TY - CONF A1 - Rhode, Michael T1 - Adaption of Heat Control Concepts for Welding Stress Optimization in High-strength Steel Components N2 - High-strength structural steels from 690 MPa are increasingly applied at present. Major reasons are lightweight design trends and potential cost reductions. The structural design of welds and their manufacturing become more challenging with increasing material strength. By reasons of a higher yield ratio of these steels, the development of high residual stresses has to be avoided, since they are detrimental to the components safety and performance. Local restraint stresses and welding loads due to external shrinkage restraints occur. Frequently, this leads to critical tensile residual stresses in the weld and HAZ. In this study, influences of welding process parameters and restraint conditions on the residual stress state in welded components of high-strength steels were investigated. Multilayer GMAW tests under free shrinkage and experiments under well-defined restraints in special in-house developed testing facilities were accomplished. The tests permitted analyses of the resulting local residual stresses measured by means of X-ray diffraction and global reaction stress build-up while welding and cooling. Significant effects were found for heat control, seam configuration and restraint condition. Besides high restraints, elevated preheating and interpass temperatures lead to increased welding stresses. An adaption of welding parameters considering heat control, weld run sequence and seam configuration proved to be beneficial. T2 - 10th Conference on Trends in Welding Research CY - Tokyo, Japan DA - 11.10.2016 KW - Weld heat input KW - Residual Stress KW - High-strength Steel KW - Welding KW - Component Test PY - 2016 AN - OPUS4-37828 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kromm, Arne T1 - Phase Transformation and Strain Evolution during Welding of Low Transformation Temperature Alloys N2 - In this work, the phase and strain formation in multipass welding of LTT gas metal arc welds were observed under realistic restraints by means of time resolved angular-dispersive synchrotron X-ray diffraction at the High Energy Materials Science beamline HEMS at PETRA III (DESY), Hamburg Germany. It was shown that the strain evolution during cooling correlates with the amount of martensite formed. Both, the strain of martensite and austenite are affected during phase transformation. Even though dilution processes limit the LTT effect in the root compared to the top layer, the strains are significantly reduced compared to the conventional weld metal. The observed effects are found for both Ni and Mn based LTT filler metals regardless of their respective Ms temperature. T2 - 2nd International Conference on Advanced Joining Processes AJP 2021 CY - Sintra, Portugal DA - 21.10.2021 KW - Welding KW - Residual Stress KW - In-situ diffraction KW - Synchrotron PY - 2021 AN - OPUS4-53609 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Madia, Mauro T1 - Damage Tolerant Approach in Additively Manufactured Metallic Materials N2 - Damage tolerance counts as one of the most widespread approach to fatigue assessment and surely as one of the most promising in understanding the process-structure-property-performance relationships in additively manufactured metallic materials. Manufacturing defects, surface roughness, microstructural features, short and long crack fatigue propagation, residual stresses and applied loads can be taken into consideration in a fracture mechanics-based fatigue assessment. Many aspects are crucial to the reliable component life prediction. Among those a prominent role is played by an accurate measurement and modelling of the short crack fatigue behavior, and reliable statistical characterization of defects and residual stresses. This work aims at addressing the issues related to both experimental testing, fatigue and fatigue crack propagation, and fracture mechanics-based modelling of fatigue lives. Examples will be provided on an additively manufactured AISI 316 L. T2 - TMS2021 VIRTUAL CY - Online meeting DA - 15.03.2021 KW - AISI 316L KW - Additive Manufacturing KW - Damage Tolerance KW - Microstructure KW - Defects KW - Residual Stress PY - 2021 AN - OPUS4-52293 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Wandtke, Karsten T1 - Residual stress formation in DED-arc manufactured high strength steel components N2 - Additive manufacturing (AM) processes enable the efficient production of advanced constructions. New developments in topology optimization are leading to weight-optimized designs of increasing complexity. Direct energy deposition processes (DED) such as wire and arc-based additive manufacturing are an important method of additive manufacturing. The wire filler metals enable a wide range of materials, while the arc process provides a high deposition rate compared to laser and powder-based processes. Combined with the use of high-strength steels, the thickness of walls or components can be significantly reduced in the context of lightweight construction, which results in significant savings in energy, costs, time and resources. Suitable high-strength steel filler metals are commercially available for DED-arc AM processes. However, guidelines and quantitative knowledge about welding stresses and cold cracking issues during component production and service are lacking. This limits the industrial application considerably. In a joint project of BAM and Chemnitz University of Technology, the main influences and complex interactions of material, production process, design and processing steps on the residual stress level are investigated. The aim is to develop processing recommendations and a cold cracking test for economical processing and stress-related design of high-strength steels with DED-arc. This study focuses on residual stress analysis by neutron diffraction (ND) and X-ray diffraction (XRD) on defined test specimens. The ND analysis were performed at the Paul Scherrer Institute- Villigen, Switzerland (PSI) and the XRD analysis at BAM. The study shows a quantitative and qualitative comparison of the residual stress magnitudes and distribution between the component bulk (ND) and surface (XRD) analyses. The ND analysis reveals that in DED-arc AM walls the residual stresses dominate in the direction of welding and are negligibly small in each case transverse to the direction of welding. The topology of the analyzed residual stresses shows almost identical residual stress maps compared to XRD. In addition, the residual stresses are significantly influenced by the solid phase transformation of the material due to low cooling times and less post heat treatment cycles of following AM layers in the area of the top layer. T2 - IIW Intermediate Meeting C-XIII CY - Online meeting DA - 20.04.2023 KW - Additive Manufacturing KW - High strength steel KW - Residual Stress PY - 2023 AN - OPUS4-59308 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - THES A1 - Sprengel, Maximilian Franz-Arthur T1 - Study on the determination and the assessment of the residual stress in laser powder bed fused stainless steel structures N2 - Additive manufacturing processes offer extensive advantages for the design freedom of structures through layer-by-layer production. This enables high weight savings as well as the integration of functions such as cooling channels. This technology thus offers great potential to contribute to a sustainable future. The pioneer among these manufacturing processes is the powder bed fusion of metals with laser beams (PBF-LB/M). This process is characterised by high laser scanning speeds and highly localised heat input, which have a strong effect on the microstructure and thus also on the mechanical properties. For example, the austenitic steel 316L exhibits a cellular structure at the subgrain level. This microstructure feature leads to higher yield strengths and comparable ductility to conventionally processed 316L. In addition to the traditional applications of 316L steel in the petrochemical and nuclear industries, this enables new applications such as medical stents or bipolar plates for fuel cells with proton exchange membranes. However, the layer-by-layer production with high scanning speeds and localised heat input induces cooling rates in the order of 106 K.s-1. The large temperature gradients and the shrinkage restraints of each weld bead and layer lead to the development of complex residual stress fields. These reduce the material performance and can even lead to premature failure. Thus, the fatigue properties are severely affected by rapid crack growth or prematurely developing cracks. Furthermore, specimens may warp during PBF-LB/M or immediately when the components are separated from the build plate. Therefore, residual stress is one of the main disadvantages of