Understanding and mitigating hydrogen embrittlement of steels: a review of experimental, modelling and design progress from atomistic to continuum

Понимание и предотвращение водородного охрупчивания сталей: обзор достижений в области экспериментов, моделирования и проектирования — от атомистического до континуального уровня
James R. Kermode, Olga Barrera, David Bombač, Yi‐Sheng Chen, Thomas D. Daff, E.I. Galindo-Nava, Peng Gong, Daniel Haley, Robert Horton, Ivaylo H. Katzarov, C. Liverani, Miles Alexander Stopher, F. Sweeney
2018-02-06

atomistic-to-continuum modellinghydrogen embrittlementhydrogen-resistant steel designquantum calculationssteels
Hydrogen embrittlement is a complex phenomenon, involving several length- and timescales, that affects a large class of metals. It can significantly reduce the ductility and load-bearing capacity and cause cracking and catastrophic brittle failures at stresses below the yield stress of susceptible materials. Despite a large research effort in attempting to understand the mechanisms of failure and in developing potential mitigating solutions, hydrogen embrittlement mechanisms are still not completely understood. There are controversial opinions in the literature regarding the underlying mechanisms and related experimental evidence supporting each of these theories. The aim of this paper is to provide a detailed review up to the current state of the art on the effect of hydrogen on the degradation of metals, with a particular focus on steels. Here, we describe the effect of hydrogen in steels from the atomistic to the continuum scale by reporting theoretical evidence supported by quantum calculation and modern experimental characterisation methods, macroscopic effects that influence the mechanical properties of steels and established damaging mechanisms for the embrittlement of steels. Furthermore, we give an insight into current approaches and new mitigation strategies used to design new steels resistant to hydrogen embrittlement.
1
Current and emerging mitigation strategies focus on designing steels with improved resistance to hydrogen embrittlement.
2
Despite extensive research, the mechanisms governing hydrogen-induced failure remain incompletely understood, with competing theories and conflicting experimental evidence.
3
Hydrogen embrittlement can substantially reduce steel ductility and load-bearing capacity, causing cracking and catastrophic brittle failure below the yield stress.
4
The phenomenon spans multiple length and timescales, requiring analysis from atomistic mechanisms through macroscopic mechanical behavior and continuum descriptions.
5
The review integrates quantum calculations, modern experimental characterization, and continuum-scale observations to assess hydrogen-driven degradation and established embrittlement mechanisms in steels.

Steels (metallic materials susceptible to hydrogen embrittlement)

hydrogen-induced degradation and embrittlement mechanisms, their effects on mechanical properties, and mitigation strategies for designing hydrogen-resistant steels

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2018-02-06
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Authors
James R. Kermode
Olga Barrera
David Bombač
Yi‐Sheng Chen
Thomas D. Daff
E.I. Galindo-Nava
Peng Gong
Daniel Haley
Robert Horton
Ivaylo H. Katzarov
C. Liverani
Miles Alexander Stopher
F. Sweeney
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