
Machine Elements Course
Master the core mechanical components that power every machine, from fasteners and gears to bearings and shafts. This course gives engineers and engineering students the analytical tools to design, size, and evaluate machine elements with confidence. Build the technical foundation that separates competent designers from truly capable mechanical engineers.
What you will learn:
This course covers the full spectrum of machine element design, including threaded fasteners, shafts, keys, rolling and plain bearings, gears, belt and chain drives, springs, clutches, brakes, and couplings. You will learn to apply stress analysis, fatigue criteria, and standardized design methods to real mechanical components. Material selection, tolerancing, and failure mode identification are integrated throughout every topic. Supplementary chapters address tribology, seals, welded and adhesive joints, vibration, reliability methods, and CAD-based finite element analysis. By the end, you will be equipped to make informed design decisions across a wide range of mechanical engineering applications.
How you study in a practical way Machine Elements Course
How you practise Machine Elements 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 way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Machine Elements
Fundamentals of Machine Elements
Lesson 1 • Static and Dynamic Loading Concepts
Introduces static, dynamic, and cyclic loading types acting on elements. Understanding load types is prerequisite for stress and failure analysis.
Lesson 2 • Engineering Materials Overview
Covers metals, polymers, and composites used in machine elements. Material selection directly affects element performance and durability.
Lesson 3 • Stress, Strain, and Deformation Basics
Explains normal stress, shear stress, and elastic deformation in machine parts. These concepts underpin all subsequent element design calculations.
Lesson 4 • Introduction to Machine Elements
Defines machine elements and their role in mechanical systems. Establishes vocabulary and classification used throughout the course.
Lesson 5 • Standards and Tolerances in Design
Presents dimensional tolerancing, fits, and international standards for machine elements. Proper tolerancing ensures interchangeability and assembly compatibility.
Chapter 2HideHide detailsSee detailsFasteners and Threaded Connections
Fasteners and Threaded Connections
Lesson 1 • Thread Geometry and Standards
Covers thread profiles, pitch, lead, and standardised thread series. Geometry knowledge is essential for calculating thread strength and engagement.
Lesson 2 • Torque Specifications and Preload Control
Presents torque-tension relationships and methods for achieving target preload. Controlled preload is critical for joint integrity and leak prevention.
Lesson 3 • Bolt and Screw Types
Surveys bolt, screw, stud, and nut varieties and their specific applications. Correct fastener selection prevents joint failure and simplifies assembly.
Lesson 4 • Fastener Strength and Failure Modes
Examines tensile, shear, and fatigue failure in threaded fasteners. Failure mode knowledge guides material grade selection and safety factor application.
Lesson 5 • Bolted Joint Analysis
Analyzes preload, joint stiffness, and load sharing in bolted assemblies. Accurate joint analysis prevents fatigue failure and loosening in service.
Chapter 3HideHide detailsSee detailsShafts and Keys
Shafts and Keys
Lesson 1 • Keys, Splines, and Pins
Covers parallel keys, Woodruff keys, splines, and pins for torque transmission. Each connection type offers different torque capacity and assembly characteristics.
Lesson 2 • Shaft Design Fundamentals
Introduces shaft geometry, material selection, and design criteria for rotating members. Shaft design integrates bending, torsion, and axial load considerations.
Lesson 3 • Combined Loading on Shafts
Applies bending, torsion, and axial loads simultaneously to shaft cross-sections. Combined loading analysis determines critical sections requiring detailed stress checks.
Lesson 4 • Shaft Deflection and Critical Speed
Calculates lateral deflection and critical rotational speed to avoid resonance. Deflection limits and critical speed margins are mandatory design outputs.
Lesson 5 • Shaft Fatigue and Stress Concentrations
Addresses fatigue life prediction and stress concentration factors at shaft features. Fatigue analysis is essential for shafts subjected to rotating bending loads.
Chapter 4HideHide detailsSee detailsBearings and Lubrication
Bearings and Lubrication
Lesson 1 • Bearing Mounting and Fits
Explains interference fits, locating and floating arrangements, and preload. Correct mounting ensures load distribution and prevents ring creep.
Lesson 2 • Rolling Element Bearing Types
Surveys ball, roller, needle, and tapered roller bearings and their load capacities. Bearing type selection depends on load direction, speed, and space constraints.
Lesson 3 • Plain Bearings and Bushings
Covers hydrodynamic, hydrostatic, and boundary-lubricated plain bearings. Plain bearings suit low-speed, high-load, or space-constrained applications.
Lesson 4 • Lubrication Principles and Practices
Presents lubricant types, viscosity selection, and lubrication system design. Proper lubrication is the primary factor in achieving rated bearing life.
Lesson 5 • Bearing Load and Life Calculations
Applies dynamic load rating and L10 life equations to bearing selection. Accurate life prediction prevents premature failure and unplanned downtime.
Chapter 5HideHide detailsSee detailsGears and Gear Trains
Gears and Gear Trains
Lesson 1 • Gear Geometry and Terminology