PBF-LB/M, making it difficult for this technology to be more widely accepted in the industry. Based on the current state of the literature, the procedure for determining residual stress employing diffraction methods, the influence of the component geometry, as well as the inter-layertime (ILT) on residual stress and, lastly, suitable heat treatment strategies for relaxing residual stress in PBF-LB/M/316L, were identified as insufficiently researched areas. Determining residual stress is a major challenge. X-ray and neutron diffraction are particularly suitable for filigree structures, which can preferably be produced using PBF-LB/M. Here, the microscopic strain of the lattice planes is used to calculate the macroscopic residual stress. These methods are nondestructive and allow the spatial resolution of the bi-axial and tri-axial residual stress. In the present work, in-situ neutron diffraction tensile tests were performed to analyse the micromechanical behaviour of PBF-LB/M/316L. The suitability of the lattice planes for calculating the macroscopic residual stress was investigated. The (311) lattice plane was found to be the best option for determining the macroscopic residual stress in PBF-LB/M/316L. Furthermore, it was shown that the Kröner model can be used to calculate the X-ray diffraction constants despite the texture. Currently, both aspects are common practices in the determination of residual stress. The results presented here support the validity of this approach and increase the confidence in the experimentally determined residual stress, which has a positive effect on the assessment of quality concerning the safety of a component manufactured by PBF-LB/M. The geometry of a structure manufactured by PBF-LB/M determines the component stiffness and influences the thermal gradients during manufacture and ultimately the residual stress. The effect of smaller or larger dimensions (larger than 10 mm) on the residual stress is rarely considered. To investigate this aspect, representative test specimens with different thicknesses and lengths were produced. Hence, the influence of the geometry i.e., component stiffness on the residual stress was evaluated. The residual stress was determined using X-ray and neutron diffraction. The analysis of the residual stress showed that an increase in thickness leads to overall higher residual stress. In addition, it was shown that increasing the sample dimension leads to smaller residual stress gradients. Above a threshold value of a few millimetres, no significant change in the residual stress was observed. The ILT is inherent in every PBF-LB/M construction job and influences the thermal gradients during production and thus the residual stress. A change in wall thickness in a geometrically complex structure or a variation in the number of specimens in the construction process leads directly to a change in the ILT. To simulate this, specimens with different ILT were produced. The residual stress was determined by X-ray and neutron diffraction. The use of a short ILT resulted in higher surface residual stress, but lower volume residual stress. Here, the surface residual stress and the residual stress in the volume showed contrary behaviour. This was attributed to the complex heat conduction during the process, as shown by the thermographic measurements. To avoid distortion of the specimens or real components upon separation from the build plate or during post-processing steps, stress relief annealing is usually performed after the PBF-LB/M process. Based on standards for heat treatment of welded austenitic steels, heat treatments were performed at low (450 °C for four hours) and high (800 °C and 900 °C for one hour) temperatures. The results show that the heat treatment at 450 °C relaxed the residual stress by only 5 %. This low relaxation is due to the stability of the cell structures. The high-temperature heat treatment showed that 900 °C is required to dissolve the cell structure and achieve a relaxation of about 85 %. This result is in good agreement with the standards for stress relief annealing of welded austenitic steels. N2 - Additive Fertigungsverfahren bieten durch die schichtweise Herstellung weitreichende Vorteile für die Gestaltungsfreiheit von Strukturen und ermöglichen somit hohe Gewichtseinsparungen. Auch die Integration von Funktionen, beispielsweise Kühlkanäle, können unmittelbar während der Herstellung eingebracht