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High entropy alloys (HEA) are a new class of materials. In contrast to conventional alloys, HEA are single-phase alloys with at least five alloying elements. HEAs have enormous application potential due to (postulated) excellent structural property combinations from low to high temperatures. For HEA-application as structural materials in real components, a key issue is the suitability for joining processing. Requirements for the reliable and safe joining of these materials are crucial regarding economical component manufacture for future applications. In this context, friction stir welding (FSW) is a promising joining process due to the welding process temperature below the material melting point avoiding major issues, e. g. formation of (hard and brittle) intermetallic phases, which may have detrimental influences on the weld joint properties.
This study presents elementary research about the FSW process influences on a CoCrFeMnNi-HEA with focus on the microstructure and mechanical properties. For that purpose, the FSW joint of the HEA is compared to that of an austenitic stainless steel AISI 304. The microstructures of the welds were investigated and characterized by means of light microscopy, SEM, EBSD and XRD. Hardness and tensile testing were applied to determine influences on the mechanical properties. Generally, a comparable weldability of HEA and AISI 304 in terms of metallurgical characteristics and resulting mechanical properties exhibited. For the weld joints of both materials typical characteristics regarding FSW were observed within the weld metal and thermo-mechanically influenced zone: fine-grained stirred zone with increased hardness and reduced fracture elongation compared with the respective base material.
High-strength fine-grained structural steels have great potential for modern weight optimized steel construc-tions. Efficient manufacturing and further weight savings are achievable due to Wire Arc Additive Manu-facturing (WAAM). First commercial high-strength welding consumables for WAAM are already available. However, the application is still severely limited due to a lack of knowledge and guidelines for the industry regarding welding residual stresses and component safety in manufacturing and operation. Residual stresses may be critical regarding the special microstructure of high-strength steels in context with the risk of cold cracking and component performance in service. Therefore, process- and material-related influences, as well as the design effects on residual stress formation and cold cracking, are being investi-gated in a research project (IGF 21162 BG) focusing a high-strength WAAM welding consumable with yield strength of over 800 MPa. Objectives are the establish-ment of special WAAM cold cracking tests and pro-cessing recommendations allowing economical, suita-ble, and crack-safe WAAM of high-strength steels. First studies on process-related influences showed transfor-mation residual stresses arising during cooling, which significantly influence stress evolution of the compo-nent during layer-wise build-up. This has not yet been investigated for WAAM of high-strength steels. Focus of this study is on the systematic investigation of interactions of the WAAM welding process and design with cooling time, hardness, and residual stresses.
Defined open hollow cuboids were welded and investi-gated under systematic variation (design of experi-ments, DoE) of the scale/dimensions (cf. Fig. 1a) and heat control (interlayer temperature Ti: 100–300 °C), heat input E: 200–650 kJ/m. The welding parameters were kept constant as possible to avoid any influence by the arc and the material transfer mode. The heat input adjusted primarily via the welding speed. The resulting different weald bead widths were considered by different build-up strategies (weld beads per layer) to ensure defined wall thicknesses. The hardness was determined on cross-sections taken from the manufac-tured hollow cuboids (Fig. 1c) and the analysis of the residual stress state was carried out by means of X-ray diffraction (XRD) at defined positions on the lateral wall (Fig. 1b).
The hardness is higher at the top compared to the lower weld beads, as shown in Fig. 1c exemplarily for central test parameters of the DoE = 425 kJ/mm, Ti = 200 °C). This may be attributed to the specific heat control of the top weld beads, i.e., quenching effects, which are not tempered by weld beads above as is the case for lower weld beads implying a higher hardness. It was observed that the hardness level decreases with increasing energy per unit length, while the in-terpass temperature has a rather low influence on the hardness
Residual stress analysis was performed on the lat-eral wall in the welding direction, cf. Fig. 1b, to deter-mine the influence of heat control and design. In the top area of the wall, maximum longitudinal residual stress-es of up to over 500 MPa exhibit, which corresponds to approx. 65% of the nominal yield strength of the mate-rial. The statistic evaluation of stress levels in welding direction of all test specimens show that adaption of heat input may reduce welding stresses up to 50%. In-terpass temperature has less pronounced effect on cool-ing times, microstructure, and on the residual level within parameter matrix. Overall, the results show a significant influence of heat input and component di-mensions on the residual stresses and minor effect of the interpass temperature. Hence, the properties of the specimens may be effectively adjusted via heat input. The working temperatures should be considered for global shrinkage behavior or restraints. Such investiga-tions of residual stress are necessary to further deter-mine local and global welding stresses regarding the consequences on the component safety during manu-facturing and service.
