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Extractive Metallurgy Course
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Extractive Metallurgy Course

4.5

Master the full spectrum of metal extraction — from ore preparation and mineral concentration to pyrometallurgy, hydrometallurgy, and electrorefining. This course delivers the technical depth that mining and metallurgical engineers need to design, evaluate, and optimize real processing plants. Build the skills that drive production decisions at every stage of the metal value chain.

Dedika for students

What your team will master:

This course covers major unit operations in extractive metallurgy, from thermodynamic and kinetic fundamentals through comminution, flotation, gravity concentration, roasting, smelting, converting, leaching, solvent extraction, and electrowinning. You will learn to read phase diagrams, build mass balances, and create integrated plant flowsheets. The curriculum addresses copper, gold, aluminum, zinc, lead, other reactive metals, plus secondary metallurgy and recycling. Topics include environmental management, process control, geometallurgy, and emerging methods such as bioleaching, hydrogen reduction, and AI-driven optimization. Techno-economic evaluation methods enable financial comparison of competing flowsheet options. By course end you will be able to analyze, design, and troubleshoot metallurgical operations for a wide range of commodities and processing routes.

How your team learns in practice Extractive Metallurgy Course

How your team practices Extractive Metallurgy Course

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Course content

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

Chapter 1See details

Foundations of Extractive Metallurgy

  • Lesson 1 • Thermodynamic Principles in Metallurgy

    Covers Gibbs free energy, enthalpy, and entropy as applied to metal-oxide and metal-sulfide systems. Provides the thermodynamic basis for reduction reactions.

  • Lesson 2 • Kinetics of Metallurgical Reactions

    Explains rate-controlling steps, activation energy, and mass transfer in heterogeneous systems. Links kinetic theory to reactor and furnace design choices.

  • Lesson 3 • Introduction to Metals and Ores

    Defines metallic minerals, ore grades, and gangue. Establishes vocabulary used throughout all subsequent processing stages.

  • Lesson 4 • Phase Diagrams and Slag Chemistry

    Interprets binary and ternary phase diagrams relevant to smelting. Introduces slag composition, basicity, and its role in metal-slag separation.

  • Lesson 5 • Overview of Extraction Routes

    Maps the three primary extraction pathways: pyrometallurgy, hydrometallurgy, and electrometallurgy. Connects route selection to ore type and target metal.

Chapter 2See details

Ore Preparation and Comminution

  • Lesson 1 • Energy Efficiency in Comminution

    Analyzes energy consumption models and identifies inefficiencies in crushing and grinding circuits. Guides circuit optimization to reduce specific energy consumption.

  • Lesson 2 • Grinding Mills and Media

    Examines ball, rod, SAG, and autogenous mills with respect to charge dynamics and product size. Connects grinding efficiency to downstream liberation.

  • Lesson 3 • Liberation Analysis and Mineralogy

    Introduces automated mineralogy tools to quantify mineral liberation at target grind sizes. Links liberation data to concentration process selection.

  • Lesson 4 • Crushing Principles and Equipment

    Covers jaw, gyratory, and cone crushers, including force mechanics and reduction ratios. Establishes the first stage of ore preparation for all extraction routes.

  • Lesson 5 • Particle Size Analysis and Classification

    Teaches sieve analysis, laser diffraction, and hydrocyclone classification. Provides tools to characterize and control product size distributions.

Chapter 3See details

Mineral Concentration Techniques

  • Lesson 1 • Magnetic and Electrostatic Separation

    Examines low- and high-intensity magnetic separators and electrostatic drum separators. Applies to iron ore, ilmenite, and mineral sand processing.

  • Lesson 2 • Dewatering and Solid-Liquid Separation

    Covers thickening, filtration, and drying as final steps in concentration circuits. Prepares concentrate for transport or downstream metallurgical treatment.

  • Lesson 3 • Flotation Circuit Design and Reagents

    Covers rougher, scavenger, and cleaner circuit configurations and reagent dosing strategies. Connects circuit layout to grade-recovery trade-offs.

  • Lesson 4 • Froth Flotation Fundamentals

    Explains surface chemistry, collector adsorption, and bubble-particle attachment. Establishes the physicochemical basis for selective mineral flotation.

  • Lesson 5 • Gravity Concentration Methods

    Covers jigs, spirals, shaking tables, and dense-medium separation based on density differences. Applies to coarse, heavy minerals such as gold, tin, and chromite.

Chapter 4See details

Pyrometallurgy: Roasting and Smelting

  • Lesson 1 • Roasting Principles and Objectives

    Explains oxidative, sulfating, and chloridizing roasting to convert sulfides and carbonates. Connects roasting products to subsequent leaching or smelting requirements.

  • Lesson 2 • Flash and Reverberatory Smelting

    Examines flash smelting for copper and nickel concentrates and reverberatory furnace limitations. Highlights autogenous heat balance and environmental advantages of flash smelting.

  • Lesson 3 • Smelting Thermodynamics and Reactions

    Analyzes reduction and matte-forming reactions using Ellingham diagrams and activity models. Provides the thermodynamic foundation for furnace charge design.

  • Lesson 4 • Blast Furnace and Electric Arc Furnace

    Covers blast furnace ironmaking and electric arc furnace steelmaking as primary smelting platforms. Compares energy sources, reductants, and productivity metrics.

