Grand Challenges in Metal Corrosion and Protection Research.
The quest to develop technologies that address growing societal needs, sustainability,
environmentally-safe, and cost-effectiveness is ever growing. The suitability of these
technologies to explore new resources in highly hostile conditions such as deep-sea and space
has given greater impetus to corrosion research. A glance at the periodical table of elements
suggests that the vast majority of the elements employed to manufacture engineering structures
and devices that are integral parts of our life are thermodynamically favorable for corrosion in
the chemical environments they inhabit. Additionally, miniaturization of devices and light weighting engineering structures allow less leeway for corrosion for satisfactory performance of
these components. At times, the materials made for such components are at odds with their ability to resist corrosion failures. Corrosion research, therefore, needs to involve finding ways
and means to protect these materials against such failures. Although they are destined (thermodynamically) to corrode in typical chemical environments they need to serve (Pourbaix,1974). Therefore, effective control of corrosion failures cannot involve just using the “right
materials”, as that may not be practically possible. Taming of environments through inhibitors
and application of coatings, electrochemical means such as cathodic and anodic protection, and engineering means like structural design help to mitigate corrosion effectively. Emphasis is also
placed on corrosion monitoring, inspection, life prediction, and proactive management of assets. In all these cases, understanding corrosion phenomena involving metal and environment interaction is essential.
The multidisciplinary nature of corrosion possesses more significant challenges and provides
vast opportunities for corrosion researchers (NAP, 2011). Some of the critical areas are
highlighted here.
Corrosion Mechanisms
Corrosion Resistant Alloy Development
Alloy Processing and Fabrication Corrosion
Surface Treatment and Coating
Computational Materials Science, Data Analytics, Machine Learning, and Artificial Intelligence
These tools are expected to overcome the limitations of experimentation and deterministic
approaches to understanding corrosion phenomena. These tools are poised to make great impacts in advancing corrosion science and technology, especially in designing new corrosion-resistant alloys for addressing materials application to highly corrosive conditions and predicting the life of structures against corrosion. However, concerted research is needed to successfully employ
these tools for corrosion science and engineering (Coelho et al., 2022).
Advanced/Novel Experimental Techniques for Corrosion Research
Specialty Grand Challenge
Sec. Metal Corrosion and Protection
Volume 1 – 2022 | doi.org/10.3389/ftmal.2022.894181
Author
Author Contributions
Conflict of Interest
Publisher’s Note
References
NAP, (2011). Research Opportunities in Corrosion Science and Engineering by by
National Research Council of the National Academies, Division on Engineering and
Physical Sciences. Washington, D.C: National Academies Press. Available at: www.nap.edu.
Edited and reviewed by: Ian Baker, Dartmouth College, United States
Copyright © 2022 Raja. This is an open-access article distributed under the terms of
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