
Laser Cutting Training
Master laser cutting from machine startup to finished part, covering safety, materials, parameters, and maintenance. This training gives you the hands-on knowledge to operate CO2, fibre, and diode laser systems with confidence. Whether you're entering the trade or expanding your production skills, this course delivers practical, job-ready expertise.
What you will learn:
You will learn how laser cutting machines work, how to set them up correctly, and how to dial in parameters for wood, acrylic, metal, and other materials. The course covers design software, vector file preparation, and colour-layer mapping so your files run without errors. You will practise focus calibration, kerf compensation, and systematic defect diagnosis to produce precise, consistent parts. Engraving, scoring, and surface marking techniques are included to expand your production capabilities. You will also build a preventive maintenance routine and learn to troubleshoot common faults independently.
How you study in practice Laser Cutting Training
How you practise Laser Cutting Training
For companies looking to train their teams
With Dedika for businesses, the course includes exercises and examples tailored to your company and its specific needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsLaser Cutting Fundamentals and Safety
Laser Cutting Fundamentals and Safety
Lesson 1 • Types of Laser Cutting Machines
Compares CO2, fibre, and diode laser systems by power, wavelength, and material compatibility. Helps learners select the right machine for a given job.
Lesson 2 • Personal Protective Equipment
Covers correct selection, fit, and use of laser safety eyewear, respirators, and protective clothing. Reinforces that PPE is the last line of defence after engineering controls.
Lesson 3 • How Laser Cutting Works
Explains the physics of laser light, beam focusing, and material interaction. Establishes the conceptual base for all subsequent machine operation topics.
Lesson 4 • Emergency Procedures and First Aid
Defines responses to laser eye injury, fire, and fume exposure incidents. Ensures learners can act immediately and correctly before professional help arrives.
Lesson 5 • Workplace Hazards and Risk Assessment
Identifies laser radiation, fumes, fire, and electrical hazards present in cutting environments. Connects hazard recognition to the safety controls introduced next.
Chapter 2HideHide detailsSee detailsMachine Components and Controls
Machine Components and Controls
Lesson 1 • Control Panel and Machine Interface
Covers physical controls, display panels, and onboard menus used during daily operation. Builds the interface literacy needed to execute jobs from the machine itself.
Lesson 2 • Mechanical System Components
Identifies the gantry, motion axes, bed, and drive systems that move the laser head. Understanding mechanics prevents misuse and aids troubleshooting later.
Lesson 3 • Routine Machine Startup and Shutdown
Establishes a standardised checklist for safe daily startup and end-of-shift shutdown. Consistent procedures extend machine life and prevent accidents.
Lesson 4 • Ventilation and Fume Extraction Systems
Describes inline blowers, filtration units, and exhaust ducting that remove cutting fumes. Connects equipment knowledge to the safety protocols established in Chapter 1.
Lesson 5 • Optical and Beam Delivery System
Explains mirrors, lenses, and beam path components that direct and focus the laser. Proper optical knowledge is essential for focus calibration covered in the next section.
Chapter 3HideHide detailsSee detailsDesign Software and File Preparation
Design Software and File Preparation
Lesson 1 • Creating and Editing Cut Geometry
Teaches drawing lines, shapes, and curves, then editing nodes to produce clean cut paths. Accurate geometry directly determines cut quality and material yield.
Lesson 2 • File Export and Pre-Flight Checks
Covers exporting files in machine-compatible formats and verifying path integrity before cutting. Pre-flight checks eliminate wasted material from corrupt or incomplete files.
Lesson 3 • Vector vs. Raster Graphics Concepts
Distinguishes vector paths from raster images and explains why vectors are required for cutting. Sets the conceptual foundation for all design and file work ahead.
Lesson 4 • Colour Coding and Layer Assignment
Explains how colour layers map to machine operations such as cut, score, and engrave. Correct layer setup prevents costly errors when the file reaches the machine.
Lesson 5 • Design Software Workspace Orientation
Introduces the canvas, toolbars, layers, and document settings in common laser design applications. Efficient workspace use accelerates every design task in this chapter.
Chapter 4HideHide detailsSee detailsMaterial Science for Laser Cutting
Material Science for Laser Cutting
Lesson 1 • Metals and Reflective Materials
Covers fibre laser cutting of mild steel, stainless steel, and aluminium, including reflectivity risks. Builds awareness of machine type requirements for metal work.
Lesson 2 • Textiles, Leather, and Organics
Describes cutting behaviour of fabric, leather, cork, and paper, including fume considerations. Expands material repertoire for diverse production applications.
Lesson 3 • Material Testing and Documentation
Introduces systematic test-cut grids to determine optimal parameters for unfamiliar materials. Documenting results builds a reusable material library for future jobs.
Lesson 4 • Wood and Wood-Based Materials
Examines how grain, density, and resin content affect laser cutting of solid wood, plywood, and MDF. Establishes material-specific expectations before parameter setting.