werden. Damit bietet diese Technologie ein hohes Potential zu einer nachhaltigen Zukunft beizutragen. Der Vorreiter unter diesen Fertigungsprozessen ist das Pulverbettbasierte Schmelzen von Metallen mittels Laserstrahlen (PBF-LB/M). Dieser Prozess zeichnet sich durch hohe Laserscangeschwindigkeiten und eine stark lokalisierte Wärmeeinbringung aus, welche sich auf die Mikrostruktur und damit auch auf die mechanischen Eigenschaften auswirken. So weist der austenitische Stahl 316L eine zelluläre Struktur auf Subkornniveau auf, welche zu höheren Streckgrenzen jedoch nicht verringerter Duktilität im Vergleich zu konventionell verarbeitetem 316L führt. Dies ermöglicht, neben den traditionellen Einsatzgebieten des Stahls 316L in der petrochemischen und nuklearen Industrie, neue Anwendungen wie medizinische Stents oder Bipolarplatten für Brennstoffzellen mit Protonenaustauschmembran. Die schichtweise Fertigung mit hohen Scangeschwindigkeiten und lokaler Wärmeeinbringung bedingt jedoch Abkühlraten in der Größenordnung von 106 K.s-1. Die hohen Temperaturgradienten im Zusammenspiel mit den Schrumpfbehinderungen jeder Schweißraupe und Lage sorgen für die Entstehung komplexer Eigenspannungsfelder. Diese verringern die Beanspruchbarkeit des Materials und können sogar zu einem vorläufigen Versagen führen. So sind die Ermüdungseigenschaften durch ein rapides Risswachstum bzw. ein vorzeitig entstehender Riss durch Eigenspannungen stark beeinträchtigt. Des Weiteren kommt es vor, dass sich die Proben während des PBF-LB/M oder unmittelbar bei der Trennung der Bauteile von der Bauplatte verziehen. Daher sind die Eigenspannungen eines der Hauptnachteile des PBF-LB/M, die eine breitere Akzeptanz dieses Verfahrens in der Industrie erschweren. Ausgehend vom aktuellen Literaturstand, wurde die Vorgehensweise bei der Bestimmung der Eigenspannungen mittels Beugungsmethoden, der Einfluss der Bauteilgeometrie bzw. Bauteilsteifigkeit sowie der Zwischenlagenzeit auf die Eigenspannungen und zuletzt geeignete Wärmebehandlungsstrategien zur Relaxation der Eigenspannungen in PBF-LB/M/316L als unzureichend erforschte Bereiche identifiziert. Die Bestimmung der Eigenspannung ist eine große Herausforderung. Insbesondere bei filigranen Strukturen, welche vorzugsweise mittels PBF-LB/M hergestellt werden können, eignen sich die Röntgen- und Neutronenbeugung. Hierbei wird die mikroskopische Dehnung der Gitterebenen zur Berechnung der makroskopischen Eigenspannung verwendet. Diese Methoden sind zerstörungsfrei und ermöglichen die räumliche Auflösung der bi-axialen und tri-axialen Eigenspannungen. In der vorliegenden Arbeit wurden in-situ Neutronenbeugungszugversuche durchgeführt, um das mikromechanische Verhalten des PBF-LB/M/316L zu analysieren. Die Eignung der Gitterebenen zur Berechnung der makroskopischen Eigenspannung wurde untersucht. Die (311) Gitterebene erwies sich als die beste Option für die Bestimmung der makroskopischen Eigenspannung in PBF-LB/M/316L. Darüber hinaus wurde gezeigt, dass das Kröner-Modell trotz Textur zur Berechnung der Röntgenbeugungskonstanten verwendet werden kann. Derzeit werden beide Aspekte in der Bestimmung der Eigenspannungen standardmäßig angewandt. Die hier präsentierten Ergebnisse untermauern die Gültigkeit dieses Vorgehens und erhöhen das Vertrauen in den experimentell bestimmten Eigenspannungen, welches sich positiv auf die Beurteilung der Qualität hinsichtlich der Sicherheit eines durch PBF-LB/M gefertigten Bauteils auswirkt. Die Geometrie einer durch PBF-LB/M hergestellten Struktur bestimmt maßgeblich die Bauteilsteifigkeit und beeinflusst die thermischen Gradienten während der Herstellung und letztendlich die Eigenspannungen. Die Auswirkung kleinerer oder größerer Abmessungen (größer 10 mm) auf die Eigenspannungen wird derzeit oft nicht berücksichtigt. Um diesen Aspekt zu untersuchen, wurden repräsentative Probekörper mit unterschiedlichen Dicken und Längen hergestellt. Damit konnte der Einfluss der Geometrie bzw. Bauteilsteifigkeit auf die Eigenspannungen gezielt bewertet werden. Die Eigenspannungen wurden mittels Röntgen- als auch Neutronenbeugung bestimmt. Die Analyse der Eigenspannungen ergab, dass eine Erhöhung der Dicke zu insgesamt höheren Eigenspannungen führt. Zusätzlich wurde gezeigt, dass eine Vergrößerung der Probenabmessung zu kleineren Eigenspannungsgradienten führt. Oberhalb eines Schwellenwerts von wenigen Millimetern ändern sich die Eigenspannungen nicht mehr