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- Welding (6)
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Organisationseinheit der BAM
Mikrostruktur- und Härteentwicklung in Schweißnähten mit neuartigen LTT-Schweißzusatzwerkstoffen
(2013)
Residual stress engineering in welding becomes more and more prominent as the use of tailored materials, e.g., high-strength steels, calls for maximum utilization of the material properties. As a consequence, residual stresses have to be considered as design criterion. Moreover, it may be utilized to improve the material's performance. Low transformation temperature alloys are a smart approach to control the residual stresses already during the welding process avoiding time-consuming postweld treatments. This paper gives an overview about the progress made in research in this topic with special focus on residual stresses. Basics as well as important developments will be addressed.
Modifying the level of mostly detrimental welding residual stresses already during the welding process would be highly attractive as time- and cost-consuming post processing may be prevented. The nature of stress buildup during welding-associated cooling is highly affected by phase transformations. Up to now, it is not clear in which way this is applicable to real component welding exhibiting high shrinkage restraint and complex heat input. In this study, two different low transformation temperature (LTT) alloys have been investigated concerning the stress development in restrained multi-run butt welding in order to evaluate the potential of stress reduction. Pulsed gas metal arc welding (P-GMAW) welding was executed on a testing facility designed to simulate real lifelike restraint conditions of component weldments. The effect of reducedMS-temperatures and the heat control on the globally acting stresses was monitored by in-situ measurement of the reaction forces during welding fabrication. Additional local residual stress measurements allowed analyzing global as well as local loading of the welded construction. Although phase transformation has a significant influence on unloading the joint during each weld pass, the reaction stress upon cooling to room temperature seems to be determined mainly by the heat input. On the surface, low longitudinal residual stresses were observed in case of LTT whereas transverse residual stresses are less affected.
Low Transformation Temperature (LTT) alloys are high alloyed filler materials, which exhibit a martensitic phase transformation at comparatively low temperatures in order to prevent high tensile residual stresses. A number of publications have already shown that even compressive residual stresses can be observed when using LTT filler materials. Up to know it is not clear in which way this it applicable to multi-run welding exhibiting high shrinkage restraint and complex heat input. In this study the potential for stress reduction during welding of LTT alloys was studied by numerical simulation. This allows for evaluation of the stress development in every single weid run. Additionally, the impact of the structural stiffness was incorporated by modelling a special sample geometry exhibiting a high intensity of restraint. The results show that the stress formation in weid longitudinal direction is determined by the phase transformation as high compressive residual stresses were found here independent from the weid run. On the other hand the transformation induced stresses in weid transverse direction are superimposed by tensile stresses originated from shrinkage restraint. With increasing number of runs the tensile residual stress level is raised. The results were confirmed by residual stress measurements using diffraction methods.
The current paper presents residual stress analyses of large scale LTT (Low Transformation Temperature) welds. LTT filler materials are specially designed for residual stress engineering by means of an adjusted martensite phase transformation. Controlling the level of mostly detrimental residual stresses already during the welding process would be highly attractive as time and cost consuming post processing may be prevented. In large scale welds the residual stress state is influenced by the heat control (e.g. interpass temperature) during welding. Therefore, welding residual stresses are studied here putting the focus on the influence of welding process parameters while joining heavy steel sections with a thickness of 25 mm. The residual stress state was determined at the top surface using X-ray diffraction as well as in the bulk by neutron diffraction. The results show that control of the interpass temperature is vital for the residual stresses present in the joints. This accounts for the top surface but is most pronounced for the bulk of the welds. While high interpass temperatures are appropriate to induce compressive residual stresses in the weld metal, low interpass temperatures favor unwanted tensile residual stresses instead.
Residual stresses and distortions in welded I-girders for steel construction are relevant when evaluating the stability of steel beams and column members. The application of high strength steels allows smaller wall thicknesses compared to conventional steels. Therefore, the risk of buckling has to be considered carefully. Due to the lack of knowledge concerning the residual stresses present after welding in high strength steel components conservative assumptions of their level and distribution is typically applied. In this study I-girders made of steels showing strengths of 355 MPa and 690 MPa were welded with varying heat input. Due to the dimension of the I-girders and the complex geometry the accessibility for residual stress measurement using X-ray diffraction was limited. Therefore, saw cutting accompanied by strain gauge measurement has been used to produce smaller sections appropriate to apply X-ray diffraction. The stress relaxation measured by strain gauges has been added to residual stresses determined by X-ray diffraction to obtain the original stress level and distribution before sectioning. The combination of both techniques can produce robust residual stress values. From practical point of view afford for strain gauge application can be limited to a number of measuring positions solely to record the global amount of stress relaxation. X-ray diffraction can be applied after sectioning to determine the residual stresses with sufficient spatial resolution.
