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The importance of high-entropy alloy (HEAs) in the field of materials research is increasing continuously and numerous studies have been published, recently. These are mainly focused on manufacturing of different alloy systems having excellent structural properties from low to high temperatures. Therefore, HEAs are of high potential for many applications in very demanding conditions. However, this is so far limited by poor knowledge and experience regarding economic and reliable component manufacturing. The processability of HEAs has hardly been investigated so far, indicated by the small number of publications worldwide: welding <30 and machining <5.
Hence, this contribution provides an overview about the current state of the art on processing of HEAs. Fundamental principles are shown for safe weld joints while ensuring high component integrity. For safe welding, the combined consideration of complex interactions of material, construction and process is necessary. Recent studies on different HEAs showed the influence of heat input by means of different welding processes on the microstructure and respective properties. Based on intensive literature survey and on our initial study, the main research objectives of processing HEAs are presented.
Microstructural characterization of the AlMo 0.5 NbTa 0.5 ZrTi refractory complex concentrated alloy
(2020)
A set of some unexpected and interesting microstructures has put the so-called complex concentrated alloys (CCAs) in the eye of the scientific community and the AlMo0.5NbTa0.5TiZr refractory (r)CCA, aimed at substituting Ni-base superalloys in gas turbine applications, belongs to this alloy family. The AlMo0.5NbTa0.5TiZr rCCA was studied by SEM, EDX, EBSD and TEM, showing the presence of a nanoscopic basket-wave structure inside the grains, with two BCC phases. Additionally, thermodynamic calculations on the AlMo0.5NbTa0.5TiZr alloy were done with two different proprietary databases that anticipate two BCC-disordered phases with distinct constitutions as well as an HCP phase.
Multi-element systems with defined entropy (HEA - High Entropy Alloy or MEA - Medium Entropy Alloy) are rather new material concepts that are becoming increasingly important in materials research and development. Some HEA systems show significantly improved properties or combinations of properties, e.g., the overcome of the trade-off between high strength and ductility. Thus, the synthesis, the resulting microstructures, and properties of HEA have been primarily investigated so far. In addition, processing is crucial to achieve a transfer of potential HEA/MEA materials to real applications, e.g. highly stressed components. Since fusion welding is the most important joining process for metals, it is of vital importance to investigate the weldability of these materials. However, this has rarely been the subject of research up to date. For that reason, in this work the weldability depending on the surface preparation of a CoCrFeMnNi-HEA and a CoCrNi-MEA for TIG welding is investigated. The fusion welding of longer plates is described here for the first time for the CoCrNi alloy. The welds of both materials showed distinct formation of cracks in the heat affected zone (HAZ). Optical and scanning electron microscopy analysis clearly confirmed an intergranular fracture topography. But based on the results, the crack mechanism cannot be conclusively clarified as either a liquid metal embrittlement (LME) or hot cracking like liquid film separation occurred.
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 entropy alloys are a new class of materials. In order to transfer their use to real components, their machinability must be investigated. For this purpose, preliminary investigations were carried out on samples from the TU Chemnitz in order to apply for a joint project based on these investigations.
The new alloying concept of multi-element systems with defined entropy (HEA - High Entropy Alloy or MEA - Medium Entropy Alloy) is gaining increasing importance in materials research. Significantly improved properties or combinations of properties are shown by some HEA/MEA-systems, which have the potential to substitute conventional alloys such steels and are therefore promising for a wide range of applications, e.g., overcome of the trade-off between high strength and ductility. Thus, primarily the production and resulting microstructures of HEA as well as properties have been investigated so far. Furthermore, processing is a main issue to transfer HEA systems from the laboratory to real components, e.g., for highly stressed components. Since welding is the most important joining process for metals, it is crucial to investigate the influence of welding processing on these material properties to guarantee component integrity. Welding leads to residual stresses, which significantly affect the component integrity. Only a very few studies on the effect of welding on residual stresses in HEA and MEA weld joints are available so far. Hence, the focus of this study is the residual stress formation and distribution in a CoCrFeMnNi HEA and ternary CoCrNi MEA using two different welding processes: Tungsten Inert Gas (TIG) welding and soldi-state Friction Stir Welding (FSW). As a pathway for application of HEA in this investigation for the first time residual stress analyses in realistic near-component specimens were performed. The residual stresses were determined by X-ray diffraction (XRD) on the surfaces of top and root weld side. The results were correlated with the local welding microstructures. The results show that both FSW and TIG generate significant tensile residual stresses on the weld surfaces in and transverse to the welding direction. In the case of FSW of the CoCrFeMnNi HEA, the longitudinal residual stresses are in the range of the yield strength of approx. 300 MPa in the weld zone.
