Fundamentals and advances in magnesium alloy corrosion

Основы и достижения в области коррозии магниевых сплавов
N. Birbilis, S. Thomas, G. S. Frankel, S. Fajardo, M. Esmaily, Jan‐Erik Svensson, Sannakaisa Virtanen, R. Arrabal, L.‐G. Johansson
2017-05-15

anodic hydrogen evolutionbiodegradable magnesium alloyscathodic activationelectrochemical frameworkmagnesium alloy corrosion
There remains growing interest in magnesium (Mg) and its alloys, as they are the lightest structural metallic materials. Mg alloys have the potential to enable design of lighter engineered systems, including positive implications for reduced energy consumption. Furthermore, Mg alloys are also emerging as viable biodegradable materials and battery electrodes. In spite of the greatest historical Mg usage at present, the wider use of Mg alloys remains restricted by a number of inherent limitations, including vulnerability to corrosion, poor formability and low creep resistance. This review covers recent research that has led to advances in Mg-alloy corrosion; including the application of contemporary methods for understanding Mg corrosion, the establishment of an electrochemical framework for Mg corrosion, illumination of alloying effects, and attempts at corrosion resistant Mg alloys. A discussion drawing from many sources provides an unbiased focus on new achievements, as well as some contentious issues in the field. The electrochemistry of Mg is reviewed in detail, including so-called anodic hydrogen evolution and cathodic activation. This review also covers atmospheric corrosion, and biodegradable Mg alloys. Finally, past and present trends in the field of Mg corrosion are reviewed, identifying knowledge gaps, whilst attempting to also identify future developments and directions.
1
Broader magnesium-alloy use remains limited by inherent corrosion vulnerability, poor formability, and low creep resistance.
2
Magnesium alloys are attractive as the lightest structural metals, with potential to reduce engineered-system weight and energy consumption.
3
Recent research has advanced understanding of magnesium corrosion through contemporary characterization methods and an electrochemical framework incorporating anodic hydrogen evolution and cathodic activation.
4
Studies have clarified alloying effects and explored the development of more corrosion-resistant magnesium alloys, although some issues remain contentious.
5
The review covers atmospheric corrosion and biodegradable magnesium alloys, identifies knowledge gaps, and outlines potential future research directions.

Magnesium alloys (Mg alloys) and their corrosion behavior

corrosion behavior and electrochemical mechanisms of magnesium alloys, including atmospheric and biodegradable-alloy corrosion

Publication Details
Publication Date
2017-05-15
Journal
Publisher
ISSN
Access Type
Author Information
Authors
N. Birbilis
S. Thomas
G. S. Frankel
S. Fajardo
M. Esmaily
Jan‐Erik Svensson
Sannakaisa Virtanen
R. Arrabal
L.‐G. Johansson
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%