Die Verwendung von LTT-Zusatzwerkstoffen stellt einen alternativen Ansatz zu den sonst üblichen Verfahren der Schweißnahtnachbehandlung zur Schwingfestigkeitserhöhung geschweißter Stahlkonstruktionen dar. Der wesentliche Wirkmechanismus beruht auf der Beeinflussung des Eigenspannungszustands durch die niedrige Martensitstarttemperatur bereits während des Schweißens. Dadurch werden die Druckeigenspannungen aus der behinderten Volumenausdehnung infolge Phasenumwandlung voll wirksam. Weiter weist die Schweißnaht eine hohe Härte auf, die die Schwingrissbildung verzögern kann, allerdings auch zu einer niedrigen Kerbschlagarbeit führt.
Im vorliegenden Forschungsvorhaben wurden grundlegende Untersuchungen zur schweißtechnischen Verarbeitung eines LTT-Zusatzwerkstoffes durchgeführt. Dies beinhaltet die Sicherstellung der Schweißbarkeit sowie die Charakterisierung der Verbindungseigenschaften.
Untersuchungen zur Schweißeignung machten deutlich, dass ein sicherer Einsatz in dem für hochfeste Stähle zur Verfügung stehenden Arbeitsfenster möglich ist. Der verwendete LTT-Zusatz auf Cr-Ni-Basis lässt sich mit hoher Nahtgüte fügen. Auch die mechanischen Eigenschaften erlauben den Einsatz im Bereich hochfester Stähle mit einer Streckgrenze von 960 MPa. Entwicklungspotential gibt es hinsichtlich der Zähigkeit. Die in dieser Arbeit erreichten Kerbschlagwerte liegen deutlich unter denen kommerziell verfügbarer konventioneller Schweißgüter. Die Untersuchungen belegen, dass der Effekt der martensitischen Phasenumwandlung im gesamten Schweißgut zum Tragen kommt. Die angestrebten hohen Druckeigenspannungen finden sich vornehmlich im Schweißgutinnern.
Im weiteren Vorgehen wurden Schwingfestigkeitsuntersuchungen an den Stählen S355J2 und S960Q unter Verwendung konventioneller Zusatzwerkstoffe im Vergleich zum LTT-Zusatz durchgeführt. Die verwendeten Konstruktionsdetails sind ein Stumpfstoß unter Variation der Schweißnahtausführung (DY-Naht und V-Naht), ein Kreuzstoß mit HV-Naht sowie ein Überlappstoß mit einseitig und beidseitig geschweißter Kehlnaht.
Weitergehend wurde eine bauteilähnliche Probe (die Längssteife) untersucht, bei der der LTT-Zusatzwerkstoff als zusätzliche Schweißlage aufgebracht wurde. Neben der Schwingfestigkeit wurden die Schweißnähte hinsichtlich der Eigenspannungen, der Eigenspannungsstabilität im Schwingversuch sowie metallografisch charakterisiert.
Eine generell positive Wirkung des LTT-Zusatzwerkstoffes im Hinblick auf die Schwingfestigkeitssteigerung kann nicht bestätigt werden. Teilweise ist eine Steigerung der Schwingfestigkeit bei Substitution konventioneller Zusatzwerkstoffe zu beobachten, teilweise zeigt sich kein Effekt. Ursächlich hierfür ist die bei manchen Stoßformen mangelnde Steifigkeit quer zur Schweißnaht, die zur Ausbildung hoher Druckeigenspannungen infolge Phasenumwandlung notwendig wäre. Die bauteilähnliche Längssteife bestätigt allerdings das grundlegende Potential der LTT-Zusatzwerkstoffe bei Vorliegen hinreichender Steifigkeit.
