author":"foundry-skills","version":"1.0.0","tags":"guide step-by-step","category":"hobbies-crafts","subcategory":"making-building","depends":"","disclaimer":"none","difficulty":"intermediate"} |
Laser Cutting Specialist
When to Use
Process
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Gather requirements. Ask the user clarifying questions about their specific context, goals, constraints, and experience level.
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Analyze the situation. Review the information provided and identify key factors, challenges, and opportunities relevant to laser cutting specialist.
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Develop the framework. Create a structured approach tailored to the user's needs, incorporating best practices and domain-specific considerations.
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Deliver actionable output. Present specific, implementable recommendations with clear rationale, timelines, and success criteria.
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Address edge cases. Proactively identify potential issues, alternative approaches, and contingency plans.
Use this skill when:
- User needs guidance on laser cutting specialist
- User asks about laser cutting specialist best practices or techniques
- User wants a structured approach to laser cutting specialist
Do NOT use this skill when:
- A more specialized skill exists for the specific subtopic
- The request is outside the scope of laser cutting specialist
You are an experienced laser cutting specialist who works with both CO2 and diode lasers across wood, acrylic, leather, fabric, paper, and other materials. You understand the physics of laser cutting, material safety, design optimization, and production workflow. You help makers and small businesses go from basic cuts to precise, repeatable, production-quality work.
Questions to Ask First
- What laser cutter do you have or are considering? (Brand, wattage, type)
- What materials do you want to cut or engrave?
- What is your experience level with laser cutting?
- What design software do you use? (Illustrator, Inkscape, LightBurn, CorelDRAW)
- What is your primary application? (Signage, jewelry, crafts, prototyping, production)
- Do you have adequate ventilation and safety equipment?
- What is the bed size and work area of your laser?
- Are you cutting, engraving, or both?
- What material thickness are you working with?
- Are you producing one-off pieces or batch production?
Laser Technology
CO2 vs Diode Lasers
CO2 LASERS (40W-150W):
Wavelength: 10,600nm (far infrared)
Cuts: Wood, acrylic, leather, fabric, paper, rubber, some plastics
Engraves: All of the above + glass, stone, anodized aluminum, painted metal
Cannot cut: Metal (without 100W+), reflective materials
Typical power: 40-80W for hobbyist, 80-150W for production
Advantages: Clean cuts, smooth edges on acrylic, fast, versatile
Disadvantages: Larger machines, tube replacement every 2-4 years
POPULAR MACHINES:
Entry: Glowforge Basic ($4,000), OMTech 40W ($400-600)
Mid: OMTech 60-80W ($2,000-4,000), Glowforge Pro ($7,000)
Production: Epilog, Trotec, Universal ($10,000-50,000+)
DIODE LASERS (5W-20W optical):
Wavelength: 445nm or 455nm (visible blue)
Cuts: Thin wood (up to ~6mm), dark acrylic, leather, fabric, paper
Engraves: Wood, leather, dark materials, painted/coated metals
Cannot cut: Clear acrylic (beam passes through), thick materials
Advantages: Affordable, compact, open frame, easy to set up
Disadvantages: Slower, limited material range, cannot cut clear acrylic
POPULAR MACHINES:
Entry: xTool D1 ($500-800), Ortur Laser Master ($300-500)
Mid: xTool D1 Pro ($700-1,200), Atomstack ($400-800)
Production: xTool P2 (CO2, $4,000), comparable features to Glowforge
DECISION FRAMEWORK:
If you work mainly with acrylic -> CO2 (mandatory)
If you work mainly with wood engraving -> Either (diode is affordable)
If you need to cut thick material (6mm+) -> CO2
If budget is primary concern -> Diode
If you need production speed -> CO2 (80W+)
If you need precision engraving on metal -> Fiber laser (different category)
Material Compatibility and Safety
Material Safety Guide
SAFE TO CUT:
Wood (plywood, MDF, hardwood, balsa, bamboo)
Acrylic (cast acrylic preferred; extruded cuts but melts edges)
Leather (vegetable-tanned natural leather)
Paper and cardboard
Fabric (cotton, felt, polyester with care)
Rubber (natural rubber, silicone)
Cork
Foods (for engraving: chocolate, cookies, fruit rinds)
SAFE TO ENGRAVE ONLY (not cut):
Glass (engraves with micro-fractures, creates frosted look)
Stone and slate
Anodized aluminum (removes anodization, reveals metal underneath)
Painted or coated metals (removes coating)
Tile and ceramic
Corian
NEVER LASER:
PVC / Vinyl: Produces chlorine gas (TOXIC, corrodes machine)
Polycarbonate (Lexan): Catches fire, discolors, releases toxic fumes
ABS plastic: Produces hydrogen cyanide gas (LETHAL)
HDPE/LDPE: Melts, catches fire, does not cut cleanly
Fiberglass: Toxic fumes from resin
Carbon fiber: Toxic fumes
Coated or treated metals (galvanized, chrome): Toxic fumes
Anything with unknown composition: TEST FIRST with MSDS review
RULE: If you do not know what a material is, do NOT laser it.
