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Metallurgy Course
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Metallurgy Course

4,5

Master the science behind metals — from atomic structure and phase diagrams to heat treatment, corrosion, and failure analysis. This comprehensive metallurgy course gives engineers and materials professionals the technical depth to make confident alloy selection, process design, and quality assurance decisions. Build the expertise that separates a competent technician from a trusted metallurgical authority.

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What you will learn:

This course covers the full scope of metallurgical engineering, starting with atomic bonding, crystal structures, and mechanical properties. You will learn to read phase diagrams, apply Fick's laws, and use TTT diagrams to control microstructure through thermal processing. Heat treatment of steels, non-ferrous alloy systems, and corrosion protection strategies are covered in rigorous detail. Advanced topics include additive manufacturing microstructures, welding metallurgy, CALPHAD computational modelling, and characterisation techniques such as SEM and XRD. By the end, you will conduct failure analyses and produce professional engineering reports with clear, defensible recommendations.

How you study in practice Metallurgy Course

How you practise Metallurgy Course

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Course content

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

Chapter 1See details

Foundations of Metallurgy and Materials

  • Lesson 1 • Crystal Structures in Metals

    Examines BCC, FCC, and HCP unit cells and their packing efficiency. Links crystal geometry to density, ductility, and slip system availability.

  • Lesson 2 • Imperfections and Defects in Crystals

    Identifies point, line, and planar defects and their origin during solidification. Connects defect density to strength, diffusion rate, and failure susceptibility.

  • Lesson 3 • Classification of Metals and Alloys

    Distinguishes ferrous, non-ferrous, and refractory metal families and their alloy systems. Enables accurate material selection vocabulary used throughout the course.

  • Lesson 4 • Introduction to Mechanical Properties

    Defines stress, strain, hardness, toughness, and fatigue resistance as measurable material descriptors. Establishes the property framework referenced in every subsequent chapter.

  • Lesson 5 • Atomic Structure and Metallic Bonding

    Covers electron configuration, metallic bond formation, and lattice energy. Provides the atomic-level foundation for understanding all subsequent mechanical and thermal properties.

Chapter 2See details

Phase Diagrams and Equilibrium

  • Lesson 1 • Solidification and Microsegregation

    Describes nucleation, dendritic growth, and solute redistribution during solidification. Explains how cooling rate creates compositional gradients affecting final properties.

  • Lesson 2 • Thermodynamic Principles of Phase Stability

    Introduces Gibbs free energy, enthalpy, and entropy as drivers of phase stability. Grounds phase diagram interpretation in thermodynamic reasoning rather than memorisation.

  • Lesson 3 • Iron-Carbon Phase Diagram in Depth

    Analyses the Fe-C system from pure iron to 6.67 wt% carbon, covering all invariant reactions. Directly enables steel and cast iron microstructure prediction.

  • Lesson 4 • Reading Binary Phase Diagrams

    Teaches liquidus, solidus, solvus lines, and two-phase regions in binary systems. Students extract phase identity, composition, and fraction from any diagram point.

  • Lesson 5 • Introduction to Ternary Systems

    Extends binary concepts to three-component systems using isothermal sections and liquidus projections. Prepares students for multi-element alloy design encountered in advanced chapters.

Chapter 3See details

Diffusion and Solid-State Transformations

  • Lesson 1 • TTT and CCT Diagram Interpretation

    Reads time-temperature-transformation and continuous cooling transformation diagrams for steels. Students select cooling paths to achieve targeted microstructures such as martensite or bainite.

  • Lesson 2 • Fick's Laws and Diffusion Calculations

    Applies Fick's first and second laws to steady-state and transient diffusion problems. Enables quantitative prediction of concentration profiles in carburising and nitriding.

  • Lesson 3 • Mechanisms of Atomic Diffusion

    Explains vacancy, interstitial, and grain boundary diffusion pathways and their activation energies. Establishes the physical basis for all thermally driven microstructural changes.

  • Lesson 4 • Nucleation and Growth Kinetics

    Models classical nucleation theory and interface-controlled growth rates for solid-state phases. Connects thermodynamic driving force to the time required for transformation completion.

  • Lesson 5 • Precipitation and Age Hardening Kinetics

    Traces the sequence of GP zones, metastable precipitates, and equilibrium phases during aging. Quantifies peak hardness timing and overaging effects in aluminium and nickel alloys.

Chapter 4See details

Mechanical Behaviour and Deformation

  • Lesson 1 • Strengthening Mechanisms in Metals

    Covers solid solution, work hardening, grain refinement, and precipitation strengthening strategies. Provides the mechanistic toolkit for alloy design decisions in later chapters.

  • Lesson 2 • Plastic Deformation and Dislocation Motion

    Explains slip, twinning, and dislocation glide as plastic deformation mechanisms. Connects critical resolved shear stress to macroscopic yield strength.

  • Lesson 3 • Fracture Mechanics Fundamentals

    Introduces stress intensity factor, fracture toughness, and Griffith crack theory for brittle and ductile fracture. Enables critical flaw size calculation for structural integrity assessment.

  • Lesson 4 • Fatigue and Creep Behaviour

    Characterises S-N curves, fatigue crack propagation, and creep deformation under sustained load. Applies Paris law and Larson-Miller parameter to service life estimation.

