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Corrosion Engineering Course
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Corrosion Engineering Course

Master the science and practice of corrosion engineering, from electrochemical fundamentals to real-world asset protection strategies. This course covers corrosion mechanisms, resistant materials, protective coatings, cathodic protection, inhibitors, and integrity management. Whether you work in oil and gas, infrastructure, or manufacturing, you will gain the technical depth to prevent failures and extend asset life.

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What you will learn:

Gain a solid grasp of corrosion electrochemistry—thermodynamics, kinetics, and Pourbaix diagrams—and apply it to all major industrial corrosion types. Learn material selection for stainless steel, nickel alloys, titanium and non‑metallic options using systematic frameworks and life‑cycle cost analysis. Design cathodic and anodic protection systems, specify organic and metallic coating programs, and assess inhibitors for aqueous and process streams. Study inspection methods, risk‑based inspection, and fitness‑for‑service assessments. Modules focus on oil & gas, reinforced concrete, atmospheric exposure, and high‑temperature oxidation. Develop corrosion monitoring, failure analysis, and technical reporting skills for real‑world engineering.

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Course content

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

Chapter 1See details

Fundamentals of Corrosion Science

  • Lesson 1 • Thermodynamics of Corrosion

    Examines Gibbs free energy, equilibrium potential, and Pourbaix diagrams. Connects thermodynamic feasibility to predicting whether corrosion will occur under given conditions.

  • Lesson 2 • Electrochemical Basis of Corrosion

    Covers oxidation-reduction reactions, electrode potentials, and cell formation. Establishes the electrochemical framework underlying all corrosion mechanisms discussed in later chapters.

  • Lesson 3 • Corrosion Kinetics and Polarization

    Introduces activation and concentration polarization, exchange current density, and mixed potential theory. Links kinetic parameters to measurable corrosion rates.

  • Lesson 4 • Passivity and Passive Film Behavior

    Explains passive film formation, breakdown, and repassivation on metals. Directly supports later sections on stainless steels, aluminum alloys, and protective coatings.

  • Lesson 5 • Electrolytes and Ionic Transport

    Analyzes electrolyte conductivity, ion mobility, and solution chemistry effects on corrosion. Provides context for understanding how environment composition accelerates or retards attack.

Chapter 2See details

Types and Morphologies of Corrosion

  • Lesson 1 • Localized Corrosion: Pitting and Crevice

    Examines pit initiation, propagation, and crevice geometry effects on local chemistry. Localized forms cause disproportionate structural failures and require distinct detection methods.

  • Lesson 2 • Erosion-Corrosion and Cavitation

    Analyzes combined mechanical and electrochemical attack from fluid flow and bubble collapse. Relevant to piping, pumps, and heat exchanger tube failures.

  • Lesson 3 • Uniform and Galvanic Corrosion

    Covers even metal loss across surfaces and bimetallic couple effects. Establishes baseline morphology recognition skills used throughout the course.

  • Lesson 4 • Environmentally Assisted Cracking

    Covers stress corrosion cracking, hydrogen embrittlement, and corrosion fatigue. These failure modes combine mechanical stress with corrosive environments to cause sudden fracture.

  • Lesson 5 • Intergranular and Selective Corrosion

    Addresses grain boundary sensitization, dealloying, and selective phase attack. Connects microstructural features to preferential dissolution pathways.

Chapter 3See details

Corrosion in Specific Environments

  • Lesson 1 • Aqueous and Immersion Corrosion

    Covers freshwater, seawater, and industrial process fluid corrosion. Connects dissolved species, temperature, and flow to material selection for submerged and process equipment.

  • Lesson 2 • Atmospheric Corrosion Mechanisms

    Examines thin-film electrolyte formation, time of wetness, and pollutant effects on outdoor corrosion. Provides basis for coating selection and service life prediction in open environments.

  • Lesson 3 • Soil and Underground Corrosion

    Examines soil resistivity, moisture, pH, and microbial activity effects on buried structures. Directly supports cathodic protection design for pipelines and underground tanks.

  • Lesson 4 • Concrete and Reinforcement Corrosion

    Covers carbonation, chloride ingress, and rebar depassivation in reinforced concrete. Connects concrete chemistry to structural integrity and repair strategy selection.

  • Lesson 5 • High-Temperature Oxidation and Hot Corrosion

    Analyzes oxide scale growth kinetics, spallation, and sulfidation at elevated temperatures. Essential for turbine, furnace, and refinery component material selection.

Chapter 4See details

Corrosion-Resistant Materials Selection

  • Lesson 1 • Material Selection Methodology

    Introduces structured selection frameworks, corrosion allowance calculation, and life-cycle cost analysis. Integrates technical and economic factors into defensible material decisions.

  • Lesson 2 • Stainless Steels and Their Limitations

    Covers austenitic, ferritic, duplex, and martensitic grades and their corrosion performance. Provides the most widely used alloy family as a reference point for comparative selection.

  • Lesson 3 • Titanium, Aluminum, and Reactive Metals

    Analyzes passive oxide reliance, crevice susceptibility, and galvanic compatibility of lightweight reactive metals. Supports aerospace, marine, and chemical processing material decisions.

  • Lesson 4 • Polymers, Composites, and Linings

    Covers chemical resistance of thermoplastics, thermosets, and fiber-reinforced composites as corrosion barriers. Extends material selection beyond metals to non-metallic alternatives.