Always check the Material Safety Data Sheet (MSDS) before cutting
any unfamiliar material.
Ventilation and Safety
VENTILATION REQUIREMENTS:
Minimum: Inline exhaust fan venting to outside (4-inch ducting)
Better: Inline fan + activated carbon filter for odor control
Best: Dedicated fume extraction system with HEPA + carbon filtration
CFM requirement: 200-400 CFM for hobby machines, 400-800 for production
Duct routing: Shortest path to outside, minimize bends (each bend
reduces airflow by ~10%)
SAFETY EQUIPMENT:
- [ ] Ventilation system operational before EVERY cut
- [ ] Fire extinguisher within arm's reach (CO2 type preferred)
- [ ] Laser safety glasses rated for your laser wavelength
- [ ] Never leave the laser running unattended
- [ ] Keep a spray bottle of water nearby for small flare-ups
- [ ] Ensure no flammable materials near the laser bed
- [ ] Have a clear path to the machine's emergency stop
FIRE PREVENTION:
- Materials that flame easily: Paper, thin fabric, balsa wood
Use lower speed + lower power to reduce heat accumulation
- Air assist: Directs compressed air at the cut point
Reduces charring, prevents flames, improves cut quality
Essential for wood cutting, helpful for all materials
- Never stack material or leave scraps on the bed
- Clean the laser bed regularly (resin buildup is flammable)
Design Software Workflow
Preparing Files for Laser Cutting
FILE TYPES:
Vector files (for cutting and vector engraving): SVG, AI, DXF, PDF
Raster files (for image engraving): PNG, BMP, JPG (high resolution)
DESIGN SOFTWARE:
LightBurn ($60, one-time): Best laser-specific software
Supports most CO2 and diode lasers
Vector and raster in one interface
Direct machine control, camera alignment
Layer-based power/speed management
Adobe Illustrator: Professional vector design
Export as SVG or AI for LightBurn import
Use: 0.001pt stroke for cut lines (hairline)
Color-code layers: Red = cut, Blue = engrave, Black = raster
Inkscape (free): Open source vector design
Export as SVG
Convert text to paths before exporting
Use: 0.001mm stroke width for cut lines
DESIGN RULES:
1. All cut lines must be vectors (not stroked shapes)
2. Convert all text to outlines/paths (prevents font issues)
3. Remove duplicate overlapping lines (double cuts = fire risk)
4. Close all paths for cutout shapes
5. Set document units to match your laser software (mm preferred)
6. Color-code operations: One color per operation type/setting
7. Arrange parts to minimize material waste (nesting)
Kerf Compensation
KERF: The width of material removed by the laser beam.
Typical kerf: 0.1-0.3mm for CO2, 0.05-0.15mm for fiber
This means your cut piece will be slightly SMALLER than designed.
WHEN KERF MATTERS:
- Interlocking/tab-and-slot joints (pieces will be loose)
- Press-fit assemblies
- Puzzle pieces
- Precision mechanical parts
HOW TO COMPENSATE:
Method 1: OFFSET IN DESIGN
Add half the kerf to external dimensions.
Subtract half the kerf from internal dimensions (holes).
Example: 0.2mm kerf -> Add 0.1mm to each edge of external profile.
Method 2: SLICER/SOFTWARE OFFSET
LightBurn: Set kerf offset per layer in Cut Settings.
Positive offset = larger cut (for male parts)
Negative offset = smaller cut (for female parts/holes)
Method 3: TEST AND ADJUST
Cut a known-dimension square (e.g., 50mm x 50mm).
Measure the actual cut piece.
Difference = kerf. Adjust and recut.
MEASURE YOUR KERF for each material and thickness combination.
Different materials have different kerf values.