Lesson 5 • Acrylic and Plastics
Compares cast vs. extruded acrylic and identifies plastics that are unsafe to cut due to toxic emissions. Material identification skills protect both operators and equipment.
Chapter 5HideHide detailsSee detailsLaser Parameters and Cut Quality
Laser Parameters and Cut Quality
Lesson 1 • Core Cutting Parameters Explained
Defines power, speed, frequency, and passes as the four primary variables controlling cut outcome. Understanding each variable independently enables systematic tuning.
Lesson 2 • Diagnosing cut quality defects
Identifies incomplete cuts, excessive charring, warping, and burrs, then links each to a parameter cause. Systematic diagnosis reduces material waste and rework time.
Lesson 3 • Kerf compensation and tolerances
Explains kerf width measurement and how to offset design geometry to achieve target dimensions. Kerf compensation is essential for parts that must fit together precisely.
Lesson 4 • Parameter optimisation workflow
Presents a structured process for iterating parameters from a baseline to an optimised setting. A repeatable workflow ensures consistent quality across production runs.
Lesson 5 • Focus calibration and Z-axis setup
Teaches manual and autofocus methods for setting the correct focal distance above the material. Accurate focus is the single most impactful variable for cut quality.
Chapter 6HideHide detailsSee detailsJob setup and machine operation
Job setup and machine operation
Lesson 1 • Material preparation and fixturing
Covers squaring, securing, and supporting stock on the cutting bed to prevent movement during cutting. Proper fixturing directly determines dimensional accuracy of finished parts.
Lesson 2 • Loading and sending files to the machine
Explains file transfer via USB, network, and direct software connection to the machine controller. Reliable file transfer prevents mid-job errors and data corruption.
Lesson 3 • Monitoring active cutting jobs
Defines operator responsibilities during a running job, including fire watch and progress checks. Active monitoring is the primary defence against fire and part defects.
Lesson 4 • Origin setting and job positioning
Teaches absolute, relative, and material-corner origin methods for placing jobs accurately on stock. Correct origin setup prevents off-material cuts and wasted material.
Lesson 5 • Part removal and post-cut handling
Covers safe part removal, protective film peeling, and initial quality inspection after cutting. Proper handling prevents damage to finished parts and maintains workplace order.
Chapter 7HideHide detailsSee detailsEngraving, scoring, and surface marking
Engraving, scoring, and surface marking
Lesson 1 • Raster engraving principles
Explains how the laser scans line by line to remove material and create depth or contrast. Raster engraving parameters differ fundamentally from cutting and require separate tuning.
Lesson 2 • Multi-pass and registration techniques
Explains using registration marks and jigs to align multi-pass or two-sided engraving jobs precisely. Registration accuracy is critical for complex decorative and functional parts.
Lesson 3 • Surface marking techniques
Introduces marking compounds, annealing on metals, and colour-fill methods for permanent surface marks. Marking expands applications to metal identification and product branding.
Lesson 4 • Vector engraving and scoring
Covers following vector paths at reduced power to create scored lines, outlines, and shallow grooves. Vector scoring is faster than raster for line-based designs.
Lesson 5 • Grayscale and 3D engraving
Teaches converting grayscale images to variable-depth engravings that create tactile relief surfaces. Advanced image processing skills distinguish professional engraving output.
Chapter 8HideHide detailsSee detailsMaintenance, troubleshooting, and optimisation
Maintenance, troubleshooting, and optimisation
Lesson 1 • Common fault diagnosis
Presents a fault tree for power loss, motion errors, communication failures, and fire suppression triggers. Structured diagnosis reduces mean time to repair and avoids misdiagnosis.
Lesson 2 • Preventive maintenance schedule
Defines daily, weekly, and monthly maintenance tasks for optics, motion systems, and cooling. Consistent maintenance prevents the majority of unplanned machine downtime.
Lesson 3 • Workflow and nesting optimisation
Introduces nesting software and job sequencing strategies to maximise material utilisation and throughput. Optimisation skills directly reduce material cost and increase production capacity.
Lesson 4 • Performance benchmarking and records
Establishes key performance indicators for cut quality, uptime, and material yield, and tracks them over time. Data-driven records support continuous improvement and maintenance planning.
Lesson 5 • Optical alignment verification
Teaches the beam alignment test procedure using burn paper to verify mirror and lens positioning. Misaligned optics reduce power delivery and can damage the machine.
Your valid completion certificate
This course is for you:
Makers and hobbyists: ready to move beyond trial-and-error machine use.
Manufacturing technicians: looking to add laser cutting to their skill set.
Small business owners: wanting to bring laser production capabilities in-house.
Woodworkers and fabricators: eager to integrate precision cutting into their workflow.
Career changers: pursuing entry-level roles in modern fabrication environments.
Art and design graduates: seeking technical production skills for physical product work.
What our students say
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