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Paper des Monats
- ja (6)
Nickel base alloys are frequently applied in safety-relevant fields such as chemical plant construction or power plant engineering. Particularly on account of their cubic face-centered solidification characteristic, these materials are frequently susceptible to metallurgy-specific hot cracking during fusion welding. A classification of these materials according to their hot cracking resistance in the MVT-Test (Modified Varestraint Transvarestraint Test) is carried out by the example of a series of base and welding filler materials. Moreover, it has been proven by the MVT Test that the hot cracking resistance of nickel base alloy (Alloy 602 CA) can be improved by selecting appropriate shielding gases.
To the revision of ISO 3690 regarding the acceptance of the carrier gas hot extraction method
(2004)
Improving HAZ Toughness of High Heat Input Welded Joints by Using Boron Diffusion from Weld Metal
(2004)
Risssicherheit von Schweißnähten an Pipelines der Offshore-Industrie aus supermartensitischem Stahl
(2005)
Anwendung des neuen Controlled Tensile Weldability (CTW) Tests zur Untersuchung der Heißrissneigung
(2006)
Stress build up in low transformation temperature filler material under defined restraint conditions
(2009)
Aspects of positional laser-GMA-hybrid welding using high alloyed tubular cored wire electrodes
(2008)
Cold cracking resistance is a relevant evaluation criterion for welded joints and affected by residual stresses which result from the welding procedure. Compressive residual stresses can thereby have a positive influence on preventing cracking. A unique possibility of generating compressive residual stresses already during the welding procedure is offered by the socalled Low Transformation Temperature (LTT) filler wires. Compared to conventional wires, these materials show decreased phase transformation temperatures which can work against the cooling-specific contraction. In consequence, distinct compressive residual stresses can be observed within the weld and adjacent areas. The strength of these fillers makes them potentially applicable to high-strength steel welding. Investigations were carried out to determine the phase transformation behaviour of different LTT-filler materials. Transformation temperatures were identified using Single Sensor Differential Thermal Analysis (SS-DTA). Additionally Synchrotron radiation was used to measure the transformation kinetics of all involved crystalline phases during heating and cooling of a simulated weld thermal cycle.
Laser-gas metal arc (GMA)-hybrid welding enables a high deposition rate and a stable welding process. Process stability was found to be profoundly dependent on the type of the applied filler wire (solid or tubular cored). Whereas solid wires are deposited in pulsed arc mode, tubular cored wire electrodes are weldable by a stable spray-arc process within a wide operating range. This fact applies above all to a high alloyed metal cored wire electrode, of which the achievable deposition rates exceed the upper limits recommended by the manufacturer. A further interesting aspect is the application of a rutile tubular cored wire for positional laser-GMA-hybrid welding. A modern 20 kW-fibre laser source was available for the experiments. This study is concerned with the weldability of high alloyed tubular cored electrodes for high power laser-GMA-hybrid welding. Results obtained from comparative investigations between tubular cored and solid wire electrodes relating to process stability are summarised.
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.
CT-01 Formation of welding residual stresses in low transformation temperature (LTT) materials
(2008)
For the safety and cost efficiency of welded high-strength steel structures, precise knowledge of the level and distribution of welding- and cooling-specific stresses and residual stresses is essential, since they exert a decisive influence on strength, crack resistance, and finally on the bearable service load. This paper presents innovative filler materials, of which the phase transformation temperature was deliberately adjusted via the chemical composition. The transformation behaviour of these martensitic Low Transformation Temperature (LTT-) filler materials shows direct effects on the local residual stresses in the weld and the HAZ. These effects can purposefully be exploited to counteract the thermally induced shrinkage of the material and to produce significant compressive residual stresses in the weld. Comparative welding experiments were carried out on 690 MPa high-strength base materials using various LTT-filler materials. High energy synchrotron radiation was used for residual stress measurement. Particularly the use of high energy synchrotron radiation makes it possible to detect the residual stress condition fast without destruction of material. Thereby, residual stress depth gradients can be determined simultaneously without removing material. In steel, gradients of up to 150 µm can be resolved in such a way. Furthermore, the application of high energy radiation permits determination of residual stresses of any available residual austenite contents. Results show significant dependence of transformation temperatures on the resulting residual stress level and distribution.