Defines involute profile, module, pressure angle, and gear geometry parameters. Precise geometry knowledge is required for force analysis and manufacturing.
Lesson 2 • Gear Train Design and Ratios
Designs simple, compound, and planetary gear trains for target speed ratios. Gear train configuration affects size, efficiency, and output torque capacity.
Lesson 3 • Gear Tooth Strength and Wear
Applies bending strength and surface durability criteria to gear tooth design. Both failure modes must be checked to ensure adequate gear service life.
Lesson 4 • Spur and Helical Gear Analysis
Calculates tangential, radial, and axial forces on spur and helical gears. Force analysis feeds directly into shaft and bearing design calculations.
Lesson 5 • Bevel, Worm, and Special Gears
Extends gear analysis to bevel, worm, and rack-and-pinion configurations. Each type introduces unique force components and efficiency characteristics.
Chapter 6HideHide detailsSee detailsBelts, Chains, and Flexible Drives
Belts, Chains, and Flexible Drives
Lesson 1 • Flat and V-Belt Drive Design
Covers belt geometry, tension ratio, and power capacity for flat and V-belt drives. Belt selection balances power capacity, speed ratio, and centre distance.
Lesson 2 • Drive System Tensioning and Alignment
Addresses initial tension, sag, and shaft alignment requirements for flexible drives. Correct tensioning and alignment prevent premature wear and vibration.
Lesson 3 • Drive Selection and Comparison
Compares belt, chain, and gear drives across speed, torque, and environmental criteria. Systematic comparison guides optimal drive selection for a given application.
Lesson 4 • Roller Chain Drive Design
Presents roller chain geometry, sprocket design, and power rating methods. Chain drives transmit high torque at moderate speeds with positive engagement.
Lesson 5 • Synchronous Belt Drives
Analyzes toothed belt drives for precise timing and no-slip power transmission. Synchronous belts eliminate slip and suit applications requiring exact speed ratios.
Chapter 7HideHide detailsSee detailsSprings and Elastic Elements
Springs and Elastic Elements
Lesson 1 • Spring Systems and Energy Storage
Combines springs in series and parallel and calculates stored elastic energy. System-level spring analysis supports vibration isolation and energy recovery design.
Lesson 2 • Spring Types and Applications
Surveys compression, extension, torsion, and disc spring types and their uses. Application context determines spring type, material, and end configuration.
Lesson 3 • Leaf and Torsion Bar Springs
Analyzes multi-leaf and torsion bar springs used in vehicle and machinery suspensions. These elements store energy and provide controlled compliance in structures.
Lesson 4 • Spring Fatigue and Failure Analysis
Applies fatigue criteria to springs under cyclic compressive and torsional loads. Shot peening and presetting extend spring fatigue life significantly.
Lesson 5 • Helical Spring Design
Derives spring rate, stress, and deflection equations for helical coil springs. Wahl correction factor accounts for curvature and direct shear stress effects.
Chapter 8HideHide detailsSee detailsClutches, Brakes, and Couplings
Clutches, Brakes, and Couplings
Lesson 1 • Friction Clutch Design
Analyzes disc, cone, and centrifugal clutch configurations for torque transmission. Clutch design balances engagement torque, actuation force, and thermal capacity.
Lesson 2 • Misalignment and Vibration in Couplings
Quantifies angular, parallel, and axial misalignment effects on coupling loads. Excessive misalignment generates dynamic forces that damage bearings and seals.
Lesson 3 • Thermal Analysis of Clutches and Brakes
Calculates heat generated during engagement and braking and evaluates thermal capacity. Thermal overload causes lining degradation and loss of friction coefficient.
Lesson 4 • Rigid and Flexible Shaft Couplings
Compares rigid, jaw, disc, and gear couplings for shaft-to-shaft connection. Coupling selection depends on misalignment tolerance, torque, and speed requirements.
Lesson 5 • Brake Types and Torque Analysis
Covers drum, disc, and band brakes and their torque and actuation force relationships. Self-energizing effects in drum brakes significantly alter required actuation force.
Your valid completion certificate
This course is for you:
Mechanical engineering student: ready to connect coursework to real component design decisions.
Early-career design engineer: filling practical gaps left by a theory-heavy university program.
Maintenance or reliability engineer: seeking deeper understanding of why machine parts fail.
Mechatronics or manufacturing engineer: needing stronger grounding in mechanical drive-train components.
Career changer from civil or electrical engineering: building foundational mechanical design competency quickly.
Hobbyist machine builder: wanting engineering-grade methods behind custom mechanical project decisions.
What our students say
Your classes are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of my interest without needing to change platforms... I thank you for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can change chapters and skip content that I don't need.

I like the content and the way of presentation and video transcription, which speeds up the process!

The platform is fast, simple to use. The diversity of content and complementary videos help a lot in learning.

Top qualifications
FAQs
Who is Dedika?
Is the certificate valid in India?
Are the courses free?
What is the course workload?
What are the courses like?
How do the courses work?
What is the duration of the courses?
What is the cost or price of the courses?
What is an EAD or online course and how does it work?
PDF Course




