The new multi-element alloying concept of systems with defined entropy (HEA - High Entropy Alloy or MEA - Medium Entropy Alloy) is increasing in materials research interest. Improved properties or combinations of properties are shown by several systems. Thus, the resulting microstructures and production of HEA/MEA as well as properties have been primarily investigated so far. Furthermore, processing is a key issue to transfer HEA/MEA systems to real components. Since welding is the most important joining process for metals, it is crucial to investigate the influence of welding to guarantee component integrity. Since most HEA are made of expensive alloying elements such as Co or Ni, they will not be used entirely as structural materials. Thus, it can be advantageous to weld conventional alloys such as austenitic stainless steels with the HEA and MEA to produce components that are both application-oriented and economically viable. Therefore, in this paper, first results of dissimilar metal welding, by tungsten inert gas- (TIG) and friction stir welding (FSW), of a CoCrFeMnNi HEA as well as a CoCrNi MEA with a conventional AISI 304 austenitic stainless steel are presented. The focus is on the microstructure formation due to the two welding processes. The results of TIG welding show a dendritic microstructure, whereas in FSW both materials are stirred but still coexist.
The new alloying concept of multi-element systems with defined entropy (HEA - High Entropy Alloy or MEA - Medium Entropy Alloy) is gaining increasing importance in materials research. Significantly improved properties or combinations of properties are shown by some HEA/MEA-systems. Thus, primarily the production and resulting microstructures of HEA as well as properties have been investigated so far. Furthermore, processing is a main issue to transfer HEA systems from the laboratory to real components. Since welding is the most important joining process for metals, it is crucial to investigate the influence of welding to guarantee component integrity. Welding leads to residual stresses, which significantly affect the component integrity. Hence, the focus of this study is the residual stress formation and distribution in a CoCrFeMnNi HEA and ternary CoCrNi MEA using two different welding processes: Tungsten Inert Gas (TIG) welding and soldi-state Friction Stir Welding (FSW). As a pathway for application of HEA in this investigation for the first-time residual stress analyses in realistic near-component specimens were performed. The residual stresses were determined by X-ray diffraction (XRD) on the surfaces of top and root weld side. The results were correlated with the local welding microstructures. The results show that both FSW and TIG generate significant tensile residual stresses on the weld surfaces in and transverse to the welding direction. In the case of FSW of the CoCrFeMnNi HEA, the longitudinal residual stresses are in the range of the yield strength of approx. 300 MPa in the weld zone.
Multielement-Legierungen (MPEA – multiple pricipal element alloys) stellen eine neue Klasse von Werkstoffen dar, die aus mindestens drei äquiatomaren Legierungselementen mit jeweils einem Gehalt von 5–35 Atom-% bestehen. Somit unterscheidet sich das Legierungskonzept fundamental von konventionellen bspw. Stahl- oder Al-basierten Legierungen. In jüngster Zeit lag der Schwerpunkt auf dem Legierungs-Design der MPEA und der Überprüfung bzw. Erreichung der gewünschten Eigenschaften bzw. -kombinationen. Hierzu werden die Legierungselemente gezielt ausgewählt und die Mikrostrukturen ein- und zum Teil auch mehrphasig eingestellt. Ziel sind hochinnovative MPEA mit angepassten Eigenschaften für die industrielle Anwendung. Dabei sollen insbesondere die bei konventionellen Legierungen wesentlichen Zielkonflikte, wie bspw. der Trade-off zwischen Festigkeit und Duktilität, überwunden werden. Darüber hinaus sind mechanische Eigenschaften bei sehr hohen sowie kryogenen Temperaturen bei gleichzeitig höchster Korrosionsbeständigkeit von hohem Interesse. Die Herstellung von Bauteilen erfordert dazu werkstoff- und beanspruchungsgerechte Füge- bzw. Schweißverfahren. Der Schweißeignung von MPEA wurde bis Ende 2021 nur äußert wenig Aufmerksamkeit zuteil. Die Auswirkungen durch Schweißprozesse auf die Metallurgie und die gewünschten Eigenschaften sind bisher kaum bekannt und limitieren die potenzielle Anwendbarkeit als Funktions- oder Konstruktionswerkstoffe.