Cold cracking resistance is a relevant evaluation criterion for welded joints and affected by residual stresses which result from the welding procedure. Compressive residual stresses can thereby have a positive influence on preventing cracking. A unique possibility of generating compressive residual stresses already during the welding procedure is offered by the so-called Low Transformation Temperature (LTT) filler wires. Compared to conventional wires, these materials show decreased phase transformation temperatures which can work against the cooling-specific contraction. In consequence, distinct compressive residual stresses can be observed within the weld and adjacent areas. The strength of these fillers makes them potentially applicable to high-strength steel welding. Investigations were carried out to determine the phase transformation behaviour of different LTT-filler materials. Transformation temperatures were identified using Single Sensor Differential Thermal Analysis (SS-DTA). Additionally Synchrotron radiation was used to measure the transformation kinetics of all involved crystalline phases during heating and cooling of a simulated weld thermal cycle.
This international round robin test served to scrutinize the procedures specified in ISO/DIS 3690:2009 for determining the diffusible hydrogen content in weld metals with bcc-lattice structure. It was specifically intended to check in what respect the specifications defined in the indicated standards for specimen preparation, storage and hydrogen analysis provide comparable measurement results. The round robin test is presented comprising comparative measurements at various degassing temperatures using hot extraction techniques and a thermal conductivity detector (TCD). A major focus of this investigation was the examination of the maximum degassing temperature for analysing the diffusible hydrogen in materials with bcc-lattice structure. The analyses were performed using two different stick electrodes and three different filler wires. As a significant result it was found that no deviations or increases, were detected in the measured contents of diffusible hydrogen for the investigated degassing temperatures ranging between 45 degrees C and 400 degrees C. Hydrogen analyses for contents below HD = 1.5 ml/100 g with the hot extraction techniques in conjunction with TCD applied in this study led to considerable relative standard deviations.
Eine Anzahl verschiedener Effekte ergibt sich aus der Anwesenheit von Wasserstoff während des Schweißens hochlegierter Stähle. Die Betriebsdauer von geschweißten Bauteilen ist außerdem stark von der Anwesenheit von Wasserstoff im Umgebungsmedium und der Anfälligkeit der verschiedenen Schweißnahtgefüge für eine Degradation ihrer Eigenschaften durch Wasserstoff abhängig. Als eine relative neue Werkstoffgeneration finden supermartensitische hoch legierte Stähle (Supermartensitic Stainless Steels - SMSS) zunehmend als Ersatz für teuere Legierungen insbesondere in der Öl- und Gasindustrie Verwendung. Als Konsequenz ihres martensitischen Gefüges sind diese Legierungen anfällig für eine wasserstoffunterstützte Rissbildung (Hydrogen Assisted Cracking - HAC). Der Widerstand von supermartensitischen Stählen gegen wasserstoffunterstützte Spannungsrisskorrosion (Hydrogen Assisted Stress Corrosion Cracking - HASCC) unter Sauergasbedingungen wurde vor allem für industrielle Einsatzzwecke extensiv untersucht. Solche Studien vornehmlich an Grundwerkstoffen basieren überwiegend auf Standard-Prüfverfahren. Dem gegenüber würde das grundsätzliche Verhalten von Wasserstoff in den Gefügen geschweißter supermartensitischer Stähle wenig untersucht. Die zentralen Gründe für die diesem Beitrag zugrunde liegende Studie waren daher, die Effekte des Wasserstoffs auf das Gefüge von Wolfram Inert Gas (WIG)-Schweißungen supermartensitischer Stähle und die entsprechenden Wasserstoff-Trapping-Mechanismen zu untersuchen. Die Wirkungen des Wasserstoffs auf die verschiedenen WIG-geschweißten Gefüge wurden mittels Röntgendiffraktometrie, Lichtmikroskopie und Rasterelektronenmikroskopie untersucht. Eine Anzahl von Verfahren wurde außerdem angewendet, um den absorbierten Wasserstoff quantitativ zu bestimmen. Die Wechselwirkung zwischen Wasserstoff mit den mikrostrukturellen Defekten und die Charakteristika der Wasserstoffdesorption wurden mittels Thermischer Desorptionsspektroskopie (TDS) und Trägergas-Heißextraktionen des Wasserstoffs (LECO Analyse) untersucht. Die Wirkung des Gefüges auf die Absorption und Desorption von Wasserstoff werden im Detail diskutiert.
