
Mechanical Design Course
Master the full mechanical design process — from material selection and stress analysis to tolerancing and machine element sizing. This course gives engineers and designers the analytical tools and practical frameworks to produce components that perform, last, and get built right the first time.
What you will learn:
You will build a complete mechanical engineering design skill set, starting with statics, mechanics of materials, and failure theories. You will learn to select materials using systematic methods, apply GD&T to production drawings, and size standard machine elements including gears, bearings, shafts, and bolted joints. The course covers fatigue life prediction, fracture mechanics, and reliability-based design so your components survive real service conditions. You will also apply DFM and DFA principles to cut manufacturing cost without sacrificing performance. By the final capstone project, you will deliver a fully analysed, toleranced, and documented design package ready for engineering review.
How you study in practice Mechanical Design Course
How you practise Mechanical Design Course
For companies looking to train their teams
With Dedika for Businesses, the course includes exercises and examples tailored to your own business and the specific needs of your company.
Course content
8 Chapters • 38 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Mechanical Design
Foundations of Mechanical Design
Lesson 1 • Material Properties and Selection Basics
Surveys metals, polymers, ceramics, and composites with key mechanical properties. Connects material choice to performance, cost, and manufacturability.
Lesson 2 • Engineering Drawing and Notation
Teaches orthographic projection, dimensioning, and standard drawing conventions. Enables accurate communication of design intent across engineering teams.
Lesson 3 • The Engineering Design Process
Covers iterative design stages from problem definition to validation. Provides the procedural framework used throughout the entire course.
Lesson 4 • Fundamental Mechanical Concepts
Introduces force, stress, strain, and energy as applied to mechanical components. Builds the physical intuition needed for all subsequent design decisions.
Chapter 2HideHide detailsSee detailsStatics and Mechanics of Materials
Statics and Mechanics of Materials
Lesson 1 • Axial, Shear, and Bending Analysis
Derives internal force diagrams for beams and columns under combined loading. Directly informs cross-section sizing and material selection decisions.
Lesson 2 • Free Body Diagrams and Equilibrium
Trains systematic isolation of bodies and application of equilibrium equations. Forms the analytical backbone for all load-path calculations in design.
Lesson 3 • Deflection and Stiffness
Applies integration and energy methods to compute beam and shaft deflections. Enables stiffness-driven design where deformation limits performance.
Lesson 4 • Torsion and Shaft Loading
Analyses circular and non-circular shafts under torsional and combined loads. Prepares students to design power-transmitting shafts in mechanical systems.
Lesson 5 • Static Failure Theories
Compares von Mises, Tresca, and brittle fracture criteria for predicting yielding. Equips students to select the appropriate failure theory for a given material and load.
Chapter 3HideHide detailsSee detailsFatigue, Fracture, and Reliability
Fatigue, Fracture, and Reliability
Lesson 1 • Fatigue Failure Criteria
Applies Goodman, Gerber, and Soderberg diagrams to combined mean and alternating stress. Enables safe-life design decisions for fluctuating load scenarios.
Lesson 2 • Reliability and Statistical Design
Applies statistical distributions to strength and load variability for probabilistic design. Connects reliability targets to factor-of-safety selection.
Lesson 3 • Cyclic Loading and S-N Curves
Introduces stress cycles, mean stress, and endurance limits from S-N data. Establishes the empirical basis for all fatigue life calculations.
Lesson 4 • Fracture Mechanics Fundamentals
Introduces stress intensity factors and crack growth to predict fracture-critical life. Supports damage-tolerant design where cracks may exist in service.
Lesson 5 • Fatigue Stress Concentration and Modifiers
Applies notch sensitivity and Marin factors to correct idealized endurance limits. Bridges laboratory data to real component geometry and surface conditions.
Chapter 4HideHide detailsSee detailsMaterial Selection and Surface Engineering
Material Selection and Surface Engineering
Lesson 1 • Polymers and Composites in Design
Covers thermoplastics, thermosets, and fibre-reinforced composites for lightweight structures. Addresses anisotropy, creep, and joining challenges unique to these materials.
Lesson 2 • Tribology and Wear in Design
Analyses friction, wear mechanisms, and lubrication to minimise surface degradation. Informs material pairing and surface finish decisions for sliding contacts.
Lesson 3 • Metals and Alloys in Design
Examines steels, aluminium, titanium, and cast iron for structural applications. Connects alloy composition and heat treatment to achievable mechanical properties.
Lesson 4 • Surface Treatments and Coatings
Reviews hardening, plating, thermal spray, and conversion coatings for wear and corrosion resistance. Links surface engineering choices to service life improvement.