In einem interdisziplinären BAM-Forschungsprojekt werden aktuell grundlegende Untersuchungen zur Schweißverarbeitung und resultierender Mikrostruktur-Anwendungseigenschafts-Beziehung verschiedener MPEA durchgeführt. Insbesondere Wärmeeinflusszone und Schweißgut sind geprägt durch eine Mikrostruktur, die aus Ungleichgewichtszuständen resultiert. Im Falle von MPEA wurde dies bisher nicht systematisch untersucht. Dazu erfolgte im Rahmen des Projektes eine umfassende Literaturauswertung zum Schweißen von MPEA und Zusammenfassung in einer umfassenden, systematischen Datenbasis. Aus diesem Grund sollen in der vorliegenden Studie die bisher bedeutsamsten Erkenntnisse zur Schweißbarkeit von MPEA systematisch nach MPEA-Typ und Schweißverfahren geordnet und mit eigenen aktuellen Forschungsergebnissen verglichen werden. Durch WIG- und Rührreibschweißversuche an den MPEA-Systemen CoCrNiFeMn bzw. CoCrNi konnten im Projektverlauf bereits wesentliche Fragestellungen beantwortet werden. Dazu zählen Auftreten bzw. Verhinderung intermetallischer Phasen/Seigerungen oder deren Auswirkung auf die Eigenschaften der Schweißverbindung (bspw. Festigkeit oder Korrosionsbeständigkeit).
Innovative Multielement-Legierungen: Ergebnisse zur Schweißbarkeit und Anwendungseigenschaften
(2022)
Multielement-Legierungen (MPEA – multiple pricipal element alloys) stellen eine neue Klasse von Werkstoffen dar, die aus mindestens drei äquiatomaren Legierungselementen mit jeweils einem Gehalt von 5–35 Atom-% bestehen. Somit unterscheidet sich das Legierungskonzept fundamental von konventionellen bspw. Stahl- oder Al-basierten Legierungen. In jüngster Zeit lag der Schwerpunkt auf dem Legierungs-Design der MPEA und der Überprüfung bzw. Erreichung der gewünschten Eigenschaften bzw. -kombinationen. Hierzu werden die Legierungselemente gezielt ausgewählt und die Mikrostrukturen ein- und zum Teil auch mehrphasig eingestellt. Ziel sind hochinnovative MPEA mit angepassten Eigenschaften für die industrielle Anwendung. Dabei sollen insbesondere die bei konventionellen Legierungen wesentlichen Zielkonflikte, wie bspw. der Trade-off zwischen Festigkeit und Duktilität, überwunden werden. Darüber hinaus sind mechanische Eigenschaften bei sehr hohen sowie kryogenen Temperaturen bei gleichzeitig höchster Korrosionsbeständigkeit von hohem Interesse. Die Herstellung von Bauteilen erfordert dazu werkstoff- und beanspruchungsgerechte Füge- bzw. Schweißverfahren. Der Schweißeignung von MPEA wurde bis Ende 2021 nur äußert wenig Aufmerksamkeit zuteil. Die Auswirkungen durch Schweißprozesse auf die Metallurgie und die gewünschten Eigenschaften sind bisher kaum bekannt und limitieren die potenzielle Anwendbarkeit als Funktions- oder Konstruktionswerkstoffe.
In einem interdisziplinären BAM-Forschungsprojekt werden aktuell grundlegende Untersuchungen zur Schweißverarbeitung und resultierender Mikrostruktur-Anwendungseigenschafts-Beziehung verschiedener MPEA durchgeführt. Insbesondere Wärmeeinflusszone und Schweißgut sind geprägt durch eine Mikrostruktur, die aus Ungleichgewichtszuständen resultiert. Im Falle von MPEA wurde dies bisher nicht systematisch untersucht. Dazu erfolgte im Rahmen des Projektes eine umfassende Literaturauswertung zum Schweißen von MPEA und Zusammenfassung in einer umfassenden, systematischen Datenbasis. Aus diesem Grund sollen in der vorliegenden Studie die bisher bedeutsamsten Erkenntnisse zur Schweißbarkeit von MPEA systematisch nach MPEA-Typ und Schweißverfahren geordnet und mit eigenen aktuellen Forschungsergebnissen verglichen werden. Durch WIG- und Rührreibschweißversuche an den MPEA-Systemen CoCrNiFeMn bzw. CoCrNi konnten im Projektverlauf bereits wesentliche Fragestellungen beantwortet werden. Dazu zählen Auftreten bzw. Verhinderung intermetallischer Phasen/Seigerungen oder deren Auswirkung auf die Eigenschaften der Schweißverbindung (bspw. Festigkeit oder Korrosionsbeständigkeit).