Comparative study between hot extraction methods and mercury method - a national round robin test
(2010)
A round robin test is presented comprising comparative measurements using hot extraction at different degassing temperatures as well as the mercury method. A major focus of the investigation was verification of the maximum degassing temperature for analysing the diffusible hydrogen in weld metals with bcc-lattice structure. The analyses were executed using a basic stick electrode with high weld metal cracking, a high-alloyed supermartensitic filler wire with different hydrogen contents in the shielding gas and a high-strength solid wire. The results show that degassing temperatures of 150 degrees C and 400 degrees C do not lead to an increase in the measured contents of diffusible hydrogen as compared to measurements at room temperature. The measuring techniques and procedures specified in ISO/DIS 3690:2009 for determining the diffusible hydrogen content in weld metals with bcc-lattice structure yield approximately the same results. This is to say that the mercury method and the hot extraction methods with thermal conductivity detector (TCD) can be regarded as equivalent reference methods.
Crack and fatigue resistance are relevant evaluation criteria for welded joints and are decreased by tensile residual
stresses resulting from the welding and cooling process, while compressive residual stresses can have a positive
influence on the characteristics mentioned. In order to generate compressive residual stresses, a set of post weld
treatment procedures is available, like shot peening, hammering, etc. These procedures have the disadvantage that
they are time and cost extensive and have to be applied after welding. As another point, such technologies can only
produce compressive stresses at the top surface, i.e. can only contribute to the reduction of the risk of cracks initiated
at the surface, like fatigue cracks. A chance to generate compressive stresses over the complete weld joint during the
welding procedure is offered by the so-called Low Transformation Temperature (LTT -) filler wires. Compared to
conventional wires, these materials show lower phase transformation temperatures, which can work against coolingrelated
tensile stresses, resulting from respective shrinkage restraint. In consequence, distinct compressive residual
stresses can be observed within the weld and adjacent areas. The strength of these fillers makes them potentially
applicable to high-strength steel welding. Welds produced with different LTT filler wires have shown different levels
and distributions of the resulting residual stresses depending on the specific transformation temperature. The
transformation temperatures are determined by temperature measurement. Classical X-ray diffraction as well as
diffraction methods using high energy synchrotron radiation have been used for residual stress analysis. By means of
high energy synchrotron diffraction in reflection mode residual stress depth gradients can be determined nondestructively.
The phase selective nature of the diffraction measurements enables the simultaneous determination of
the phase specific residual stresses of all contributing crystalline phases within one experiment. The application of
white beam diffraction implies recording of a multitude of diffraction lines within the energy range of the provided
energy spectrum of the white beam. By this means phase specific residual stress depth distributions up to distances of
150 ìm below the surface can be analysed for steel using the energy dispersive set-up of the HMI-beamline EDDI at
the Bessy site, Berlin, providing an energy range between 20-150 keV. As a side effect quantitative phase analysis can
be carried out using white energy dispersive diffraction e.g. the determination of the content of retained austenite in the
weld.
Novel martensitic filler materials with specially adjusted martensite start temperatures (Ms) can counteract the cooling specific shrinkage due to expansion effects of the weld metal associated with phase transformations. That can be exploited to create compressive residual stresses in the weld and adjacent areas, i.e. beneficial for increasing fatigue strength. The Ms temperature is shifted via the chemical composition, mainly by the alloying elements nickel and chromium, resulting as well in different retained austenite contents. Investigations were made using different Low Transformation Temperature (LTT) alloys with varying nickel content. The resulting phase transformation temperatures were - for the first time - detected using high energy synchrotron diffraction and Single Sensor Differential Thermal Analysis (SS-DTA). Compared to angle dispersive diffraction, energy dispersive diffraction offers the possibility to measure residual stresses of the martensite and austenite phase parallel fast in one experiment up to depths of 100 µm. The residual stresses show significant distributions dependent on Ms temperature. The effect on the cold cracking behaviour of these alloys was investigated using the Tekken test. Results show that cold cracking can be avoided when appropriate contents of retained austenite are existent.