Lesson 5 • Systematic Material Selection Methods
Uses performance indices and material property charts to rank candidates objectively. Provides a repeatable process applicable to any design constraint set.
Chapter 5HideHide detailsSee detailsTolerancing, Fits, and Geometric Dimensioning
Tolerancing, Fits, and Geometric Dimensioning
Lesson 1 • Tolerance Stack-Up Analysis
Performs worst-case and statistical (RSS) stack-up analysis for multi-part assemblies. Balances tight tolerances against manufacturing cost to meet functional gaps.
Lesson 2 • Fits and Clearances for Assemblies
Applies clearance, transition, and interference fit systems to shaft-hole assemblies. Enables correct fit selection for rotating, sliding, and press-fit applications.
Lesson 3 • Geometric Dimensioning and Tolerancing
Introduces GD&T symbols, datum reference frames, and feature control frames. Provides unambiguous geometric specification beyond simple plus-minus tolerancing.
Lesson 4 • Dimensional Tolerancing Fundamentals
Defines tolerance grades, bilateral and unilateral tolerances, and limit dimensions. Establishes the language of precision needed for all subsequent assembly work.
Chapter 6HideHide detailsSee detailsMachine Elements and Power Transmission
Machine Elements and Power Transmission
Lesson 1 • Shaft Design and Couplings
Integrates bending, torsion, and fatigue criteria to design power-transmitting shafts and select couplings. Produces a complete shaft layout with keys, shoulders, and fits specified.
Lesson 2 • Belt, Chain, and Flexible Drives
Sizes V-belt, synchronous belt, and roller chain drives for torque and speed requirements. Addresses tension ratios, service factors, and centre distance constraints.
Lesson 3 • Rolling Element Bearing Selection
Applies dynamic load ratings, L10 life, and speed limits to select ball and roller bearings. Connects bearing selection to shaft geometry, lubrication, and mounting constraints.
Lesson 4 • Gear Design and Analysis
Designs spur, helical, and bevel gears for bending and contact stress using standard rating methods. Integrates gear geometry, material, and lubrication into a complete gear set design.
Lesson 5 • Threaded Fasteners and Joints
Analyses bolt preload, joint stiffness, and fatigue of bolted connections under external loads. Enables correct fastener sizing and torque specification for structural joints.
Chapter 7HideHide detailsSee detailsDesign for Manufacture and Assembly
Design for Manufacture and Assembly
Lesson 1 • Design for Manufacturability Principles
Applies DFM rules to reduce part complexity, tool changes, and scrap rates. Translates manufacturing constraints directly into geometry and tolerance decisions.
Lesson 2 • Design for Assembly Principles
Uses DFA metrics to minimise part count, assembly time, and error potential. Guides redesign of assemblies for manual and automated assembly processes.
Lesson 3 • Manufacturing Process Overview for Designers
Surveys casting, forging, machining, forming, and additive processes from a design perspective. Connects process capabilities to achievable geometry, tolerance, and surface finish.
Lesson 4 • Cost Estimation in Early Design
Applies parametric and feature-based cost models to compare design alternatives early. Enables cost-driven design decisions before detailed drawings are produced.
Lesson 5 • Quality and Process Capability
Links design tolerances to process capability indices Cp and Cpk for defect prevention. Ensures that specified tolerances are achievable with available manufacturing processes.
Chapter 8HideHide detailsSee detailsIntegrated Mechanical System Design
Integrated Mechanical System Design
Lesson 1 • Design Documentation and Release
Produces a complete design package including drawings, BOM, and specifications for release. Covers engineering change control and configuration management fundamentals.
Lesson 2 • System-Level Design and Architecture
Decomposes system requirements into subsystem functions and interfaces using structured methods. Establishes the design architecture before detailed component work begins.
Lesson 3 • Failure Mode and Effects Analysis
Applies FMEA to identify, rank, and mitigate potential failure modes before production. Integrates risk reduction directly into the design iteration process.
Lesson 4 • Design Review and Verification Planning
Structures formal design reviews and builds a verification matrix linking requirements to tests. Ensures every requirement is traceable to a validation activity.
Lesson 5 • Capstone Design Project Execution
Guides students through a full design cycle from requirements to a reviewed design package. Integrates analysis, DFM, tolerancing, and documentation into one deliverable.
Your valid completion certificate
This course is for you:
Mechanical engineering students: ready to connect theory to real design work.
Junior engineers: wanting structured methods beyond what their job teaches them.
Product designers: needing stronger analytical grounding for physical component decisions.
Manufacturing engineers: looking to contribute earlier in the design development cycle.
Hobbyist inventors: building physical products and needing engineering rigor behind them.
Career changers: entering mechanical fields from adjacent technical or trade backgrounds.
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