signifikant. Die sogenannte Zwischenlagenzeit (ILT) ist jedem PBF-LB/M-Bauauftrag inhärent und beeinflusst die thermischen Gradienten während der Herstellung und damit maßgeblich die Eigenspannungen. Ein Wanddickensprung in einer geometrisch komplexen Struktur bzw. einer Variation der Probenanzahl im Bauprozess führt unmittelbar zu einer Änderung der ILT. Um dies nachzubilden, wurden Proben mit unterschiedlichen ILT hergestellt. Die Eigenspannungen wurden mittels Röntgen- und Neutronenbeugung bestimmt. Die Verwendung einer kurzen ILT hat zu höheren Oberflächeneigenspannungen geführt, jedoch zu geringeren Volumeneigenspannungen. Hierbei zeigten die Oberflächeneigenspannungen und die Eigenspannungen im Volumen ein konträres Verhalten. Dies wurde auf die komplexe Wärmeleitung während des Prozesses zurückgeführt, wie die thermografischen Messungen zeigten. Um den Verzug der hergestellten Probekörper oder realen Bauteile bei der Abtrennung der Bauplatte oder in Nachbearbeitungsschritten zu vermeiden, wird in der Regel ein Spannungsarmglühen nach dem PBF-LB/M Prozess durchgeführt. Basierend auf Standards für die Wärmebehandlung von geschweißten austenitischen Stählen, wurden Wärmebehandlungen bei niedrigen (450 °C für vier Stunden) und hohen (800 °C bzw. 900 °C für eine Stunde) Temperaturen durchgeführt. Die Ergebnisse zeigen, dass die Wärmebehandlung bei 450 °C die Eigenspannungen um lediglich 5 % relaxierte. Diese geringe Relaxation ist auf die Stabilität der Zellstrukturen zurückzuführen. Die Hochtemperatur-Wärmebehandlung zeigte, dass 900 °C erforderlich sind, um die Zellstruktur aufzulösen und eine Relaxation von etwa 85 % zu erreichen. Dieses Ergebnis steht in guter Übereinstimmung mit den Standards für das Spannungsarmglühen geschweißter austenitischer Stähle. T3 - BAM Dissertationsreihe - 173 KW - Residual Stress KW - Powder Bed Fusion of Metals with Laser Beams KW - Austenitic Stainless Steel KW - Diffraction KW - Heat Treatment KW - Eigenspannungen KW - Pulverbettbasiertes Laserstrahlschmelzen KW - Austenitischer Rostfreier Stahl KW - Beugung KW - Wärmbehandlung PY - 2023 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-579802 SN - 1613-4249 VL - 173 SP - 1 EP - 256 PB - Eigenverlag CY - Berlin AN - OPUS4-57980 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schröpfer, Dirk A1 - Kannengießer, Thomas T1 - Online Monitoring of Reaction Forces and Stresses in Welded Components N2 - Today’s light weight design trends lead to a growing application of high-strength structural steels (yield strength ≥ 690 MPa). The mechanical properties of the weld and the component safety have to meet the increased requirements of these steel grades. However, high residual stresses in welded components are detrimental to their safety and integrity. Analyses concerning weld stresses in high-strength steels welded under component related restraint conditions revealed that heat control significantly affects global and local stresses. This occurs especially in highly restrained joints due to superimposing local and global stresses and may cause crack-critical stress-levels. In this study weld tests were performed with plates of high-strength steel in a special test facility. The experimental setup allowed transferring defined restraint conditions to the test welds similarly to real components. Temperature and reaction forces due to restraint were observed online while welding and cooling of multilayer-component MAG-welds. Mobile X-ray diffraction was used for local stress determination in the weld seam areas of the restrained specimens. It was found that interpass temperature has a major influence on the local and global welding forces and stresses. Thus, among the analysed results especially transverse residual stresses of the heat affected zone were strongly affected. T2 - The International Symposium on Visualization in Joining & Welding Science through Advanced Measurements and Simulation CY - Osaka, Japan DA - 26.11.2014 KW - Residual Stress KW - GMA welding KW - High-strength steel PY - 2014 VL - 2014, Volume 1 SP - 115 EP - 116 PB - Joining and Welding Research Institute, Osaka University CY - Osaka AN - OPUS4-47716 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Bruno, Giovanni T1 - How 3D X-ray Imaging and Residual Stress Analysis contribute to safety of materials and structures N2 - The safety of materials and structures can be detrimentally influenced by residual stresses (RS) and defect populations (voids or other features leading to failure) if they are not correctly accounted for in the design. Therefore, the accurate characterization of these features and the consideration of their impact is crucial for the safe design of components. The ability to characterize these features non-destructively enables the direct correlation on resulting mechanical performance. 