High-strength fine-grained structural steels have great potential for weight-optimized, efficient structures in many modern steel applications. Further advances in efficiency can be achieved through additive manufacturing and bionic design. Commercial high-strength filler materials for wire arc additive manufacturing (WAAM) are already provided by the consumable producers. Today, application would be strictly limited due to absence of quantitative findings or any guidelines for the industry regarding welding-related stresses and component safety during manufacturing and service. Hence, process- and material-related influences and design-related restraint conditions associated with formation of residual stresses and cold cracking risk are investigated. The aim is the accessibility of special WAAM self-restraining cold cracking tests and easy applicable processing recommendations, enabling an economical, fit-for-purpose and crack-safe WAAM of high-strength steels. This first study focuses on determination of interactions between WAAM process parameters, resulting layer geometry, microstructure and residual stresses, analyzed via X-ray diffraction. Defined reference specimens are automated welded using a special WAAM solid wire (yield strength >820 MPa). Geometric properties can be specifically adjusted by wire feed and welding speed, but cannot be varied arbitrarily, since a high heat input causes local overheating, inadmissible changes of microstructure and mechanical properties, defects and comparable high tensile residual stresses.
Today’s efforts for lightweight design result in a growing application of high-strength structural steels from 960 MPa. In welded structures of these steels increased demands regarding component safety and a high elastic ratio should be considered. Hence, the prevention of an evolution of high welding induced tensile residual stresses is required. Recent studies showed that component related restraint conditions of welds are able to elevate welding induced stresses to critical values, depending on material characteristics, the welding process and parameters. This work involves multi-axial welding loads as a consequence of the superposition of local residual stresses, global reaction stresses and moments, varying the welding parameters under different restraint conditions. The global welding loads are measured via GMA-weld tests in a special testing facility and via a DIC(Digital Image Correlation)-system in a slot weld. Local transverse residual stresses were analysed by means of X-ray diffraction. The application of a less amount of weld runs due to a modified welding parameters and welds seam configurations revealed as a beneficial approach to reduce welding loads in high-strength steels.
Im Vortrag wurden die wesentlichen Ziele und Erkenntnisse des IGF-Vorhabens 17267 N "Wärmeführung und Kaltrisssicherheit" vorgestellt. Der Einfluss der Wärmeführung auf die schweißbedingte Eigenspannungsausbildung in geschweißten Konstruktionen konnte in Abhängigkeit der konstruktiven Steifigkeit und der Bauteildimensionen quantifiziert werden. Ferner wurden Aussagen zur Beeinflussung und Absenkung der Eigenspannungen und der Gesamteigenbeanspruchung von Schweißkonstruktionen erarbeitet. Es zeigte sich, dass eine Reduktion der lokalen Eigenspannungen und der Eigenbeanspruchung von geschweißten Konstruktionen durch eine geringere Wärmeeinbringung möglich ist. Eine Absenkung der Zwischenlagentemperatur erwies sich dabei unter anderem als besonders günstig. Damit ist es möglich vorhandene Wärmeführungskonzepte für hochfeste Stähle zu optimieren und dadurch die Kaltrissbildung zu vermeiden. Weiterführend ist durch die Quantifizierung der im realen Bauteil auftretenden Eigenspannungen bzw. mithilfe gezielter Beeinflussung des Eigenspannungsniveaus eine bessere Ausnutzung der Materialeigenschaften bei der Auslegung von Schweißkonstruktionen aus hochfesten Stählen möglich. Dadurch können ressourceneffizientere Stahlkonstruktionen durch Reduktion von Material- und Fertigungskosten erzielt werden.
