
Manufacturing Processes for Mechanical Fabrication Course
Master the full range of mechanical fabrication processes — from lathe and milling operations to welding, sheet metal forming, and precision inspection. This course gives you the hands-on knowledge and technical foundation to produce quality parts that meet real engineering specifications. Whether you're entering the trade or levelling up your shop skills, this is the training that gets you there.
What you will learn:
You'll cover every major area of mechanical fabrication, starting with engineering materials, drawing interpretation, and shop safety. From there, you'll work through turning, milling, drilling, and hole-making operations, learning how to set up machines and hit tight tolerances. Welding processes including SMAW, MIG, and TIG are covered in full, along with sheet metal layout, bending, and forming. You'll also get into quality control, statistical process control, and non-destructive testing. Supplementary topics include CNC programming basics, heat treatment, additive manufacturing, and lean production methods. By the end, you'll have the technical knowledge to work confidently across a modern fabrication environment.
How you study in practice Manufacturing Processes for Mechanical Fabrication Course
How you practise Manufacturing Processes for Mechanical Fabrication Course
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 • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Mechanical Fabrication
Foundations of Mechanical Fabrication
Lesson 1 • Engineering Materials Overview
Surveys ferrous metals, non-ferrous metals, and engineering plastics used in fabrication. Material selection criteria connect directly to process choices in later chapters.
Lesson 2 • Reading Engineering Drawings
Teaches orthographic projection, dimensioning, and GD&T symbols essential for fabrication. Accurate drawing interpretation prevents downstream manufacturing errors.
Lesson 3 • Measurement and Inspection Tools
Introduces precision hand tools including calipers, micrometers, and gauges used throughout fabrication. Accurate measurement underpins quality control in every process chapter.
Lesson 4 • Introduction to Fabrication Concepts
Defines fabrication, its role in manufacturing, and key terminology. Provides the conceptual baseline for all subsequent process study.
Lesson 5 • Shop Safety and Hazard Control
Covers PPE selection, machine guarding, and hazardous material handling in fabrication shops. Safety compliance is a prerequisite for all hands-on lab activities.
Chapter 2HideHide detailsSee detailsMaterial Preparation and Stock Removal
Material Preparation and Stock Removal
Lesson 1 • Layout and Marking Techniques
Covers scribing, centre punching, and layout fluid application for accurate workpiece marking. Precise layout reduces material waste and machining errors.
Lesson 2 • Abrasive Cutting and Grinding Basics
Introduces abrasive wheel selection, angle grinder use, and cut-off operations for metal stock. Wheel speed ratings and guard requirements are emphasised for safety.
Lesson 3 • Bench Work and Hand Tool Operations
Teaches filing, chiselling, and hand reaming for manual stock removal and fitting. These skills support precision fitting tasks that machines cannot always achieve.
Lesson 4 • Sawing and Shearing Operations
Explains hacksaw, band saw, and power shear operation for cutting stock to rough size. Correct blade and speed selection minimises burrs and material distortion.
Chapter 3HideHide detailsSee detailsTurning and Lathe Operations
Turning and Lathe Operations
Lesson 1 • Lathe Machine Anatomy and Setup
Identifies lathe components, drive systems, and work-holding devices for safe setup. Understanding machine anatomy enables correct speed and feed selection.
Lesson 2 • Thread Cutting on the Lathe
Covers single-point thread cutting for external and internal threads using change gears. Thread form, pitch, and fit class are verified with thread gauges.
Lesson 3 • Basic Turning and Facing Operations
Covers straight turning, facing, and shoulder turning to produce cylindrical features. Depth of cut and feed rate control determine surface finish and dimensional accuracy.
Lesson 4 • Taper Turning Methods
Explains compound rest, tailstock offset, and taper attachment methods for producing tapered features. Taper accuracy is verified with taper gauges and blue-check fitting.
Lesson 5 • Drilling, Boring, and Reaming on the Lathe
Teaches centre drilling, twist drilling, boring bar use, and reaming for accurate hole production. Hole quality on the lathe exceeds drill press accuracy for concentric features.
Chapter 4HideHide detailsSee detailsMilling Machine Operations
Milling Machine Operations
Lesson 1 • Milling Machine Types and Components
Identifies knee mill, bed mill, and horizontal mill components and their operational differences. Machine selection depends on workpiece geometry and production volume.
Lesson 2 • Cutter Selection and Setup
Covers end mill, face mill, and slot drill geometry, material grades, and mounting methods. Correct cutter selection directly affects tool life and surface finish quality.
Lesson 3 • Slot, Keyway, and Pocket Milling
Explains slot milling, T-slot cutting, and pocket milling for internal features. Proper depth increments and chip evacuation prevent cutter breakage.
Lesson 4 • Indexing and Angular Milling
Covers direct, simple, and differential indexing with a dividing head for angular and gear features. Indexing accuracy is critical for equally spaced features.
Lesson 5 • Flat Surface and Shoulder Milling
Teaches face milling, peripheral milling, and shoulder milling for flat and stepped surfaces. Climb vs. conventional milling strategies affect finish and cutter deflection.