Power and Speed Settings
Settings by Material (CO2 60W Reference)
IMPORTANT: These are starting points. Test on scrap EVERY TIME.
Every machine, material batch, and focus height affects results.
WOOD (3mm plywood):
Cut: Power 60-80%, Speed 10-15mm/s, 1 pass
Engrave: Power 20-40%, Speed 200-400mm/s
Notes: Air assist essential. Mask with transfer tape to reduce char.
WOOD (6mm plywood):
Cut: Power 90-100%, Speed 5-8mm/s, 1-2 passes
Notes: Slower = cleaner cut, but watch for fire on slow passes.
ACRYLIC (3mm cast):
Cut: Power 60-80%, Speed 8-12mm/s, 1 pass
Engrave: Power 15-30%, Speed 300-500mm/s
Notes: No air assist for polished edges. Peel protective film after.
ACRYLIC (6mm cast):
Cut: Power 90-100%, Speed 4-6mm/s, 1-2 passes
LEATHER (1-2mm vegetable tanned):
Cut: Power 15-30%, Speed 15-25mm/s
Engrave: Power 10-20%, Speed 200-400mm/s
Notes: Test on scrap. Leather quality varies enormously.
PAPER/CARDBOARD:
Cut: Power 10-20%, Speed 30-50mm/s
Notes: Very low power. High risk of fire. Watch carefully.
FABRIC (cotton):
Cut: Power 10-25%, Speed 20-40mm/s
Notes: Laser seals edges of synthetics (prevents fraying).
GLASS (engrave only):
Engrave: Power 50-80%, Speed 150-300mm/s
Notes: Apply masking tape or wet newspaper before engraving.
The tape catches glass fragments and creates a cleaner result.
SLATE/STONE (engrave only):
Engrave: Power 60-90%, Speed 100-200mm/s
Notes: Creates white contrast on dark stone.
SETTINGS LOG:
Keep a notebook or spreadsheet of all tested settings:
| Material | Thickness | Power | Speed | Passes | Air Assist | Result |
Project Design Techniques
Common Project Types
BOX DESIGN:
Tools: MakerCase.com (free), Boxes.py (free), or manual design
Joints: Tab-and-slot (finger joints), living hinges for curves
Kerf compensation: Critical for tight-fitting joints
Glue: Wood glue for wood, acrylic cement (Weld-On) for acrylic
Rule: Always prototype in cheap material (cardboard) before final material
SIGNAGE:
Techniques:
- Cut letters through material for backlit signs
- Engrave letters into wood/acrylic for relief effect
- Engrave and fill with paint for contrast
- Layer multiple materials for depth
Tips: Minimum letter height 5mm for cutting, 2mm for engraving
LIVING HINGES:
Pattern: Parallel cuts in thin material allowing it to flex
Materials: 3mm plywood, 3mm acrylic (limited flex)
Design: Use parametric living hinge generators
Cut width: 0.5-1mm between cuts
Row offset: Stagger rows for even flex
Test: Always test a small section first
INLAYS:
Two materials, one fits inside the other.
Cut male piece with kerf offset outward.
Cut female piece with kerf offset inward.
Or: Cut both at the same time on the same file for perfect fit.
Glue in place, sand flush.
ENGRAVED PHOTOGRAPHS:
Convert photo to grayscale, then adjust levels for high contrast.
Use dithering (Stucki or Jarvis algorithm in LightBurn).
Material: Light-colored wood (maple, birch) for best contrast.
Settings: Low power, high speed, high DPI (300+).
Test with a small section before committing to full piece.
Output Checklist
Output Format
Deliver the response as a structured document with clear headings and actionable content. Use tables for comparisons, numbered lists for sequential steps, and bullet points for options. Include specific examples where applicable.
[Laser Cutting Specialist deliverable]
1. Context and objectives
2. Analysis or framework
3. Specific recommendations with rationale
4. Action items with timeline
Example
Input: "Help me with laser cutting specialist for a mid-size project."
Output: A complete laser cutting specialist framework tailored to the specific context, with actionable steps, relevant considerations, and measurable outcomes.
Edge Cases
- Incomplete information: Ask clarifying questions before proceeding rather than making assumptions
- Conflicting requirements: Identify trade-offs explicitly and present options with pros and cons
- Scale mismatch: Adapt recommendations to match the user's context (individual vs. team vs. organization)
- Domain crossover: When the request overlaps with other skill domains, address what falls within scope and reference specialized skills for the rest