3D X-ray computed tomography (XCT) is used to resolve and quantitively analyze microstructural features (i.e., voids, porosity). This is often used to assess the capability of the manufacturing route, i.e., additive manufacturing (AM). The non-destructive nature of the method also enables the study of the evolution of damage in materials from such microstructural features [1]. Using in-situ methods such as compression or tension, the propagation of damage from initial microstructure can be assessed, aiding our understanding of which features are detrimental to safety [3]. Diffraction based residual stress analysis methods including high energy X-ray and neutron diffraction can be used to study the residual stress gradients from the surface, subsurface and into the bulk non-destructively. These methods can be used to study the influence of heat treatments on residual stress and can be combined with XCT results to correlate the interaction of residual stresses with microstructural features (i.e., void clusters). This talk will give an overview of the capabilities and opportunities of 3D XCT and diffraction based residual stress analysis to close the gap in our understanding of material degradation on mechanical performance, enabling manufacturers to adjust their designs accordingly for safety critical applications. A particular focus will be made on examples where the two advanced techniques are combined to enhance such understanding. T2 - MaterialsWeek 2025 CY - Frankfurt am Main, Germany DA - 02.04.2025 KW - Neutron Diffraction KW - Residual Stress KW - X-ray Computed Tomography KW - Additive Manufacturing KW - Large Scale facilites KW - Creep KW - Defects KW - BAMline PY - 2025 AN - OPUS4-62895 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Bruno, Giovanni T1 - Introduction to Residual Stress N2 - The determination of residual stress in additively manufactured materials is a challenge, even after decades from the establishment of the basics of residual stress analysis. This is due to the peculiar microstructure of such materials. In fact, researchers have discovered that conventional methods for the determination of RS in materials do not properly work for AM materials. In this tutorial, the basics of RS analysis will be explained, together with the basics of AM manufacturing techniques. The microstructure of the peculiar materials (AM) dealt with here will be elucidated. Successively, the necessary modifications to the conventional approaches to RS analysis will be explained and case studies will be displayed, for the attendant to touch with hands the peculiarities of the approaches. Finally, a few experimental and theoretical tips will be given on dos and don’ts for a correct determination of RS in AM materials. T2 - 11th European Conference on Residual Stresses (ECRS-11) CY - Prague, Czech Republic DA - 03.06.2024 KW - Neutron Diffraction KW - Residual Stress KW - Mechanical Properties KW - X-ray diffraction PY - 2024 AN - OPUS4-60422 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schröder, Jakob T1 - Influence of Microstructure on the Diffraction-Based Residual Stress Determination in Laser Powder Bed Fused Inconel 718 N2 - Additive manufacturing processes such as laser powder bed fusion (PBF-LB) offer the ability to produce parts in a single manufacturing step. On the one hand, this manufacturing technique offers immense geometric freedom in part design due to its layer-by-layer manufacturing strategy. On the other hand, the localized melting and solidification impose the presence of large temperature gradients in the process. From a microstructural perspective, this inevitably results in micro-segregation and a columnar grain structure, often paired with a significant crystallographic texture. Even worse, these large temperature gradients can lead to internal stress-induced deformation or cracking during processing. At the very least, residual stress is retained in the final structures as a footprint of this internal stress. In this context, diffraction-based methods