Chapter 5HideHide detailsSee detailsDrilling, Boring, and Hole-Making Processes
Drilling, Boring, and Hole-Making Processes
Lesson 1 • Reaming, Countersinking, and Counterboring
Covers finishing hole operations that improve size accuracy, surface finish, and fastener seating. Each operation requires specific speed reduction from drilling conditions.
Lesson 2 • Twist Drill Geometry and Sharpening
Explains point angle, helix angle, and web thickness effects on drilling performance. Correct sharpening restores geometry and extends drill service life.
Lesson 3 • Honing and Lapping for Bore Finishing
Explains honing stone selection and lapping compound use for achieving fine bore finish and geometry. These processes correct minor bore geometry errors after boring.
Lesson 4 • Drill Press Setup and Operation
Teaches drill press work-holding, speed selection, and feed pressure for accurate hole drilling. Proper setup prevents drill walk and workpiece rotation hazards.
Lesson 5 • Jig Boring and Precision Hole Location
Introduces jig boring machines and coordinate measurement for precise hole location. Positional accuracy requirements drive the choice between jig boring and CNC methods.
Chapter 6HideHide detailsSee detailsWelding and Joining Processes
Welding and Joining Processes
Lesson 1 • Weld Inspection and Distortion Control
Covers visual inspection, dye penetrant testing, and distortion mitigation strategies for fabricated assemblies. Distortion control is applied during and after welding to maintain dimensional accuracy.
Lesson 2 • Gas Metal Arc Welding
Covers wire feed, shielding gas selection, and transfer modes for MIG welding steel and aluminium. MIG productivity advantages make it the dominant process in production fabrication.
Lesson 3 • Shielded Metal Arc Welding
Teaches electrode selection, arc striking, and bead progression for SMAW on structural steel. Electrode classification and storage directly affect weld quality and hydrogen cracking risk.
Lesson 4 • Gas Tungsten Arc Welding
Explains tungsten electrode preparation, filler rod addition, and torch technique for TIG welding. TIG produces the highest quality welds for thin materials and critical joints.
Lesson 5 • Welding Fundamentals and Joint Design
Covers weld joint types, groove geometry, and weld symbols used in fabrication drawings. Joint design directly affects weld strength and distortion control.
Chapter 7HideHide detailsSee detailsSheet Metal Fabrication Processes
Sheet Metal Fabrication Processes
Lesson 1 • Flat Pattern Layout and Development
Teaches bend allowance calculation, k-factor application, and flat pattern development for accurate blanks. Correct flat pattern layout eliminates costly rework after forming.
Lesson 2 • Roll Forming and Stretch Forming
Covers three-roll bending for cylinders and cones and stretch forming for curved panels. These processes produce large-radius forms that press brakes cannot achieve.
Lesson 3 • Sheet Metal Materials and Properties
Reviews gauges, tempers, and formability ratings for steel, aluminium, and stainless sheet. Material selection affects springback, bend radius, and surface finish requirements.
Lesson 4 • Press Brake Bending Operations
Explains punch and die selection, back gauge setup, and bend sequence planning for press brake forming. Correct bend sequence prevents tool interference and maintains part accuracy.
Lesson 5 • Cutting and Blanking Operations
Covers guillotine shearing, laser cutting, plasma cutting, and punch press blanking for sheet stock. Cutting method selection balances edge quality, speed, and material thickness.
Chapter 8HideHide detailsSee detailsQuality Control and Process Improvement
Quality Control and Process Improvement
Lesson 1 • Root Cause Analysis and Corrective Action
Applies fishbone diagrams, 5-Why analysis, and FMEA to fabrication defects for systematic problem solving. Corrective actions are documented and verified to prevent defect recurrence.
Lesson 2 • Statistical Process Control Fundamentals
Introduces control charts, process capability indices, and sampling plans for fabrication processes. SPC enables early detection of process drift before defective parts are produced.
Lesson 3 • Non-Destructive Testing Methods
Covers ultrasonic, radiographic, and eddy current testing for internal defect detection in fabricated parts. NDT method selection depends on material type, defect type, and access constraints.
Lesson 4 • Dimensional Inspection Methods
Covers CMM operation, surface plate inspection, and optical comparator use for part verification. Systematic inspection confirms conformance to drawing tolerances before assembly.
Lesson 5 • Surface Finish Measurement and Standards
Explains Ra, Rz, and Rmax parameters and profilometer use for surface texture evaluation. Surface finish affects fatigue life, sealing, and tribological performance of fabricated parts.
Your valid completion certificate
This course is for you:
Vocational students: building a technical foundation before entering the workforce.
Maintenance technicians: expanding skills beyond repairs into full part fabrication.
Mechanical engineering students: connecting classroom theory to real shop-floor practice.
Career changers: transitioning into manufacturing from unrelated professional backgrounds.
Hobbyist machinists: moving from trial-and-error to structured, professional-grade techniques.
Junior fabricators: filling knowledge gaps to qualify for higher-responsibility shop roles.
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