  • Lesson 5 • Nickel Alloys and Superalloys

    Examines high-performance nickel-based alloys for aggressive acid, halide, and high-temperature service. Bridges material science to cost-justified selection in critical applications.

Chapter 5See details

Protective Coatings and Surface Treatments

  • Lesson 1 • Metallic and Conversion Coatings

    Covers hot-dip galvanizing, electroplating, thermal spray, and phosphate conversion coatings. Expands the protective coating toolkit beyond organic systems.

  • Lesson 2 • Coating Failure Analysis

    Identifies blistering, undercutting, delamination, and chalking failure modes and their root causes. Failure analysis skills enable corrective specification and prevent recurrence.

  • Lesson 3 • Organic Coating Systems

    Examines primer, intermediate, and topcoat functions, binder chemistry, and pigment selection. Provides the technical basis for specifying multi-coat systems for industrial structures.

  • Lesson 4 • Coating Inspection and Quality Assurance

    Covers inspection hold points, instrument calibration, and documentation requirements for coating projects. Ensures applied coatings meet specification before service exposure.

  • Lesson 5 • Surface Preparation Fundamentals

    Covers abrasive blasting, power tool cleaning, and surface cleanliness standards. Proper surface preparation is the single greatest factor in coating system longevity.

Chapter 6See details

Cathodic and Anodic Protection

  • Lesson 1 • Cathodic Protection Monitoring and Testing

    Covers pipe-to-soil potential surveys, close-interval surveys, and IR drop correction. Systematic monitoring verifies protection and identifies deficiencies before failures occur.

  • Lesson 2 • Impressed Current Cathodic Protection

    Examines rectifier design, inert anode materials, and current distribution for pipelines and tanks. Impressed current systems protect large structures where sacrificial anodes are impractical.

  • Lesson 3 • Sacrificial Anode Systems

    Covers zinc, aluminum, and magnesium anode alloys, driving voltage, and design calculations. Sacrificial systems are self-contained and widely used for marine and underground applications.

  • Lesson 4 • Principles of Cathodic Protection

    Establishes the electrochemical basis for shifting corrosion potential to immunity or passivity. Connects mixed potential theory from Chapter 1 to practical protection criteria.

  • Lesson 5 • Anodic Protection Principles and Applications

    Explains passivation by applied anodic current and identifies suitable alloy-electrolyte systems. Anodic protection is applicable to sulfuric acid storage and chemical process vessels.

Chapter 7See details

Corrosion Inhibitors and Chemical Treatment

  • Lesson 1 • Inhibitors for Cooling Water Systems

    Examines phosphate, molybdate, azole, and polymer inhibitor programs for recirculating cooling water. Cooling water systems represent the most common industrial inhibitor application.

  • Lesson 2 • Inhibitors for Oil and Gas Systems

    Covers film-forming amines, imidazolines, and batch versus continuous injection for pipeline and downhole corrosion. Addresses the dominant inhibitor application in the energy sector.

  • Lesson 3 • Inhibitor Classification and Mechanisms

    Covers anodic, cathodic, and mixed inhibitors and their adsorption or film-forming mechanisms. Classification determines application suitability and performance prediction approach.

  • Lesson 4 • Vapor Phase and Temporary Inhibitors

    Examines volatile corrosion inhibitors for enclosed spaces and temporary preservation of stored equipment. Extends inhibitor application to non-aqueous and storage environments.

  • Lesson 5 • Inhibitor Performance Testing and Monitoring

    Covers rotating cylinder electrode tests, weight loss coupons, and electrochemical noise for inhibitor evaluation. Quantitative testing validates inhibitor selection before full-scale deployment.

Chapter 8See details

Corrosion Monitoring, Inspection, and Management

  • Lesson 1 • Corrosion Monitoring Techniques

    Covers electrical resistance probes, linear polarization resistance, and ultrasonic thickness monitoring. Monitoring provides real-time data to detect corrosion before structural limits are reached.

  • Lesson 2 • Risk-Based Inspection Methodology

    Introduces probability of failure, consequence of failure, and risk ranking for inspection prioritization. Risk-based inspection optimizes resource allocation across large asset populations.

  • Lesson 3 • Integrity Management and Remaining Life

    Covers fitness-for-service assessment, remaining life calculation, and corrosion management plan development. Integrates all monitoring and inspection data into actionable asset management decisions.

  • Lesson 4 • Corrosion Rate Measurement and Data Analysis

    Covers weight loss calculation, mils per year conversion, and statistical trend analysis of monitoring data. Accurate rate measurement underpins remaining life calculations and maintenance planning.

  • Lesson 5 • Non-Destructive Examination Methods

    Examines radiography, phased array ultrasound, magnetic flux leakage, and eddy current for corrosion detection. NDE methods locate and size corrosion damage without removing equipment from service.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical engineers seeking to add corrosion expertise to their skill set.

  • Pipeline integrity technicians ready to deepen their engineering knowledge base.

  • Chemical engineers moving into asset reliability or materials-focused roles.

  • Civil engineers responsible for reinforced concrete structures and infrastructure longevity.

  • Early-career materials engineers building a specialization in degradation and protection.

  • Maintenance managers wanting to understand the science behind equipment deterioration.

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