Zugeigenspannungen, wie sie beim Schweißprozess durch inhomogene Temperaturverteilungen und Schrumpfungen hervorgerufen werden, können die Lebensdauer geschweißter Verbindungen signifikant herabsetzen. Eine neue und außerordentlich attraktive Methode, um Druckeigenspannungen bereits während des Schweißens gezielt einzustellen, gelingt mit sogenannten LTT (Low Transformation Temperature)-Legierungen. LTT-Legierungen weisen eine martensitische Phasenumwandlung bei relativ niedrigen Temperaturen auf, wobei die damit verbundene Volumenexpansion zu einer Reduktion der Schrumpfeigenspannungen bzw. Erzeugung von Druckeigenspannungen führt. Zum direkten Nachweis der Phasenumwandlungen und der damit verbundenen resultierenden Schweißeigenspannungen wurden erstmals In-situ-Schweißexperimente unter Nutzung hoch energetischer, polychromatischer Synchrotronstrahlung (Weißstrahl) realisiert, um die Umwandlungskinetik während eines realen Schweißprozesses und die daraus resultierenden Schweißeigenspannungen zu analysieren. Es wird gezeigt, dass mit LTT-Legierungen signifikante Druckeigenspannungen in der Schweißnaht erreicht werden.
Direct measurement and quantification of phase transformation in a low-alloyed transformation induced plasticity steels depending on the tensile load as well as determination of the real true stress and true strain values were carried out in-situ using high energy synchrotron radiation. Digital image correlation technique was used to quantify more precisely the true strain values. The aim of the work was to obtain a better understanding of the phase transformation of commercial low-alloyed transformation induced plasticity steel depending on the true strain and true stress values.
Up to the present, the thermomechanical loads during welding and subsequent cooling under design-specific shrinkage restraint resulting from the interaction between the materials and the structure have often not been taken into consideration approperiately for weldability assessment of components. As compared to previous investigations using small specimens this report presents component weld tests under varying intensities of restraint. Online records of the reaction forces and moments demonstrate in which way the intensity of restraint affects the reaction stresses and moments and their meaning for the evaluation of the load level in welded components.
Düring the past decades, weldability studies have predominantly been concentrated on the material and the welding process. In order to achieve a closer insight into the structural effects, component weldability tests have been performed by online monitoring of the reaction forces and moments. As a particular item, the effects of different strengths of the base and filier material on the reaction force and stress build up transverse to the welding direction have been studied at a specific structural restraint. As a most relevant result for practical welding it is demonstrated that the final reaction force and also the reaction stress level in the multilayer butt welds decreases with overmatch of the weld metal.
In this study, hydrogen absorption and diffusion were investigated for various high-alloyed ferritic-austenitic duplex steels. On account of the specific transformation and solidification behaviour, respectively, of duplex 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 steels, the actual hydrogen absorption via the arc as well as the weld metal hydrogen diffusion was investigated for the first time in a duplex steel DS (1.4462), a super duplex steel SDS (1.4501) and in a lean duplex steel LDS (1.4162). Isothermal heat treatment using carrier gas hot extraction enabled quantification of the amounts of hydrogen trapped in the respective microstructure areas. The hydrogen diffusion coefficients were determined by analytical and numerical calculation. The total hydrogen concentrations and the diffusion coefficients 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 mechano-technological properties of the weld metal was characterized with the help of tensile tests. In addition, the hydrogen embrittlement effect was detected in scanning electron microscopic analyses.
Wasserstoffanalytik und Degradation von Werkstoffeigenschaften von hochfesten Feinkornbaustählen
(2011)
Gegenstand dieses Forschungsprojekts waren Untersuchungen zur Qualifikation von Fülldrahtelektroden für das Laserstrahl-MSG-Hybridschweißen hochlegierter Stähle. Dieser Typ Drahtelektrode ermöglicht aufgrund seines ringförmigen Metallmantels und der pulverartigen Füllung insbesondere im oberen Bereich der erzielbaren Abschmelzleistungen einen stabilen, spritzerarmen Werkstoffübergang vergleichbar dem im Sprühlichtbogen. Im Gegensatz dazu wird beim Abschmelzen von Massivdrahtelektroden ein kontrollierter Werkstoffübergang durch die Impulslichtbogentechnik erreicht.