The use of low transformation temperature (LTT) filler materials represents a smart approach for increasing the fatigue strength of welded high strength steel structures apart from the usual procedures of post weld treatment. The main mechanism is based on the effect of the low start temperature of martensite formation on the stress already present during welding. Thus, compressive residual stress formed due to constrained volume expansion in connection with phase transformation become highly effective. Furthermore, the weld metal has a high hardness that can delay the formation of fatigue cracks but also leads to low toughness. Fundamental investigations on the weldability of an LTT filler material are presented in this work, including the characterization of the weld microstructure, its hardness, phase transformation temperature and mechanical properties. Special attention was applied to avoid imperfections in order to ensure a high weld quality for subsequent fatigue testing. Fatigue tests were conducted on the welded joints of the base materials S355J2 and S960QL using conventional filler materials as a comparison to the LTT filler. Butt joints were used with a variation in the weld type (DY-weld and V-weld). In addition, a component-like specimen (longitudinal stiffener) was investigated where the LTT filler material was applied as an additional layer. The joints were characterized with respect to residual stress, its stability during cyclic loading and microstructure. The results show that the application of LTT consumables leads to a significant increase in fatigue strength when basic design guidelines are followed. This enables a benefit from the lightweight design potential of high-strength steel grades.
Von der Anwendung ins Prüflabor: Maßstabsgetreues Bewerten von Spannungen in geschweißten Bauteilen
(2019)
Eigenspannungen sind von zentraler Bedeutung für die Performance geschweißter Bauteile. Die Bewertung schweißbedingter Beanspruchungen im Labormaßstab ist oft nicht zielführend. Reale Bauteilschweißungen weisen geometrisch und konstruktiv bedingt meist divergente Wärmeableitungs- und Einspannbedingungen auf. Dadurch lassen sich häufig nur eingeschränkt Aussagen über Eigenspannungshöhen, -verteilungen und die wesentlichen Einflussfaktoren treffen. Dies führt oftmals zur eher konservativen Konstruktionsauslegung und damit zu einer geringerenRessourcen- und Energieeffizienz. Dieser Beitrag widmet sich den Bestrebungen, reale Randbedingungen beim Bauteilschweißen in das Labor zu übertragen. Es werden die Möglichkeiten eines speziell für diesen Zweck an der BAM entwickelten Prüfsystems mit einer maximalen Tragkraft von 2 MN aufgezeigt. Durch die konstruktive Gestaltung der Anlage lassen sich in Schweißversuchen schweißbedingte Beanspruchungen nachbilden und die komplexen Einflüsse und Wechselwirkungen durch Schweißprozess, Bauteilgeometrie und -konstruktion sowie durch die eingesetzten Grund- und Zusatzwerkstoffe quantifizieren. Darüber hinaus können mittels Röntgenbeugung die resultierenden lokalen Eigenspannungen präzise und mit hoher Ortsauflösung bestimmt werden. Anhand von Beispielen wird die Nachbildung realer Produktionsbedingungen im Labor erörtert und gezeigt, wie die Spannungen beim Schweißen hochfester Baustähle von konstruktiven, werkstoff- und prozessseitigen Randbedingungen abhängen.
So wurde geklärt, wie erhöhte Arbeitstemperaturen zum signifikanten Anstieg der Beanspruchungen führen.
Residual stresses are crucial when assessing the performance of welded components. The present work deals with the possibilities of transferring the real-life boundary conditions of welding, which influence the residual stress, into the laboratory. The possibilities of a test system specifically developed for this purpose with a maximum capacity of 2 MN are shown. Due to the structural design, global process, geometry and material-dependent stresses are induced, which can be simulated and quantified within the system. Additionally, X-ray diffraction can be applied to determine the resulting local residual stress distribution precisely with high spatial resolution. Two examples are presented how the conditions to be found during production are simulated in the laboratory. It is shown how welding residual stresses in high-strength steels are affected by the heat control. It was possible to clarify why elevated working temperatures significantly increase the bending stresses in the welded joint and therefore the tensile residual stresses in the heat affected zone (HAZ). The effect of a heat treatment applied under mechanical stress resulting from welding is demonstrated by the example of a creep resistant steel. Reheat cracking is significantly increased in this case compared to small scale laboratory based tests.