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Autodesk Inventor Course
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Autodesk Inventor Course

4.1

Master Autodesk Inventor from the ground up and gain the CAD skills that engineering teams actually rely on. This course covers 2D sketching, solid part modeling, assembly design, engineering drawings, sheet metal, simulation, and design automation. Every topic is built around real mechanical workflows so you can apply what you learn immediately on the job.

Dedika for students

What your team will master:

You will learn to navigate the Inventor interface and configure a professional project environment from day one. The course takes you through parametric 2D sketching, core and advanced 3D part modeling, and multi-component assembly design using constraints and joints. You will produce fully annotated engineering drawings that meet industry documentation standards. Sheet metal design, stress analysis with FEA, dynamic simulation, and model export workflows are also covered in depth. Supplementary content introduces iLogic automation, surface modeling, weldment design, model-based definition, and photorealistic rendering. By the end, you will have the technical range to handle complex Inventor projects and the professional habits to work effectively within an engineering team.

How your team learns practically Autodesk Inventor Course

How your team practises Autodesk Inventor Course

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Course content

8 Chapters • 38 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Getting Started with Autodesk Inventor

  • Lesson 1 • Navigation and View Controls

    Teaches orbit, pan, zoom, and ViewCube usage for efficient model inspection. Smooth navigation is prerequisite to accurate geometry creation.

  • Lesson 2 • File Types and Project Setup

    Covers IPT, IAM, IDW, and IPN file formats and their roles. Proper project configuration prevents broken file links throughout the course.

  • Lesson 3 • Application Options and Preferences

    Configures units, display, and sketch settings to match professional workflows. Correct defaults reduce rework in every subsequent exercise.

  • Lesson 4 • Inventor Interface Overview

    Introduces the ribbon, browser, and graphics window as core navigation tools. Establishes spatial awareness needed for all subsequent modeling tasks.

Chapter 2See details

2D Sketching Fundamentals

  • Lesson 1 • Sketch Environment and Planes

    Explains origin planes, sketch activation, and coordinate systems. Choosing the correct sketch plane determines part orientation and downstream assembly behaviour.

  • Lesson 2 • Applying Geometric Constraints

    Applies coincident, tangent, parallel, perpendicular, and symmetric constraints. Geometric constraints define design intent independent of dimension values.

  • Lesson 3 • Dimensional Constraints and Parameters

    Drives sketch size with linear, angular, and radial dimensions linked to parameters. Parametric dimensions enable rapid design iteration without redrawing geometry.

  • Lesson 4 • Drawing Basic Sketch Geometry

    Covers lines, arcs, circles, rectangles, and splines using sketch tools. Accurate geometry input reduces constraint effort and modeling errors.

  • Lesson 5 • Sketch Editing and Reuse Tools

    Uses trim, extend, offset, mirror, and pattern to modify and multiply geometry. Efficient editing reduces sketch creation time on complex profiles.

Chapter 3See details

Core 3D Part Modeling

  • Lesson 1 • Shell, Rib, and Draft Features

    Hollows parts with shell, adds structural ribs, and applies draft angles for moldability. These features are essential for plastic and cast-part design.

  • Lesson 2 • Hole, Fillet, and Chamfer Features

    Adds precision holes, smooth fillets, and angled chamfers to solid bodies. These features reflect real manufacturing processes and improve part functionality.

  • Lesson 3 • Pattern and Mirror Features

    Replicates features using rectangular, circular, and mirror operations. Patterns enforce design symmetry and reduce redundant feature creation.

  • Lesson 4 • Work Features and Reference Geometry

    Creates work planes, axes, and points to support complex feature placement. Reference geometry unlocks off-axis and angled feature construction.

  • Lesson 5 • Extrude and Revolve Features

    Creates solid and cut geometry by extruding profiles and revolving around axes. These two features form the basis of most mechanical part shapes.

Chapter 4See details

Advanced Part Modeling Techniques

  • Lesson 1 • Coil and Emboss Features

    Generates helical coils for springs and threads, and embosses or engraves text and logos. These features address specialised manufacturing and branding requirements.

  • Lesson 2 • Parameters and iProperties

    Links model dimensions to named parameters and populates iProperties for data management. Parametric control enables design tables and automated drawing updates.

  • Lesson 3 • Multi-Body Part Modeling

    Manages multiple solid bodies within a single part file for complex designs. Multi-body techniques support mold design and weldment modelling workflows.

  • Lesson 4 • Part Modeling Best Practices

    Applies feature order, naming, and suppression strategies for robust, maintainable models. Good modelling habits prevent failures when dimensions or topology change.

