
Metallurgical Engineer Course
Master the full spectrum of metallurgical engineering, from atomic structure and phase diagrams to corrosion protection and failure analysis. This course equips you with the technical depth to select alloys, design heat treatments, and troubleshoot real-world material failures. Build the expertise that industry demands across steel, aluminum, titanium, nickel superalloys, and beyond.
What you will learn:
You will develop a rigorous understanding of metallic materials, starting with crystal structures, diffusion, and mechanical properties, then advancing through phase diagrams, ferrous and non-ferrous alloy systems, and deformation processing. You will learn to interpret TTT and CCT diagrams, specify surface hardening treatments, and design casting and gating systems. The course also covers electrochemical corrosion theory, protective coating selection, fracture mechanics, and fatigue analysis. Supplementary modules introduce computational tools like CALPHAD, additive manufacturing metallurgy, welding metallurgy, and sustainable metal production. By the end, you will be prepared to make confident, evidence-based engineering decisions in any metals-intensive industry.
How you study in practice Metallurgical Engineer Course
How you practise Metallurgical Engineer Course
For companies looking to train their team
With Dedika for Business, 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 detailsFoundations of Metallurgical Engineering
Foundations of Metallurgical Engineering
Lesson 1 • Mechanical Properties Overview
Defines stress, strain, elasticity, and plasticity using tensile test data. Provides the property vocabulary used throughout the entire course.
Lesson 2 • Crystallographic Defects
Identifies point, line, and planar defects and their formation mechanisms. Explains how defects control strength and diffusion rates.
Lesson 3 • Atomic Structure and Metallic Bonding
Covers electron configuration, metallic bond formation, and resulting conductivity. Links atomic-scale interactions to bulk material behavior.
Lesson 4 • Crystal Structures in Metals
Examines BCC, FCC, and HCP lattice geometries and their packing factors. Connects crystal type to ductility and slip behavior.
Lesson 5 • Diffusion in Metallic Systems
Presents Fick's laws and activation energy concepts governing atomic migration. Applies diffusion theory to alloying and heat treatment outcomes.
Chapter 2HideHide detailsSee detailsPhase Diagrams and Thermodynamics
Phase Diagrams and Thermodynamics
Lesson 1 • Ternary and Multicomponent Systems
Extends binary concepts to ternary diagrams and isothermal sections. Prepares students for commercial alloy systems with multiple alloying elements.
Lesson 2 • Non-Equilibrium Transformations
Examines TTT and CCT diagrams to predict microstructures under rapid cooling. Bridges equilibrium thermodynamics with real processing conditions.
Lesson 3 • Reading Binary Phase Diagrams
Teaches lever rule, liquidus, solidus, and solvus line interpretation. Enables prediction of phase fractions at any temperature and composition.
Lesson 4 • Thermodynamic Fundamentals
Introduces Gibbs free energy, enthalpy, and entropy as drivers of phase stability. Establishes the thermodynamic framework for all subsequent phase analysis.
Lesson 5 • Solidification and Segregation
Analyzes nucleation, dendritic growth, and solute redistribution during solidification. Connects casting conditions to segregation defects and microstructural uniformity.
Chapter 3HideHide detailsSee detailsFerrous Metallurgy and Steel
Ferrous Metallurgy and Steel
Lesson 1 • Steel Classification Systems
Surveys carbon, alloy, stainless, and tool steel families by composition and use. Enables engineers to navigate industry designation systems confidently.
Lesson 2 • Hardenability and Quenching
Explains Jominy end-quench testing and alloying effects on hardenability. Connects hardenability data to section size and quench media selection.
Lesson 3 • Iron-Carbon Phase Diagram
Details the Fe-C diagram including ferrite, austenite, cementite, and pearlite fields. Provides the foundation for all steel heat treatment decisions.
Lesson 4 • Tempering and Martensite Decomposition
Describes martensite formation, tetragonality, and staged decomposition during tempering. Guides selection of tempering temperature for target hardness and toughness.
Lesson 5 • Surface Hardening Processes
Compares carburizing, nitriding, induction, and flame hardening for case depth control. Matches surface treatment to wear and fatigue requirements.
Chapter 4HideHide detailsSee detailsNon-Ferrous Alloys and Applications
Non-Ferrous Alloys and Applications
Lesson 1 • Nickel Superalloys
Examines gamma-prime strengthening, creep resistance, and oxidation behavior in nickel superalloys. Prepares students for high-temperature turbine component selection.
Lesson 2 • Titanium Alloys
Distinguishes alpha, beta, and alpha-beta titanium alloys and their heat treatment responses. Highlights specific strength and corrosion resistance advantages.
Lesson 3 • Copper and Copper Alloys
Reviews brass, bronze, and cupronickel compositions, properties, and fabrication routes. Addresses dezincification and stress corrosion cracking risks.
Lesson 4 • Aluminum Alloys and Aging
Covers wrought and cast aluminum series, precipitation hardening, and T-temper designations. Links aging curves to GP zone and precipitate evolution.