In dem Vortrag wurden die wesentlichen Ziele und Ergebnisse zu dem IGF-Vorhaben 17978 N "Bauteilbeanspruchung modifizierter Sprühlichtbögen" vorgestellt. Mit dem modifizierten Sprühlichtbogen ist das Schweißen einer schmaleren Nahtkonfiguration realisierbar. Die Effekte, die sich aufgrund der angepassten Nahtkonfiguration und reduzierten Wärmeinbringung auf die Eigenspannungen und Gesamteigenbeanspruchung einer Schweißkonstruktion ergeben, konnten im Vergleich zu konventionellen Schweißprozessen und Nahtkonfigurationen analysiert werden. Ferner ließen sich realitätsnahe Untersuchungen unter Variation von Bauteildimension und -steifigkeit durchführen, um Aussagen zur Beeinflussung schweißbedingter Beanspruchungen in hochfesten Bauteilen zu erarbeiten. Es zeigte sich, dass bei optimaler Wärmeführung eine Absenkung des Nahtöffnungswinkels und damit Nahtvolumens signifikant geringere Reaktionsspannungen und -momente bewirkt. Dies führt gerade bei Hemmung des Winkelverzugs zu deutlich reduzierten Quereigenspannungen in der Wärmeeinflusszone aufgrund geringerer Biegespannungen. Die Erkenntnisse erlauben eine gezielte Reduzierung der Eigenspannungen sowie einer erhöhte Risssicherheit bei der Montage und dem Betrieb von Bauteilen aus hochfesten Stählen. Weiterführend ist durch die Quantifizierung der am realen Bauteil auftretenden Eigenspannungen bzw. mithilfe einer planmäßigen Beeinflussung des Eigenspannungsniveaus eine verbesserte Ausnutzung der Materialeigenschaften bei der Auslegung hochfester Schweißkonstruktionen möglich. Dadurch sind ressourceneffiziente Stahlkonstruktionen mittels Reduktion von Material- und Fertigungskosten erzielbar. Mit der gegenwärtig bereits verfügbaren Anlagentechnik ist die Anwendung der gewonnen Forschungsergebnisse kurzfristig realisierbar und angesichts der ökonomischen Vorteile rentieren sich gegebenenfalls notwendige Neuanschaffungen schnell.
Current efforts for lightweight design result in a growing application of high-strength fine-grained structural steel in modern steel constructions, e.g. mobile cranes, with yield strength from 960 MPa. The design of welded structures and the welding process become more challenging with increasing material strength due to higher elastic ratios. The formation of high residual stresses, which are able to diminish lifetime, load capacity and component safety, has to be avoided. Recent numerical and experimental analyses have shown a strong influence of the heat control and the rigidity of the weld on the welding stresses. Global reaction stresses due to an external shrinkage restraint superimpose with local residual stresses in the weld seam. Modern inverter technologies allowed the development of numerous modified spray arc processes driven by the power source manufactures with almost equal characteristics. They provide several well-known technical and economic benefits, like the possibility of welding narrower seam configurations. As a result a smaller weld volume, total heat input and, therefore, reduced welding stresses are achievable. This research focuses on the welding loads due to modified weld seams. The global reaction forces in welded components due to an external shrinkage restraint were investigated in a special in-house developed testing facility. Additionally, the superposition of the local residual stresses, global stresses and bending moments were analysed with the help of X-ray diffraction. The intensity of the restraint, the weld seam configuration and the weld process (transitional arc and modified spray arc) were varied for a statistical evaluation of the resulting welding loads. It was observed that under restraint a smaller weld seam volume affects reduced reaction stresses.
Presentation of the work of division 9.4 with focus on the Key aspects of component welding applying higher-strength fine-grained structural steels. The increased application of higher-strength steels and filler materials necessitates a more profound understanding of the interactions 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.