  • Lesson 5 • Elastic Deformation and Moduli

    Quantifies Young's modulus, shear modulus, and Poisson's ratio from atomic bonding arguments. Links interatomic potential curves to macroscopic stiffness values.

Chapter 5See details

Heat Treatment of Steels

  • Lesson 1 • Tempering and Retained Austenite

    Describes tempering stages, carbide precipitation, and retained austenite transformation during reheating. Balances hardness reduction against toughness improvement for service requirements.

  • Lesson 2 • Annealing and Normalising Processes

    Distinguishes full annealing, process annealing, and normalising by temperature range and cooling rate. Explains how each cycle relieves stress, refines grain size, or restores ductility.

  • Lesson 3 • Heat Treatment Defects and Quality Control

    Identifies quench cracking, decarburisation, distortion, and soft spots as common heat treatment defects. Applies corrective process adjustments and inspection methods to ensure conformance.

  • Lesson 4 • Quenching and Hardenability

    Covers quench media selection, cooling rate gradients, and the Jominy end-quench test for hardenability. Links alloy composition to depth of hardening in cross-sections.

  • Lesson 5 • Surface Hardening Techniques

    Compares flame hardening, induction hardening, carburising, and nitriding for selective surface treatment. Selects process based on case depth, distortion tolerance, and base material.

Chapter 6See details

Non-Ferrous Alloys and Processing

  • Lesson 1 • Nickel Superalloys for High Temperature

    Analyses gamma-prime strengthening, directional solidification, and single-crystal casting in nickel superalloys. Addresses oxidation resistance coatings and creep life prediction.

  • Lesson 2 • Magnesium and Zinc Alloy Applications

    Reviews lightweight magnesium die casting alloys and zinc pressure die casting systems. Evaluates corrosion protection strategies and recyclability for automotive and consumer applications.

  • Lesson 3 • Titanium Alloys and Phase Classification

    Distinguishes alpha, beta, and alpha-beta titanium alloys by microstructure and processing response. Highlights specific strength, biocompatibility, and corrosion resistance advantages.

  • Lesson 4 • Aluminium Alloys and Temper Designations

    Covers wrought and cast aluminium series, temper codes, and age-hardening response. Connects composition to corrosion resistance, strength, and weldability trade-offs.

  • Lesson 5 • Copper and Copper Alloy Systems

    Examines brass, bronze, and cupronickel compositions, processing, and electrical conductivity trade-offs. Addresses dezincification, stress corrosion, and selection for electrical applications.

Chapter 7See details

Corrosion Science and Protection

  • Lesson 1 • Protective Coatings and Surface Treatments

    Compares organic coatings, metallic platings, conversion coatings, and thermal spray for barrier protection. Evaluates adhesion, porosity, and service environment compatibility.

  • Lesson 2 • Electrochemical Fundamentals of Corrosion

    Establishes half-cell reactions, standard electrode potentials, and the galvanic series for metals. Provides the electrochemical framework for diagnosing all corrosion forms.

  • Lesson 3 • Corrosion Rate Measurement and Prediction

    Applies Tafel extrapolation, linear polarisation resistance, and weight loss methods to quantify corrosion rate. Converts electrochemical data to penetration rate for service life estimation.

  • Lesson 4 • Cathodic Protection and Inhibitors

    Designs impressed current and sacrificial anode cathodic protection systems for buried and submerged structures. Selects chemical inhibitors by adsorption mechanism and environment compatibility.

  • Lesson 5 • Forms of Corrosion and Recognition

    Identifies uniform, galvanic, pitting, crevice, intergranular, and stress corrosion cracking by morphology. Enables field diagnosis and root cause assignment for each corrosion type.

Chapter 8See details

Failure Analysis and Quality Assurance

  • Lesson 1 • Metallographic Examination Methods

    Covers sectioning, mounting, grinding, polishing, and etching for optical and electron microscopy. Reveals microstructural evidence of overheating, decarburisation, and improper heat treatment.

  • Lesson 2 • Quality Systems and Corrective Action

    Integrates statistical process control, material certification, and corrective action reporting into quality assurance. Aligns metallurgical practice with industry quality management requirements.

  • Lesson 3 • Failure Analysis Methodology

    Presents the systematic investigation sequence from evidence collection through root cause determination. Establishes a repeatable framework applicable to all failure modes encountered in practice.

  • Lesson 4 • Fractographic Analysis Techniques

    Interprets fracture surface features including beach marks, chevron patterns, and dimples using SEM. Links fracture morphology to loading mode, environment, and material condition.

  • Lesson 5 • Non-Destructive Testing Methods

    Applies ultrasonic, radiographic, magnetic particle, and dye penetrant testing to detect subsurface and surface flaws. Selects method based on flaw type, geometry, and material conductivity.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical engineer wanting deeper materials knowledge for design decisions.

  • Manufacturing technician ready to move into a metallurgical specialist role.

  • Aerospace or automotive engineer selecting alloys under demanding performance constraints.

  • Quality inspector seeking the science behind the standards they already enforce.

  • Recent engineering graduate building foundational expertise before entering industry.

  • Career changer from chemistry or physics transitioning into materials engineering.

What our students say

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