  • Lesson 5 • Sweep and Loft Features

    Guides profiles along paths with sweep and blends multiple profiles with loft. These features create tubing, handles, and aerodynamic surfaces efficiently.

Chapter 5See details

Assembly Design and Constraints

  • Lesson 1 • Assembly Environment Fundamentals

    Introduces the IAM environment, browser structure, and component placement workflow. Understanding the assembly environment is prerequisite to applying constraints correctly.

  • Lesson 2 • Adaptive and Flexible Components

    Enables adaptive parts to resize based on assembly context and flexible subassemblies to move. These techniques support top-down design and mechanism simulation.

  • Lesson 3 • Joint Connections in Assemblies

    Applies rigid, rotational, slider, and cylindrical joints as an alternative to constraints. Joints simplify motion definition and improve simulation compatibility.

  • Lesson 4 • Applying Assembly Constraints

    Uses mate, flush, angle, and tangent constraints to position components precisely. Correct constraint types define both position and allowable motion.

  • Lesson 5 • Assembly Patterns and Mirroring

    Replicates components using pattern and mirror tools to populate assemblies efficiently. Associative patterns update all instances when the source component changes.

Chapter 6See details

Engineering Drawings and Annotations

  • Lesson 1 • Parts Lists and Balloons

    Generates automated parts lists and balloon callouts linked to assembly models. BOM-linked balloons update automatically when assembly components change.

  • Lesson 2 • Annotations and Symbols

    Adds surface finish, weld, datum, and GD&T symbols to complete drawing communication. Standardised symbols replace lengthy text notes and reduce interpretation errors.

  • Lesson 3 • Dimensions and Tolerances

    Applies retrieved and manual dimensions with tolerance formats to drawing views. Accurate tolerancing communicates acceptable variation to manufacturing and inspection.

  • Lesson 4 • Creating and Editing Drawing Views

    Places base, projected, section, detail, and auxiliary views from 3D models. Each view type communicates specific geometric information required for manufacturing.

  • Lesson 5 • Drawing Environment and Sheet Setup

    Configures drawing sheets, borders, title blocks, and drawing standards. Proper setup ensures drawings comply with organisational and industry documentation requirements.

Chapter 7See details

Sheet Metal Design

  • Lesson 1 • Flat Pattern and Bend Tables

    Unfolds the 3D part into a flat pattern and generates bend tables for fabrication. Flat patterns drive laser cutting and punching programs directly.

  • Lesson 2 • Cuts, Punches, and Hems

    Adds cutouts, punch tool features, and hem edges to sheet metal geometry. These features represent common fabrication operations performed on press brakes and punch presses.

  • Lesson 3 • Faces, Flanges, and Contour Rolls

    Creates base faces, edge flanges, contour flanges, and rolled shapes as primary sheet metal forms. These features define the overall envelope of the sheet metal part.

  • Lesson 4 • Sheet Metal Environment Setup

    Configures material thickness, bend radius, K-factor, and relief styles in sheet metal defaults. Correct defaults ensure flat patterns match real fabricated dimensions.

Chapter 8See details

Simulation, Analysis, and Collaboration

  • Lesson 1 • Dynamic Simulation

    Converts assembly joints to simulation joints and applies forces to animate mechanisms. Dynamic simulation predicts motion, forces, and reaction loads over time.

  • Lesson 2 • Model Export and Interoperability

    Exports models to STEP, IGES, STL, and DWG formats for downstream use. Proper export settings preserve geometry fidelity for CAM, FEA, and 3D printing.

  • Lesson 3 • Design Accelerator Tools

    Uses built-in calculators for shafts, gears, bearings (mechanical bearing), and bolted connections. Accelerator tools generate geometry and verify component strength simultaneously.

  • Lesson 4 • Stress Analysis with FEA

    Applies loads (mechanical/structural force), constraints, and mesh settings to run finite element stress analysis on parts. Results identify high-stress regions before physical prototyping.

  • Lesson 5 • Collaboration with Autodesk Platform Services

    Connects Inventor to cloud storage, Fusion Team, and Vault for team collaboration. Cloud-connected workflows enable concurrent design and centralised data management.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical engineering students: ready to add industry-standard CAD to their toolkit.

  • Drafters transitioning from 2D AutoCAD: wanting to move into parametric 3D modelling.

  • Manufacturing technicians: looking to read, create, and modify engineering part files.

  • Product designers: needing structured CAD skills to bring physical concepts to life.

  • Career changers entering engineering fields: seeking credible, employer-recognised software proficiency.

  • Hobbyist makers and inventors: aiming to design precise, fabrication-ready mechanical parts.

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