allow the non-destructive characterization of the residual stress field in a non-destructive fashion. However, the accuracy of these methods is directly related to the microstructural characteristics of the material of interest. First, diffraction-based methods access microscopic lattice strains. To relate these lattice strains to a macroscopic stress, so-called diffraction elastic constants must be known. The deformation behavior is directly linked to the microstructure. Therefore, the diffraction elastic constants also depend on the microstructure. Second, the presence of crystallographic texture should be considered in the residual stress determination, as variations in crystal orientations contribute differently to the diffraction signal. Here we present the influence of the microstructure on the determination of residual stress by diffraction-based methods in as-built PBF-LB Inconel 718 parts. We obtained different microstructures by employing two different scanning strategies. In particular, different crystallographic textures were obtained by changing the relative angle of the scan vectors to the geometric axes of the part. The texture-based characterization of the residual stress field was carried out by surface, sub-surface, and bulk residual stress measurements. It was found that the residual stress determination significantly depends on the microstructure for strong crystallographic textures. T2 - Material Science and Engineering Congress CY - Darmstadt, Germany DA - 24.09.2024 KW - Additive Manufacturing KW - Electron Backscatter Diffraction KW - Microstructure KW - Residual Stress KW - X-ray Diffraction PY - 2024 AN - OPUS4-61475 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Bruno, Giovanni A1 - Fritsch, Tobias A1 - Schröder, Jakob A1 - Mishurova, Tatiana A1 - Ulbricht, Alexander A1 - Evans, Alexander A1 - Serrano-Munoz, Itziar T1 - How to experimentally determine residual stress in AM structures N2 - The experimental determination of residual stress becomes more complicated with increasing complexity of the structures investigated. Unlike the conventional and most of the additive manufacturing (AM) fabrication techniques, laser powder bed fusion (PBF-LB) allows the production of complex structures without any additional manufacturing step. However, due to the extremely localized melting and solidification, internal stress-induced deformation and cracks are often observed. In the best case, significant residual stress is retained in the final structures as a footprint of the internal stress during manufacturing. Here we report solutions to the most prevalent challenges when dealing with the diffraction-based determination of residual stress in AM structures, in particular the choice of the correct diffraction elastic constants. We show that for Nickel-based alloys, the diffraction elastic constants of AM material significantly deviate from their conventional counterparts. Furthermore, measurement strategies to overcome the hurdles appearing when applying diffraction-based techniques to complex-shaped lattice structures are presented: a) proper sample alignment within the beam, b) the proper determination of the residual stress field in a representative part of the structure (i.e., with an engineering meaning). Beyond the principal stress magnitude, the principal direcions of residual stress are discussed for different geometries and scan strategies, as they are relevent for failure criteria. We show that the RS in the lattice struts can be considered to be uniaxial and to follow the orientation of the strut, while the RS in the lattice knots is more hydrostatic. Additionally, we show that strain measurements in at least seven independent directions are necessary for the correct estimation of the principal stress directions. The measurement directions should be chosen according to the sample geometry and to an informed choice on the possible strain field (i.e., reflecting the scan strategy). We finally show that if the most prominent direction is not measured, the error in the calculated stress magnitude increases in such a manner that no reliable assessment of RS state can be made. T2 - Additive 2024 CY - Berlin, Germany DA - 12.06.2024 KW - Neutron Diffraction KW - Residual Stress KW - X-ray Computed Tomography KW - Additive Manufacturing KW - Lattice Structure KW - Inconel PY - 2024 AN - OPUS4-60423 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -