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Materials Technology Course
More than 2 million students worldwide

Materials Technology Course

Master the full spectrum of engineering materials — from atomic bonding and phase diagrams to composites, corrosion, and computational modeling. This course gives you the technical depth to select, test, and specify materials with confidence. Whether you work in manufacturing, aerospace, or product development, you'll gain skills that translate directly to real engineering decisions.

Dedika for Business

What you will learn:

This course covers the science and engineering of metals, polymers, ceramics, and composites from the ground up. You will learn how atomic structure and microstructure control mechanical, thermal, and electrical properties. You will apply stress‑strain analysis, fracture mechanics, and fatigue theory to real loading scenarios. Corrosion mechanisms and protection strategies are presented, along with systematic material selection using Ashby charts and performance indices. Characterization techniques such as SEM, XRD, and thermal analysis are explained so you can interpret lab data accurately. Advanced topics include nanomaterials, additive manufacturing, sustainability metrics, and machine‑learning tools for materials discovery. By the end, you will be able to specify materials confidently for complex engineering components.

How you study in practice Materials Technology Course

How you practise Materials Technology Course

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Course Content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Materials Science

  • Lesson 1 • Classification of Engineering Materials

    Surveys metals, ceramics, polymers, and composites by structure and application. Provides a framework for material selection decisions.

  • Lesson 2 • Crystal Structures and Defects

    Examines unit cells, lattice systems, and common crystal structures. Connects crystallographic order to mechanical and electrical properties.

  • Lesson 3 • Material Properties Overview

    Introduces mechanical, thermal, electrical, and optical property categories. Prepares students to interpret material datasheets accurately.

  • Lesson 4 • Atomic Structure and Bonding

    Covers atomic models, electron configuration, and primary bond types. Establishes the link between bonding and bulk material behavior.

  • Lesson 5 • Phase Diagrams and Microstructure

    Explains binary phase diagrams, phase rules, and microstructure formation. Links processing history to resulting microstructural features.

Chapter 2See details

Mechanical Behavior of Materials

  • Lesson 1 • Fatigue and Cyclic Loading

    Examines S-N curves, fatigue crack initiation, and endurance limits. Prepares students to assess component life under repeated loading.

  • Lesson 2 • Stress, Strain, and Elasticity

    Defines normal and shear stress, strain tensors, and elastic moduli. Grounds subsequent plasticity and fracture topics in continuum mechanics.

  • Lesson 3 • Creep and High-Temperature Behavior

    Describes creep stages, diffusion-controlled mechanisms, and stress rupture. Applies to materials used in elevated-temperature service.

  • Lesson 4 • Plastic Deformation Mechanisms

    Analyzes dislocation motion, slip systems, and work hardening. Explains why metals strengthen under cold working.

  • Lesson 5 • Fracture and Toughness

    Covers brittle and ductile fracture modes, stress intensity factors, and fracture toughness testing. Connects microstructure to crack propagation resistance.

Chapter 3See details

Metals and Alloy Systems

  • Lesson 1 • Heat Treatment of Steels

    Covers annealing, normalizing, quenching, and tempering processes. Connects thermal cycles to microstructure and mechanical property outcomes.

  • Lesson 2 • Copper, Nickel, and Superalloys

    Reviews copper alloy families, nickel-based superalloy strengthening, and high-temperature oxidation resistance. Connects to turbine and electrical applications.

  • Lesson 3 • Iron-Carbon System and Steels

    Analyzes the Fe-C phase diagram, steel grades, and heat treatment responses. Establishes the basis for all subsequent steel processing topics.

  • Lesson 4 • Cast Irons and Specialty Steels

    Distinguishes gray, white, ductile, and malleable cast irons by microstructure. Introduces stainless, tool, and high-speed steels for specialized use.

  • Lesson 5 • Aluminum and Titanium Alloys

    Examines alloy designations, precipitation hardening, and corrosion behavior. Targets aerospace and lightweight structural applications.

Chapter 4See details

Polymers and Elastomers

  • Lesson 1 • Polymer Degradation and Stabilization

    Identifies thermal, UV, oxidative, and hydrolytic degradation pathways. Introduces stabilizer systems to extend service life.

  • Lesson 2 • Thermoplastics and Thermosets

    Contrasts melt-processable thermoplastics with cross-linked thermosets by structure and recyclability. Guides material selection for manufacturing processes.

  • Lesson 3 • Elastomers and Rubber Technology

    Covers natural and synthetic rubber, vulcanization, and viscoelastic behavior. Applies to seals, tires, and vibration-damping components.

  • Lesson 4 • Polymer Processing Methods

    Surveys injection molding, extrusion, blow molding, and thermoforming. Links process parameters to final part quality and dimensional accuracy.

  • Lesson 5 • Polymer Chain Architecture

    Explains molecular weight, chain configuration, and tacticity effects on properties. Provides the structural basis for all polymer behavior topics.

Chapter 5See details

Ceramics, Glasses, and Composites

  • Lesson 1 • Ceramic Processing and Sintering

    Covers powder preparation, compaction, sintering, and densification. Connects processing variables to final microstructure and mechanical strength.

  • Lesson 2 • Composite Manufacturing and Failure

    Surveys hand layup, resin transfer molding, filament winding, and autoclave curing. Identifies delamination, fiber pull-out, and matrix cracking failure modes.

  • Lesson 3 • Composite Material Fundamentals

    Defines matrix, reinforcement, and interface roles in composite systems. Introduces rule-of-mixtures and laminate theory for property estimation.

  • Lesson 4 • Glass Formation and Properties

    Explains glass network formers, modifiers, and viscosity-temperature behavior. Applies to optical, structural, and specialty glass applications.

  • Lesson 5 • Ceramic Structures and Properties

    Reviews ionic and covalent ceramic bonding, crystal structures, and brittleness origins. Establishes why ceramics excel in hardness and thermal stability.

Chapter 6See details

Materials Characterization Techniques

  • Lesson 1 • Optical and Electron Microscopy

    Covers sample preparation, optical metallography, SEM, and TEM imaging modes. Connects microstructural observation to property interpretation.

  • Lesson 2 • X-Ray Diffraction Analysis

    Explains Bragg's law, diffractometer operation, and phase identification. Applies to residual stress measurement and texture analysis.

  • Lesson 3 • Thermal Analysis Methods

    Introduces DSC, TGA, and dilatometry for phase transformation and stability studies. Links thermal data to processing and service temperature limits.

  • Lesson 4 • Spectroscopic Composition Analysis

    Surveys EDS, WDS, XRF, and AES for elemental composition determination. Enables quantitative analysis of alloy and coating compositions.

  • Lesson 5 • Mechanical Testing Standards

    Reviews tensile, hardness, impact, and fatigue testing procedures and data interpretation. Ensures compliance with internationally recognized testing protocols.

Chapter 7See details

Corrosion Science and Prevention

  • Lesson 1 • Corrosion Testing and Monitoring

    Introduces salt spray, immersion, electrochemical impedance, and field monitoring methods. Enables quantitative corrosion rate assessment in service.

  • Lesson 2 • Electrochemical Corrosion Fundamentals

    Covers oxidation-reduction reactions, galvanic cells, and electrode potentials. Provides the electrochemical basis for all corrosion forms discussed later.

  • Lesson 3 • High-Temperature Oxidation

    Analyzes oxide scale growth kinetics, Pilling-Bedworth ratio, and protective scale formation. Applies to furnace components and turbine hardware.

  • Lesson 4 • Corrosion Protection Methods

    Reviews coatings, cathodic protection, inhibitors, and material selection strategies. Equips students to specify cost-effective corrosion control systems.

  • Lesson 5 • Forms of Corrosion

    Identifies galvanic, crevice, pitting, intergranular, and stress corrosion cracking. Connects each form to specific microstructural or environmental triggers.

Chapter 8See details

Materials Selection and Design Integration

  • Lesson 1 • Cost, Availability, and Sustainability

    Evaluates material cost drivers, supply chain risk, and environmental impact metrics. Integrates economic and sustainability constraints into selection decisions.

  • Lesson 2 • Design for Manufacture and Assembly

    Aligns material choice with manufacturing process capabilities and assembly constraints. Reduces redesign cycles by integrating process limits early.

  • Lesson 3 • Performance Index and Ashby Charts

    Introduces performance indices, material property charts, and multi-objective optimization. Provides a quantitative framework for comparing material families.

  • Lesson 4 • Case Studies in Material Selection

    Applies all selection tools to aerospace, biomedical, and energy sector case studies. Consolidates chapter skills through realistic, multi-constraint design problems.

  • Lesson 5 • Failure Analysis and Root Cause

    Applies systematic failure analysis methodology to identify root causes from physical evidence. Translates findings into corrective material or design changes.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical engineers: seeking deeper expertise in material behavior and selection.

  • Manufacturing technicians: wanting to understand why materials fail on the production floor.

  • Product designers: needing to justify material choices beyond aesthetics and cost.

  • Quality engineers: looking to connect inspection findings to underlying material science.

  • Career changers: entering materials or metallurgy fields from adjacent technical backgrounds.

  • Recent engineering graduates: building practical materials knowledge beyond classroom theory.

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