High-strength steels are increasingly applied in modern steel constructions to meet today’s lightweight requirements. Welding of these steels demands a profound knowledge of the interactions between the welding process, cooling conditions, heat input and the resulting metallurgical occurrences in the weld and its vicinity. Additionally, welding stresses may be detrimental for the safety and performance of high-strength steel component welds during fabrication and service, especially due to the high yield ratio. For a development of strategies to adjust welding heat control, all these effects should be considered, to reach a complete exploitation of the high-strength steel potential. In recent researches at BAM, multilayer GMAW experiments were performed with high-strength steels, in which cooling conditions and resulting microstructure were analysed for varied heat control parameters. The application of a unique 3d-operating testing facility and X-ray diffraction measurements allowed the analysis of local stresses in the weld while welding and cooling under component relevant shrinkage restraints. As a result, correlations between material behaviour, welding and cooling condition and the arising multi-axial stresses and forces were found. Based on this study, statements for the development of adapted heat control concepts were derived, which are presented by means of specific analysis examples.
Der zunehmende Bedarf an hochfesten Feinkornbaustählen in modernen Schweißkonstruktionen, in einer deutlich wachsenden Anzahl von Branchen wie dem Hoch-, Anlagen- und Kranbau, führte in den letzten Jahren zur Entwicklung zahlreicher Grund- und Zusatzwerkstoffe. Neben der Erreichung anforderungsgerechter mechanischer Eigenschaften wird die wirtschaftliche Verarbeitung dieser Güten durch hohe Sicherheitsanforderungen an die Schweißnaht bestimmt. Hohe Zugeigenspannungen in der Schweißverbindung können die Beanspruchbarkeit und Sicherheit eines geschweißten Bauteils wesentlich reduzieren. Insbesondere bei einer hohen konstruktiven Schrumpfbehinderung können die Beanspruchungen auch schon während der Fertigung ein risskritisches Niveau erreichen.
Mittels geeigneten Wärmeführungen beim Schweißen und der adäquaten Auswahl von Schweißprozess und Zusatzwerkstoffen ist sowohl eine Minimierung der sich lokal in der Naht bildenden Zugeigenspannungen als auch der globalen infolge von Abstützeffekten auftretenden Reaktionsspannungen und -momente erzielbar. Im Rahmen zweier AiF-Forschungsvorhaben IGF.-Nr. 17267 N und 17978 N wurden verschiedene experimentelle Beanspruchungsanalysen durchgeführt, um den Schweißprozess hinsichtlich der resultierenden schweißbedingten Beanspruchungen zu untersuchen. Hierfür war es erforderlich, die Steifigkeitsverhältnisse so wie sie beim Schweißen realer Bauteilstrukturen auftreten, auf Schweißexperimente im Labor zu übertragen.
Dazu wurde bspw. eine an der BAM eigens entwickelte Prüfanlage eingesetzt, mit der die mehraxialen Belastungen analysiert wurden, die mit bis zu 2 MN beim Vorwärmen, Schweißen und Abkühlen auftreten. Die Schweißeigenspannungen wurden mittels Röntgendiffraktometrie bestimmt. Zwar zeigten sich für niedrige Arbeitstemperaturen beim Schweißen ein signifikant reduziertes Gesamtbeanspruchungsniveau nach der Abkühlung der gesamten Schweißnaht. Die langen Abkühlphasen während der mehrlagigen schweißtechnischen Fertigung führen jedoch speziell bei den ersten Schweißraupen zu sehr hohen Reaktionsspannungen. Dabei erwiesen sich schmalere Nahtfugen verbunden mit dem Einsatz modifizierter Schweißprozesse und der Einsatz dehnfähiger Schweißzusätze für das Wurzelschweißen als geeignete Mittel, um eine deutliche Absenkung des Beanspruchungsniveaus beim Schweißen unter Schrumpfbehinderung zu erreichen. Ferner ist damit eine weitere wesentliche Reduzierung der Gesamtbeanspruchung und insbesondere der Zugeigenspannungen in der WEZ möglich. Mithilfe dieser Erkenntnisse ist die Optimierung der schweißbedingten Beanspruchungen unter Nutzung einer adaptierten Wärmeführung zur verbesserten Ausnutzung des Festigkeitspotentials höherfester Feinkornbaustähle erreichbar.