It is well known that the presence of hydrogen in ferrous materials promotes both static fracture and affect the material fatigue crack growth rates. The latter is often referred to as Hydrogen Enhanced Fatigue Crack Growth Rate (HE-FCGR) which defines the reduction of crack growth resistance of the material under cyclic stresses when hydrogen is present. When it comes to the determination of the life of components exposed to hydrogen it is therefore of paramount importance to establish such hydrogen induced variation in crack speed in the material in order to avoid unexpected catastrophic failures. In this study the fatigue crack growth rate was determined for a Fe-3wt%Si alloy. Compact tension specimens were used to determine the Paris re...
AbstractThe investigated material is a quenched&tempered steel for hydrogen applications. Understand...
Hydrogen embrittlement and fatigue are two modes of structural materials failure for which mechanist...
AbstractFatigue crack growth (FCG) tests for compact tension (CT) specimens of an annealed, low-carb...
It is well known that the presence of hydrogen in ferrous materials promotes both static fracture an...
It is well known that ferrous materials can be damaged by absorption of hydrogen. If a sufficient qu...
Fatigue crack growth (FCG) behavior of a Fe-3wt.%Si ferritic alloy under different environmental con...
The effect of hydrogen (H) on the fatigue behavior is of significant importance for metallic structu...
Many metallic structural components come into contact with hydrogen during manufacturing processes o...
The decrease in fatigue resistance of an austenitic Fe-Mn-Al steel, due to presence of cathodically ...
ABSTRACT. Hydrogen as an energy carrier and hydrogen applications, as fuel cells, are considered to ...
Fatigue crack growth rate (FCGR) for an HSLA steel was studied with in-situ hydrogen charging. The e...
The effects of large amounts of hydrogen on the fatigue crack growth properties of torsional prestra...
The energy supply questions is becoming more and more urgent for all the world. As there is not one ...
Along the hydrogen supply chain, metallic components, such as pressure vessels, compressors and valv...
AbstractThe investigated material is a quenched&tempered steel for hydrogen applications. Understand...
Hydrogen embrittlement and fatigue are two modes of structural materials failure for which mechanist...
AbstractFatigue crack growth (FCG) tests for compact tension (CT) specimens of an annealed, low-carb...
It is well known that the presence of hydrogen in ferrous materials promotes both static fracture an...
It is well known that ferrous materials can be damaged by absorption of hydrogen. If a sufficient qu...
Fatigue crack growth (FCG) behavior of a Fe-3wt.%Si ferritic alloy under different environmental con...
The effect of hydrogen (H) on the fatigue behavior is of significant importance for metallic structu...
Many metallic structural components come into contact with hydrogen during manufacturing processes o...
The decrease in fatigue resistance of an austenitic Fe-Mn-Al steel, due to presence of cathodically ...
ABSTRACT. Hydrogen as an energy carrier and hydrogen applications, as fuel cells, are considered to ...
Fatigue crack growth rate (FCGR) for an HSLA steel was studied with in-situ hydrogen charging. The e...
The effects of large amounts of hydrogen on the fatigue crack growth properties of torsional prestra...
The energy supply questions is becoming more and more urgent for all the world. As there is not one ...
Along the hydrogen supply chain, metallic components, such as pressure vessels, compressors and valv...
AbstractThe investigated material is a quenched&tempered steel for hydrogen applications. Understand...
Hydrogen embrittlement and fatigue are two modes of structural materials failure for which mechanist...
AbstractFatigue crack growth (FCG) tests for compact tension (CT) specimens of an annealed, low-carb...