Die Werkstoff- und prozessspezifischen Eigenschaften beim Schweißen dieser Zusatzwerkstoffe haben einen signifikanten Einfluss auf die Schweißnahtmetallurgie sowie die Prozessstabilität. Zur Untersuchung der Übertragbarkeit der erzielbaren Werkstoffeigenschaften vom MSG-Schweißen auf das Laserstrahl-MSG-Hybridschweißen wurden Versuche am hochlegierten Grundwerkstoff AISI403L (X2CrNil911) durchgeführt. Als Zusatzwerkstoffe gemäß DIN EN 12 072 und DIN EN ISO 17 633 kamen vier Drahtelektroden, ein eigens für das Positionsschweißen konzipierter Rutilfülldraht 19 9 L P M1, ein zum Schweißen in Wannenposition geeigneter Rutilfülldraht T 19 9 L R M (C) 3, ein Metallpulverfülldraht T199LMM1 sowie ein Massivdraht G19 9 L Si zum
Einsatz.
Neutron radiography and tomography have been used for a time resolved in situ analysis and a 3D mapping of hydrogen diffusion in iron and steel. Samples were electrochemically charged with hydrogen and afterwards neutron transmission images were taken. Hydrogen diffusion coefficients in duplex stainless steel were determined at 623 K by measuring and comparing the sample's mean intensity with a hydrogen-free reference sample and subsequent normalisation to standards with known hydrogen content. In technical iron and in supermartensitic stainless steel the hydrogen distributions have been investigated. The radiographic images in iron show blisters, cracks and the distribution of molecular hydrogen inside cracks. The analysis of the diffusion behaviour of hydrogen out of a blister illustrates the capabilities of the method with respect to time and spatial resolution. The neutron tomography of supermartensitic tensile stressed samples illustrates the capability to visualise hydrogen distributions three-dimensionally. -------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------
On a utilisé la radiographie neutronique et la tomographie pour une analyse in situ à résolution temporelle et une cartographie 3D de la diffusion de l'hydrogène dans le fer et l'acier. On a chargé des échantillons par électrochimie avec de l'hydrogène et ensuite on a pris des images par émission de neutrons. On a déterminé les coefficients de diffusion de lhydrogène dans l'acier inoxydable duplex à 623 K en mesurant et en comparant l'intensité moyenne de l'échantillon avec un échantillon de référence sans hydrogène et une normalisation subséquente à des échantillons références à teneur connue en hydrogène. On a examiné la distribution d'hydrogène dans le fer technique et dans l'acier inoxydable supermartensitique. Les images radiographiques du fer montrent des soufflures, des fissures, et la distribution de l'hydrogène moléculaire à l'intérieur des fissures. L'analyse du comportement de diffusion de l'hydrogène hors d'une soufflure illustre les possibilités de la méthode par rapport à la résolution temporelle et spatiale. La tomographie neutronique des échantillons supermartensitiques chargés en traction illustre la capacité de visualiser les distributions d'hydrogène en trois dimensions.
The application of high-strength fine-grained structural steels with yield strengths greater than or equal to 690 MPa expands because of present light weight design trends. The requirements regarding the welded components safety increased due to high loading capacity. This determines a sustainable and economic application as well. However, high welding residual stresses could diminish the components safety, especially due to high restraint conditions in component or repair welds. Therefore, this work is concerned with global and local welding stresses, especially crack-critical welding stresses in the HAZ and while root welding due to the restraint conditions. Restraint intensities of real components were analysed and realised with two different weld tests, alongside two different plate dimensions and steel grades. A comparison of the test results showed several significant effects for heat control and restraint intensity regarding restraint forces and local welding stresses. Among these effects, substantial influences were found for the filler metal selection with partially altered results for root and filler beads. Local stresses of weld seam and HAZ were affected differently.
