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Corrosion Science and Engineering of Metals

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Understand corrosion principles and apply practical assessment, protection, and control for industrial applications.
1
1/5
(34) Ratings
2 students
Created by ACCREVIA International
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What you'll learn

  • Explain how electrochemical reactions cause corrosion and how material, environment and design affect corrosion behavior.
  • Interpret electrode potentials, galvanic series, Pourbaix diagrams, polarization curves and passive behavior.
  • Identify major corrosion mechanisms and distinguish uniform, localized, galvanic and environmentally assisted damage.
  • Evaluate how alloy composition, microstructure, welding and fabrication influence corrosion resistance.
  • Compare the corrosion behavior of common engineering metals and select suitable materials for service conditions.
  • Assess corrosion risks in atmospheric, water, marine, soil, concrete, process, oil and gas, boiler and steam systems.
  • Measure corrosion rates and interpret data from laboratory, field and electrochemical testing.
  • Select appropriate corrosion monitoring, inspection and nondestructive testing methods for different damage mechanisms.
  • Assess corrosion damage, remaining life and fitness for service, and support structured corrosion failure analysis.
  • Apply corrosion-control methods using design, material selection, inhibitors, coatings, linings and cladding.
  • Explain cathodic and anodic protection systems, including galvanic-anode and impressed-current methods.
  • Develop corrosion-control strategies based on identified threats, inspection findings, risk and asset criticality.
  • Apply corrosion standards, specifications and integrity-management practices in engineering decisions.
This course includes:
13 total hours on-demand video
0 articles
152 downloadable resources
76 lessons
Full lifetime access
Access on mobile and TV
Certificate of completion
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Course content

Requirements

  • A basic understanding of engineering, materials, or industrial equipment and operating environments is recommended for this course. Learners should be proficient in English and have a strong interest in corrosion, materials performance, and asset integrity. Previous exposure to metallurgy, inspection, maintenance, or corrosion-related work can be helpful but is not essential, as the course begins with core corrosion fundamentals before progressing to practical assessment, control, and management.

Description

“This course contains the use of artificial intelligence.”

Corrosion is a critical engineering concern because the deterioration of metals can reduce equipment reliability, shorten service life, increase maintenance costs, and contribute to loss of containment, structural damage, and unexpected failure. Understanding corrosion provides the technical basis for recognizing why metallic materials degrade under different environmental and operating conditions and for judging the significance of that deterioration in real service. A sound knowledge of corrosion engineering supports better decisions in material selection, design, operation, inspection, maintenance, and lifecycle planning, helping organizations protect assets while balancing safety, reliability, performance, and cost.

The learning journey is structured to develop capability in a clear and professional sequence. It begins with the scientific principles governing corrosion, establishing the foundation needed to understand how material characteristics, environmental conditions, electrochemical behavior, and service variables influence deterioration. It then progresses toward deeper engineering interpretation of corrosion behavior across metallic materials and operating environments. Building on this understanding, the focus moves to practical assessment through testing, monitoring, inspection, damage evaluation, and failure investigation. The progression then advances into the selection and application of suitable prevention and control measures before culminating in integrated corrosion management, risk-based planning, integrity decisions, standards, and technical requirements. This structure connects fundamental understanding with practical engineering judgement rather than treating corrosion as an isolated theoretical subject.

In industrial practice, effective corrosion control requires more than identifying visible metal loss. Engineers must understand the interaction between materials, fabrication, environment, stress, operating conditions, protective systems, and inspection evidence to determine what is occurring, how serious it is, and what response is appropriate. Developing this perspective strengthens the ability to evaluate deterioration systematically, interpret corrosion data responsibly, select suitable mitigation measures, and verify whether protection remains effective throughout service.

The resulting knowledge has direct value in asset integrity, corrosion prevention, inspection, reliability, maintenance, and lifecycle management. It supports consistent technical decisions concerning continued operation, monitoring, intervention, repair, replacement, and long-term corrosion-control strategy, providing a practical engineering foundation for managing metallic assets exposed to demanding service conditions.

Each lecture includes dedicated study material and an infographic summary. Learners should review the study material after watching the lecture to strengthen their understanding, and use the infographic summary for quick revision and easy recall of key concepts whenever needed.

Who this course is for:

  • Engineering students, graduates, and early-career professionals who want to develop practical knowledge of corrosion, metal degradation, and corrosion prevention.
  • Engineers and technical professionals who work with metallic materials, equipment, structures, piping, or systems exposed to corrosive environments.
  • Professionals involved in inspection, maintenance, operations, reliability, or asset integrity who need to understand, assess, monitor, and control corrosion.
  • Learners seeking to strengthen their knowledge of corrosion engineering through material selection, testing, inspection, protective methods, and corrosion management.
  • Professionals working in industries that rely on metallic assets, including oil and gas, power, marine, chemical processing, utilities, manufacturing, and infrastructure.
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