Lesson 5 • Magnesium and Zinc Alloys
Surveys lightweight magnesium and die-cast zinc alloys for automotive and consumer applications. Addresses flammability, corrosion, and recycling considerations.
Chapter 5HideHide detailsSee detailsDeformation Processing and Forming
Deformation Processing and Forming
Lesson 1 • Rolling and Extrusion Processes
Covers flat rolling, shape rolling, and direct and indirect extrusion mechanics and tooling. Calculates draft, reduction ratio, and extrusion pressure.
Lesson 2 • Texture and Anisotropy Control
Introduces crystallographic texture, pole figures, and ODF analysis in deformed metals. Explains how texture engineering improves formability and magnetic properties.
Lesson 3 • Plastic Deformation Mechanisms
Explains slip systems, dislocation glide, twinning, and work hardening at the microstructural level. Provides the mechanistic basis for all forming process analysis.
Lesson 4 • Forging and Drawing Operations
Analyzes open-die, closed-die forging, and wire drawing force requirements and die design. Connects forging flow lines to fatigue and impact performance.
Lesson 5 • Hot and Cold Working
Contrasts recovery, recrystallization, and grain growth during hot working with strain hardening in cold working. Links processing temperature to final grain size and texture.
Chapter 6HideHide detailsSee detailsCasting and Solidification Processing
Casting and Solidification Processing
Lesson 1 • Casting Process Overview
Surveys sand, permanent mold, die, and investment casting processes by tolerance and volume. Establishes selection criteria linking process to alloy and geometry.
Lesson 2 • Advanced Solidification Techniques
Examines directional solidification, single-crystal growth, and rapid solidification processing. Connects solidification rate to microstructural refinement and amorphous phase formation.
Lesson 3 • Solidification Defects and Control
Identifies shrinkage, porosity, hot tears, and inclusions with their root causes. Links mold design and alloy chemistry to defect prevention strategies.
Lesson 4 • Gating and Riser System Design
Applies fluid flow and Chvorinov's rule to design gating ratios and riser volumes. Prevents misruns, cold shuts, and shrinkage porosity through proper design.
Lesson 5 • Continuous Casting of Steel
Describes tundish design, mold oscillation, and secondary cooling in continuous casting. Connects casting speed and cooling rate to slab quality and segregation.
Chapter 7HideHide detailsSee detailsCorrosion Science and Protection
Corrosion Science and Protection
Lesson 1 • Electrochemical Corrosion Fundamentals
Establishes galvanic cell theory, mixed potential, and Faraday's law for corrosion rate calculation. Provides the electrochemical basis for all corrosion analysis.
Lesson 2 • Protective Coatings and Inhibitors
Compares organic coatings, metallic platings, conversion coatings, and chemical inhibitors. Selects protection systems based on environment severity and service life.
Lesson 3 • Passivation and Polarization
Analyzes Evans diagrams, passivation curves, and transpassive dissolution behavior. Links alloy composition to passive film stability and breakdown potential.
Lesson 4 • Corrosion Types and Mechanisms
Classifies uniform, pitting, crevice, intergranular, and stress corrosion cracking by mechanism. Enables accurate diagnosis of field corrosion failures.
Lesson 5 • Cathodic and Anodic Protection
Explains impressed current and sacrificial anode cathodic protection design criteria. Addresses anodic protection applicability for active-passive alloy systems.
Chapter 8HideHide detailsSee detailsFailure Analysis and Quality Assurance
Failure Analysis and Quality Assurance
Lesson 1 • Fatigue Failure Analysis
Covers S-N curves, fatigue crack initiation, propagation, and Paris law crack growth rates. Connects surface finish, residual stress, and stress concentration to fatigue life.
Lesson 2 • Systematic Failure Investigation
Applies a structured protocol: evidence collection, fractography, chemical analysis, and corrective action. Produces defensible root cause reports meeting industry standards.
Lesson 3 • Non-Destructive Evaluation Methods
Surveys radiography, ultrasonic, magnetic particle, dye penetrant, and eddy current techniques. Matches NDE method to defect type, geometry, and material.
Lesson 4 • Creep and High-Temperature Failure
Analyzes primary, secondary, and tertiary creep stages and Larson-Miller parameter use. Applies creep data to component life prediction at elevated temperatures.
Lesson 5 • Fracture Mechanics Principles
Introduces stress intensity factor, fracture toughness, and LEFM crack growth criteria. Enables calculation of critical flaw size for safe-life design.
Your valid completion certificate
This course is for you:
Mechanical engineer: wants to make informed alloy and heat treatment decisions independently.
Quality or inspection technician: ready to advance into an engineering or materials role.
Manufacturing engineer: needs stronger metallurgical grounding to solve recurring production problems.
Aerospace or automotive designer: must specify metals confidently for safety-critical components.
Recent engineering graduate: looking to deepen materials science knowledge beyond university fundamentals.
Career changer from chemistry or physics: drawn to applied industrial materials and metals work.
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