High strength structural steels are susceptible to hydrogen embrittlement. A critical combination of stress, amount of diffusible hydrogen and microstructure is believed to cause cold cracking. Especially during welding of high strength structural steels high tensile residual stresses may develop. Therefore, a feasibility study was conducted using synchrotron X-ray diffraction in order to analyze the stress–strain behavior during tensile loading. For that purpose two types of steel showing different hardening mechanisms were used. On the one hand a thermo-mechanically treated S1100MC and on the other hand a quenched and tempered S1300Q were chosen. The samples were electrochemically charged with hydrogen and subsequently stored in liquid nitrogen to prevent effusion. Tensile tests of the samples were conducted in a special load frame allowing for tilting the samples while applying constant loads. High energy synchrotron radiation was used for energy dispersive X-ray diffraction (EDXRD) analysis in transmission geometry. This method offers the possibility for measuring several diffraction lines of all contributing crystalline phases of the material. Strains as well as stresses applying the sin²ψ-method were determined for varying load situations. This feasibility study shows how the interaction of hydrogen and the stress/strain response may be assessed by diffraction methods. Examples are presented showing that hydrogen alters the load distribution as well as the strain behavior between different lattice planes in high strength steels.
Hydrogen embrittlement (HE) is a widely known phenomenon and under investigation already for more than a century. This phenomenon, though thoroughly studied, is not yet completely understood, and so far, there are several suggested mechanisms that try to explain the occurrence of HE. One important factor of understanding the HE phenomenon and predicting hydrogen-assisted failure is the descent knowledge about the hydrogen transport behaviour in the material. Neutron radiography is a proven method for tracking hydrogen diffusion and it was applied successfully in various research studies. In the presented study, we examined the hydrogen effusion behaviour in duplex stainless steel by means of neutron radiography and calculated the effective diffusion coefficient from the obtained transmission images.
Große Materialstärken und komplexe Strukturen bewirken eine erhebliche Schrumpfbehinderung der Schweißnaht.
Die aus dem Schweißprozess resultierenden multiaxialen Belastungen tragen maßgeblich zur Gesamteigenbeanspruchung einer Schweißkonstruktion bei und lassen sich nur unter realen Fertigungsbedingungen analysieren.
Zur wirklichkeitsnahen Simulation der komplexen Steifigkeitsverhältnisse realer Bauteile wurden hierzu in einer speziellen 3D-Prüfanlage UP-Mehrlagenschweißungen am warmfesten Stahl 13CrMoV9-10 durchgeführt. Während der schweißtechnischen Fertigung sowie der Abkühlung auf Raumtemperatur wurden die Proben an der freien Ausdehnung und Schrumpfung gehindert. Der Einfluss der Wärmeführung, d.h. Streckenenergie (E) und Vorwärm-/Zwischenlagentemperatur (T(Pli>), auf die resultierende Bauteilbeanspruchung wurde durch in-situ Messungen der Reaktionskräfte (Fy) und Biegemomente (Mx) während des Schweißens und der anschließenden Wasserstoffarmglühung untersucht. Sowohl die Reaktionskräfte als auch die Biegemomente steigen mit zunehmender Vorwärmtemperatur an und somit erhöht sich die Beanspruchung des Wurzelbereiches. Während die Vorwärm-/Zwischenlagentemperatur einen signifikanten Einfluss auf die resultierenden Reaktionskräfte hat, ist der Einfluss auf die Biegemomente nach Abkühlung auf Raumtemperatur vernachlässigbar. Eine Erhöhung der Streckenenergie wirkt sich nur geringfügig auf die Höhe der Endreaktionskraft aus, beeinflusst aber signifikant das resultierende Biegemoment nach erfolgter Abkühlung auf Raumtemperatur.
The increased application of higher-strength steels and filler materials necessitates more profound understanding of the interaction between the welding process, the heat input, the cooling conditions and the resulting metallurgical processes in the weld and its surroundings. Strategies which help to improve the strength properties and life-time of welded structures to such an extent that the utilisation of higher-strength materials can be justified and their lightweight construction potential can thus be exploited to the full can only be derived from the interaction between all the influencing factors. Examples of a few investigations on welded joints between higher-strength fine-grained structural steels with regard to the interactions between the main variables influencing the cold cracking are presented in this article.
Die experimentelle Spannungsanalyse dient einerseits zur Ermittlung von Materialeigenschaften, andererseits erlangt sie gerade für die wirtschaftliche Auslegung und die Integrität von geschweißten Komponenten zunehmend an Bedeutung.
