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Hydrogen gas plays a key role in the European energy transition strategy. When transmitting and storing compressed hydrogen gas, safety is one of the most important conditions. With increasing hydrogen pressure and temperature, more hydrogen is absorbed by the steel components, such as pipelines or valves, and may lead to embrittlement. Although, a deep understanding of microstructure on the hydrogen solubility in steels is missing. Classical Sieverts’ law is only valid at high temperatures and low gas pressures. For that purpose, new theory is presented, which explains the role of microstructure on hydrogen solubility. Hydrogen trapping at microstructural defects is a thermally activated mechanism and causes an increase of the hydrogen solubility with decreasing temperatures. This mechanism has to be considered in cryogenic applications, such liquid or compressed hydrogen storage.
Der Stahlbedarf in Deutschland wird maßgeblich neben dem Automobilsektor vom Maschinenbau und allgemeinen Bauwesen geprägt. In diesen Segmenten werden qualitativ hochwertige Stähle mit höchsten Ansprüchen an Festigkeit, Verformungsfähigkeit, schweißtechnische Verarbeitung und sicherheitsrelevante Aspekte gestellt. Wichtige Vertreter, welche diesen Ansprüchen gerecht werden, sind die heutigen modernen höherfesten FKB. Aus der Entwicklung dieser Stähle kristallisierten sich in den letzten Jahrzehnten verschiedene Legierungskonzepte und Herstellungsrouten heraus. Dem liegt neben essentiellen Eigenschaften, z.B. Streck- und Zugfestigkeit, noch weitere Anforderungen, bspw. Kaltumformbarkeit, Kerbschlagzähigkeit und Verschleißfestigkeit, zugrunde. Zunehmend werden im genormten Bereich mit Streckgrenzen bis 700 MPa neben den vergüteten Stählen (Q) auch thermomechanische Stähle (M) eingesetzt. Ein immerwährender paralleler Begleiter während der Stahlherstellung und -verarbeitung ist Wasserstoff.
Wasserstoff wird in den nächsten Jahren als Schlüsselelement für eine nachhaltige Energiewirtschaft angesehen. Aus heutiger Sicht ist Wasserstoff ein Hoffnungsträger für eine klimafreundliche Energiewirtschaft und zukunftsfähige Industrie. Forschung und Industrie arbeiten intensiv an der Erschließung und Weiterentwicklung des enormen Potentials, um eine höhere Nutzbarkeit zu erreichen. Die Gründe liegen zum einen darin, dass Wasserstoff als Brennstoff unproblematisch (Umweltverträglichkeit und Verfügbarkeit) ist und zum anderen ein hervorragender Energieträger ist.
Wasserstoff ist durch seine gebundene Form erst nach dem Lösen aus chemischen Verbindungen zugänglich. Dies geschieht für eine Nutzbarmachung in einer zukunftsfähigen Energiewirtschaft gezielt. Demgegenüber stehen Prozesse, wodurch Wasserstoff aus seiner chemischen Verbindung gelöst wird und aufgrund seiner Größe bzw. geringsten Atommasse von Werkstoffen aufgenommen wird. Damit verbunden interagiert der aufgenommene Wasserstoff mit dem Gefüge und kann zu einer negativen Beeinflussung der Eigenschaften des Werkstoffs führen.
Wasserstoff kann Degradationsprozesse in Stählen verursachen, die sich insbesondere auf die mechanischen Eigenschaften auswirken. Diese Mechanismen können wasserstoffunterstützte Risse in höherfesten Stählen während der Herstellung oder im industriellen Einsatz verursachen.
Elektrochemisch beladene Zugproben zeigen ein unterschiedliches Degradationsverhalten in ihren Eigenschaften. Die vorliegende Arbeit beschreibt die Wechselwirkungen zwischen Wasserstoff und Gitterdefekten in unterschiedlichen mikrolegierten Systemen und wärmebeeinflussten Zonen in den schweißbaren Feinkornbaustählen. Die Ergebnisse zeigen eine klare Abhängigkeit zwischen Mikrolegierung und Herstellungsprozess dieser Stahlsorten, respektive ihrer simulierten wärmebeeinflussten Bereiche.
