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Metal Corrosion and the Efficiency of Corrosion Inhibitors in Less Conductive Media
Published on: November 3, 2018
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Measuring corrosion rate and protector effectiveness of advanced multilayer metallic materials by newly developed
Vladimir A Grachev1, Andrey E Rozen2, Yuri P Perelygin2
1A.N. Frumkin Institute of Physical Chemistry and Electrochemistry, Russian Academy of Sciences, 31, Bldg 4, Leninsky Prospect, Moscow, 119071, Russia.
Heliyon
|August 22, 2018
Summary
This study evaluates multilayer metallic materials
Area of Science:
- Materials Science
- Corrosion Engineering
- Electrochemistry
Background:
- Pitting corrosion poses a significant challenge for metallic materials.
- Multilayer metallic materials with internal protectors offer potential solutions.
- Understanding corrosion mechanisms is crucial for material development.
Purpose of the Study:
- To estimate the corrosion resistance of new multilayer metallic materials against pitting.
- To experimentally substantiate the mechanism of corrosive destruction in these materials.
- To develop and validate accelerated corrosion testing methods.
Main Methods:
- Electron microscopy for analyzing corrosive destruction mechanisms.
- Chemical methods for assessing internal protector effectiveness.
- Electrochemical methods for determining corrosion rates and limiting stages.
Main Results:
- Experimental substantiation of the layers' corrosive destruction mechanism.
- Development of chemical and electrochemical accelerated corrosion tests.
- The electrochemical method determines the mass corrosion index and guides protector selection.
- The chemical method quantifies protector effectiveness and material corrosion resistance ratios.
Conclusions:
- The proposed accelerated corrosion tests effectively evaluate multilayer materials.
- The electrochemical method provides insights into the rate-limiting step of corrosion.
- The chemical method offers a quantitative measure of internal protector performance.
- These methods aid in selecting optimal multilayer materials for specific corrosive environments.
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