Da die Höhe und Veränderung von Bauteilbeanspruchungen und deren Auswirkung auf die Sicherheit von einer Vielzahl und sich überlagernder werkstofflicher, mechanischer und thermischer Einflussfaktoren (Steifigkeitsverhältnisse, Fertigungsprozesse, Lastwechsel) abhängt, sind fertigungs- bzw. betriebsbegleitende Messungen von mechanisch und thermisch bedingten Dehnungen und daraus ermittelten Spannungen oftmals unumgänglich.
In geschweißten Komponenten sind oft komplexe Spannungs- bzw. Eigenspannungsverteilungen in den verschiedenen Raumrichtungen vorhanden. In Abhängigkeit vom anzusetzenden Tragfähigkeitsnachweis bzw. Berechnungskonzept des Tragwerkes sind sowohl experimentelle Methoden mit hoher Ortsauflösung (lokale Messungen) als auch mehrdimensionale Analysen über weite Bereiche des Bauteils (globale Messungen) von Dehnungen und Spannungen notwendig.
In der Beurteilung der Schweißbarkeit für die Sicherheit und Zuverlässigkeit von Bauteilen fanden bisher die aus der Interaktion zwischen den Werkstoffen und der Konstruktion resultierenden thermomechanischen Belastungen während des Schweißens und der nachfolgenden Abkühlung unter konstruktiv bedingter Schrumpfbehinderung häufig nur wenig Beachtung. Gegenüber bisherigen Untersuchungen an Kleinproben wurden daher im Rahmen dieser Arbeit bauteilrelevante Schweißverbindungen unter realistischen Spannungsverteilungen geprüft. Diese Bauteilschweißversuche wurden in einer speziellen Großprüfanlage unter Variation der Schrumpfbehinderung, des Grund- und Zusatzwerkstoffes sowie der Streckenenergie durchgeführt. Dabei erweist sich das Konzept des Einspanngrades als geeignet, um die reale konstruktionsbedingte Schrumpfbehinderung auf die Versuchsanlage zu transferieren. Mittels online-Aufzeichnungen der Reaktionskräfte und -momente konnte gezeigt werden, wie sich diese Einzeleinflussgrößen jeweils auf die Höhe und den Verlauf der Reaktionskräfte und -momente auswirken und welche Bedeutung sie für die Einschätzung des Belastungsniveaus in Form von Spannungen und Dehnungen in Bauteilen besitzen. Unter anderem stellte sich heraus, dass unter relativ geringen Einspanngraden eine unkritische Eigenbelastung des Bauteiles vorliegt, jedoch bei hoher Steifigkeit die thermomechanische Beanspruchung bis zum Riss führen kann. In dieser Arbeit wurde erstmalig die Wirkung der Festigkeit von Zusatzwerkstoffen auf die Spanungs-Dehnungsverteilung unter definierter Schrumpfbehinderung am Bauteil untersucht. Es zeigte sich, dass unabhängig vom Grundwerkstoff ein hochfester Schweißzusatz zu geringeren Reaktionskräften führt als beim Schweißen mit einem Schweißzusatz mit vergleichsweise niedrigerer Festigkeit. Weiterhin wurde der Dehnungsverlauf beim und nach dem Schweißen unter definierter Schrumpfbehinderung mittels Dehnungsmessstreifen und einem Wegmesssystem bestimmt. Abhängig vom Schweißnahtabstand und dem Einspanngrad traten charakteristische Verformungsverläufe auf. Anhand dieser Ergebnisse konnte eine bisher ungebräuchliche jedoch notwendige Aufteilung der Schweißung in Nah- und Fernfeld erfolgen. Mit der inkrementellen Bohrlochmethode wurden die Eigenspannungen im Nahtbereich unter Einspannung, nach dem Entlasten und nach dem Wiederbelasten auf das Niveau der ursprünglich wirkenden Reaktionskräfte der Proben ermittelt und mit röntgenografischen Werten verglichen. Der Zusammenhang zwischen Einspanngrad und den Nahteigenspannungen lässt sich durch einen einfachen funktonalen Ansatz beschreiben. Den Untersuchungen wurde aufgrund der auf diesem Gebiet vorliegenden sehr unzusammenhängenden Literatur ein detaillierter Kenntnisstand vorangestellt.