Hydrogen can have an extreme degradation effects in steels, particularly concerning the mechanical properties. These effects can lead to hydrogen assisted cracking in micro-alloyed high strength steels during fabrication and/or operation in industrial applications. The Carrier Gas Hot Extraction method, which functionally combines a mass spectrometer with a Thermal Desorption Analysis process, was used for the detection of ultra-low diffusible hydrogen concentrations in the material specimens. The work shows the interaction between hydrogen and lattice defects in different micro-alloyed materials and HAZ. These steels were prepared in a quenched and tempered condition and in a thermo-mechanically rolled condition. The trapping characteristics of two steel grades, S690QL and S700MC, were studied with respect to the activation energy dependent on carbon content and micro-alloying elements such as Ti, Nb, Mo, Cr and V. The two steel grades exhibited several types of traps: carbide formations, dislocations and/or grain boundaries were common, which can influence activation energy and hydrogen solubility. The type and dimension of inclusions or particles also affected the hydrogen trapping behavior. A decrease of carbon and specific alloying elements in MC steels led to a change in the activation energy binding the trapped hydrogen. This thermo-mechanically hot
rolled steel revealed an increased interaction between hydrogen
and precipitations. The higher carbon content in the
quenched and tempered steel led to a higher interaction
between hydrogen and iron carbide, specifically in the
martensitic phase. Furthermore,the trapping behavior in HAZ showed a significant increase in activation energy, especially in the coarse grained microstructure.
This paper describes austenitic-ferritic duplex stainless steels, SAF 2205, in the presence of hydrogen. The duplex stainless steels (DSS) properties include excellent resistance to stress corrosion cracking, high strength and good weldability. Those steels are preferably used in industries combining hydrogen and loads. Hydrogen location in addition to hydrogen binding energy with the steel's defects are of great importance for the analysis of hydrogen embrittlement model in that steel. It is known from previously published works that the susceptibility to hydrogen embrittlement will depend on the competition between reversible and irreversible traps; meaning a direct relation to the hydrogen's state and position in the steel. In this work, we examine the local hydrogen concentration, trapping and distribution by two modern and advanced techniques: thermal desorption spectrometry (TDS) and we support it by time of flight-secondary ion mass spectrometer (ToF-SIMS). In this paper, we support and give for the first time new insights and better understanding to the hydrogen embrittlement mechanism in SAF 2205. The trapping energies levels were calculated using TDS and Lee and Lee's model. This model revealed reversible in addition to irreversible trapping sites. Also the trapping controlling mechanism was found to be a combination of detrapping controlled mechanism and diffusion controlled mechanism. The use of ToF-SIMS for local imaging the distribution of hydrogen species supports the discussion of the different hydrogen traps in this type of steel. The hydrogen embrittlemet phenomenon in SAF 2205 will be discussed in details in that paper.
Hydrogen can cause unexpected material failure under consideration of stresses (external/internal) during manufacturing, processing or service of the materials. This failure is mostly based on a certain degradation of the mechanical properties. Thus, the correlation of hydrogen trapping vs. a respective microstructure is necessary for high strength steels. Thus, the scope of this work is the improvement of existing hydrogen trap models by verification of activation energies for hydrogen traps as well as the influence of the determination method. In this scope, the thermal desorption method is appropriate to distinguish between different hydrogen traps. Nevertheless, the specimen temperature has to be accounted very carefully in case of calculating the necessary trap energy.
In this study, hydrogen absorption and storage was investigated for various high-alloyed ferritic-austenitic duplex stainless steels. On account of the specific transformation and solidification behaviour, respectively, of duplex stainless steels as compared to single-phase ferritic and austenitic steels, special conditions have to be considered concerning hydrogen absorption which may ultimately lead to microstructure-dependent hydrogen-assisted weld metal cracking. Hydrogen absorption during welding may occur via the shielding gas, moisture from the surroundings or via the welding filler material. As a contribution to the interpretation and prediction of hydrogen-induced cracking in welded duplex stainless steels, the actual hydrogen absorption via the arc as well as the weld metal hydrogen diffusion was investigated in a duplex stainless steel DSS (1.4462) and in a lean-duplex stainless steel LDS (1.4162). Isothermal heat treatment using carrier gas hot extraction enabled quantification of the amounts of hydrogen trapped in the respective microstructures. The total hydrogen concentrations were found to be nearly identical. Trapped hydrogen was however observed to be dependent on the material and on the microstructure condition. The influence of hydrogen on the mechanical properties of the weld metal was characterized with the help of tensile tests. In addition, hydrogen embrittlement was detected in scanning electron microscopic analyses.