  • Lesson 5 • Fluidized Bed and Multiple Hearth Roasters

    Compares fluidized bed and multiple hearth roaster designs for throughput and temperature control. Evaluates each design against concentrate mineralogy and capacity needs.

Chapter 5See details

Converting, Refining, and Alloying

  • Lesson 1 • Precious Metal Recovery and Refining

    Covers anode slime processing, Miller chlorination, and Wohlwill electrorefining for gold and silver. Establishes purity targets and loss minimization strategies.

  • Lesson 2 • Copper Converting: Peirce-Smith Process

    Details the two-stage Peirce-Smith converter operation from matte to blister copper. Analyzes slag formation, air injection, and heat balance in each stage.

  • Lesson 3 • Alloying Principles and Melt Treatment

    Explains alloying element additions, melt degassing, and inclusion removal for wrought and cast products. Connects melt cleanliness to final mechanical properties.

  • Lesson 4 • Fire Refining and Anode Casting

    Covers oxidation and poling steps to remove sulfur and oxygen from blister copper. Connects anode quality to subsequent electrorefining efficiency.

  • Lesson 5 • Lead and Zinc Pyrometallurgical Refining

    Examines softening, dezincing, and debismuthizing of crude lead and Imperial Smelting Process for zinc. Links refining sequence to impurity distribution coefficients.

Chapter 6See details

Hydrometallurgy: Leaching and Solution Purification

  • Lesson 1 • Solvent Extraction Principles

    Explains extractant chemistry, McCabe-Thiele diagrams, and mixer-settler design for selective metal transfer. Connects organic phase management to solution purity targets.

  • Lesson 2 • Leaching Chemistry and Reagents

    Covers acid, alkaline, and cyanide leaching mechanisms with Eh-pH (Pourbaix) diagram analysis. Establishes reagent selection criteria for target metal dissolution.

  • Lesson 3 • Solution Purification and Impurity Removal

    Examines cementation, precipitation, and neutralization to remove impurity metals from pregnant solutions. Prepares purified electrolyte for electrowinning or direct product recovery.

  • Lesson 4 • Leach Reactor Types and Circuit Design

    Compares agitated tank, heap, vat, and in-situ leaching configurations for throughput and recovery. Guides reactor selection based on ore grade, permeability, and capital constraints.

  • Lesson 5 • Ion Exchange and Activated Carbon Adsorption

    Covers resin and activated carbon systems for gold, uranium, and base metal recovery from dilute solutions. Compares carbon-in-pulp, carbon-in-leach, and resin-in-pulp configurations.

Chapter 7See details

Electrometallurgy: Electrorefining and Electrowinning

  • Lesson 1 • Molten Salt Electrolysis for Reactive Metals

    Examines electrolytic production of titanium, magnesium, and rare earth metals from molten chloride and fluoride salts. Highlights containment, atmosphere control, and product purity challenges.

  • Lesson 2 • Copper Electrorefining Cell Design

    Details anode-cathode geometry, electrolyte composition, and additive roles in copper electrorefining. Connects cell parameters to cathode purity and anode passivation control.

  • Lesson 3 • Electrowinning from Leach Solutions

    Covers copper, zinc, and cobalt electrowinning from sulfate electrolytes using insoluble anodes. Analyzes current density, temperature, and additive effects on deposit morphology.

  • Lesson 4 • Electrochemical Fundamentals

    Reviews Faraday's laws, electrode potentials, and overpotential concepts as applied to metal deposition. Provides the electrochemical basis for cell design and current efficiency.

  • Lesson 5 • Aluminum Smelting by Hall-Heroult Process

    Explains molten salt electrolysis of alumina in cryolite bath for primary aluminum production. Covers cell design, anode effects, and energy consumption benchmarks.

Chapter 8See details

Process Integration and Plant Optimization

  • Lesson 1 • Techno-Economic Evaluation of Flowsheets

    Covers capital and operating cost estimation, net present value analysis, and sensitivity studies for metallurgical projects. Enables comparison of competing flowsheet options on economic merit.

  • Lesson 2 • Metallurgical Accounting and Sampling

    Covers sampling theory, assay methods, and metal accounting systems for production reporting. Connects accurate accounting to process control and commercial settlement.

  • Lesson 3 • Energy and Water Integration

    Applies pinch analysis and water circuit design to minimize energy and freshwater consumption. Demonstrates how integration reduces operating costs and environmental footprint.

  • Lesson 4 • Process Control and Instrumentation

    Introduces sensors, control loops, and advanced process control strategies for metallurgical plants. Links real-time data to operational decisions and grade-recovery optimization.

  • Lesson 5 • Flowsheet Development and Mass Balancing

    Teaches systematic flowsheet construction and steady-state mass balance reconciliation across all unit operations. Provides the quantitative foundation for plant design and debottlenecking.

Certification

Your valid completion certificate

This course is for you:

  • Mining engineer: seeking deeper process knowledge beyond drilling and blasting.

  • Recent chemistry or chemical engineering graduate: entering the minerals processing industry.

  • Metallurgical technician: aiming to move into an engineering or supervisory position.

  • Environmental consultant: needing to understand plant operations to assess site impacts.

  • Career changer from civil or mechanical engineering: transitioning into mineral processing roles.

  • Geology professional: wanting to connect ore characterization work to downstream processing decisions.

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