In einer speziellen 3D-Prüfanlage zur wirklichkeitsnahen Simulation von komplexen Verhältnissen an Großproben wurden UP-Mehrlagenschweißungen am warmfesten Stahl 13CrMoV9-10 durchgeführt. Während der schweißtechnischen Fertigung und der Abkühlung auf Raumtemperatur wurden die Proben an der freien Ausdehnung und Schrumpfung gehindert. Die daraus resultierenden Reaktionsspannungen führten während der Wärmenachbehandlung zu Relaxationsrissen in der Wärmeeinflusszone. Das Spannungsarmglühen wurde bei einer Temperatur von 705°C und einer Haltezeit von 8 h durchgeführt. Während der Aufheiz- und Abkühlphasen wurde die thermische Ausdehnung der Probe über die 3D-Prüfanlage kompensiert und damit das Spannungsniveau bis zum Erreichen der maximalen Glühtemperatur aufrechterhalten. Nach Erreichen der Glühtemperatur konnte die Probe relaxieren. Der Einsatz der Schallemissionsmessung ermöglichte es die Entstehung von Spannungsrelaxationsrisse, erstmalig online, nachzuweisen. Durch Synchronisierung der Schallemissionsereignisse mit den Messdaten der 3D – Prüfanlage wurde der kritische Temperaturbereich für das Auftreten von Spannungsrelaxationsrissen bestimmt. Die Rissinitiierung findet im Temperaturbereich zwischen 350°C - 500°C statt. Aussagen über das Risswachstum können auf Grund der ungünstigen Versuchsbedingungen, mit Emission von Störgeräuchen, nicht getroffen werden.
Neutron radiography (NR) is compared with the commonly used carrier gas hot extraction (CGHE) technique. We performed isothermal hydrogen effusion experiments at 623 K to study the mass transport kinetics. The investigated material was technical iron. The quantification of the hydrogen mass flow is done for NR by using concentration standards. The temporal hydrogen concentration evolution in the sample coincides well for both methods, i.e. NR and CGHE, and is in good agreement with literature. The advantages of the NR method are the non-destructive nature of measuring and the in-situ determination of hydrogen concentrations with high spatial and temporal resolution. Remaining hydrogen inside the sample can be identified directly by the NR method.
Modern methods like carrier gas hot extraction enable the quantification of dissolved hydrogen as well as the determination of the hydrogen trapping and diffusion behavior. This method was applied in order to compare for the first time the hydrogen diffusion and trapping behavior in electrochemically charged and welded duplex stainless steel (1.4462). Characteristic extraction temperatures (400, 650, and 900 °C) were used to quantify the amounts of diffusible hydrogen and trapped hydrogen for the base material and the weld metal, and in order to calculate the effective diffusion coefficients corresponding to the specific temperature. The comparison of the charging methods showed that electrochemically charged samples have a higher content of diffusible hydrogen than the welded samples. In addition, the effusion times increase in welded samples, which indicate a higher amount of trapped hydrogen. In electrochemically charged weld samples, a significant lower concentration of hydrogen was determined than in the base material. In addition, the effective diffusion coefficients were calculated for every microstructure and charging method. It was found that the base material has a higher effective hydrogen diffusion coefficient than that of the weld metal. This effect is due to the tortuous path of hydrogen diffusion in the weld metal.
Low transformation temperature (LTT) alloys allow to control residual stresses already during the welding process. Especially high-strength structural steel applications may benefit from the LTT effect as they are sensitive to residual stresses due to a limited ductility. Within this study, two modified LTT alloys were tested concerning their weldability under varying conditions. Beside the transformation behavior, basic material properties were determined from all weld metal. Hot cracking as well as cold cracking susceptibility was evaluated using specific tests. The materials' capability for residual stress control was characterized by online measurements of the occurring loads during double-sided multipass fillet welding in a special test facility. Varying heat control parameters were found to affect the stress buildup significantly. In the specific case, the results revealed that higher working temperatures may favor lower stress buildup despite the higher overall heat input. Local residual stress measurements using X-ray diffraction support this finding.