TY - JOUR A1 - Schröpfer, Dirk A1 - Witte, Julien A1 - Kromm, Arne A1 - Kannengießer, Thomas T1 - Stresses in repair welding of high-strength steels—part 1: restraint and cold cracking risk N2 - AbstractThe sustainable and resource-efficient production of wind energy plants requires the use of modern high-strength fine-grain structural steels. This applies to both foundation and erection structures, like mobile or ship cranes. During the assembly of steel structures, unacceptable defects can occasionally be found in the weld area. In most cases, the economical solution would be local thermal gouging of the affected areas and re-welding. Due to the high shrinkage restraint of the joint groove in the overall structure, the superposition of global and local welding-induced stresses may lead to crack formation and component failure, particularly in interaction with the degradation of the microstructure and mechanical properties of high-strength steels during the repair process. However, manufacturers hardly have any information about these issues and there is a lack of recommendations and guidelines to take these safety-relevant aspects into account in adequate repair concepts. The aim of this research is to derive recommendations for repair concepts appropriate to the stresses and materials involved providing a basis for standards and guidelines to avoid cold cracking, damage and expensive reworking especially for high-strength steels. Part 1 of this study involves systematic investigations of influences of shrinkage restraint during repair welding of two high-strength steels S500MLO for offshore application and S960QL for mobile crane structures. The quantification of the shrinkage restraint of repair weld joints was achieved by means of experimental and numerical restraint intensity analysis. In welding experiments with self-restrained slot specimens, restraint intensity and introduction of hydrogen via the welding arc using anti spatter spray were varied systematically to analyse the effect on welding result, residual stresses and cold cracking. It could be shown that increasing restraint intensities result in significantly higher transverse residual stress levels. In the case of hydrogen introduction S500MLO showed no cold cracking independent of the restraint conditions. However, S960QL was found to be considerably cold cracking sensitive if hydrogen is introduced. With increasing restraint intensity length and number of cold cracks increases significantly. Part 2 [1] of this study is focussed on microstructure and residual stresses due to gouging and stress optimization via adequate heat control parameters in repair welding. KW - Metals and Alloys KW - Mechanical Engineering KW - Mechanics of Materials PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-595212 DO - https://doi.org/10.1007/s40194-024-01691-y SN - 0043-2288 SP - 1 EP - 13 PB - Springer Science and Business Media LLC AN - OPUS4-59521 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schröpfer, Dirk A1 - Witte, Julien A1 - Kromm, Arne A1 - Kannengießer, Thomas T1 - Stresses in repair welding of high-strength steels—part 2: heat control and stress optimization N2 - In welding of high-strength steels, e.g. for foundations and erection structures of wind energy plants, unacceptable defects can occasionally be found in the weld area, which should be removed by thermal gouging and subsequent re-welding. High shrinkage restraint of repair welds may lead to crack formation and component failure, predominantly in interaction with degraded microstructures and mechanical properties due to repair cycles. This study aims for elaboration of recommendations for repair concepts appropriate to the stresses and materials involved to avoid cold cracking, damage and expensive reworking. In part 1 [1] of this study, systematic investigations of influences of shrinkage restraint on residual stresses and cold cracking risk during repair welding of two high-strength steels S500MLO for offshore application and S960QL for mobile crane structures were focussed. In this part 2, the microstructure, particularly hardness, and residual stresses due to gouging and influences of heat control parameters in repair welding are analysed. A clear reduction in residual stress after gouging can be observed, especially for the specimens with restrained transverse shrinkage. Gouging to a depth of approx. 2/3 of the seam height does not lead to a complete relaxation of the observed reaction forces. Particularly for the higher strength steel S960QL, there are pronounced areas influenced by the gouging process in which a degradation of the microstructure and properties should be assumed. Overall, the repair welds show a significant increase in the width of the weld and HAZ compared to the original weld, especially in the case of S960QL/G89. The repair welds show higher welding-induced stresses than the original welds, especially in the areas of the HAZ and the base metal close to the weld seam. This behaviour can be attributed overall to increased restraint conditions due to the remaining root weld or shorter gouge grooves. In good agreement with earlier investigations, the residual stresses transverse to the weld can be significantly reduced by upwardly limited working or interpass temperatures, and the reaction stresses resulting from high restraint conditions can be effectively counteracted. The influence of the heat input on the stress formation is low compared to the interpass temperature for both test materials. KW - Repair-welding KW - Wind Energy KW - High-strength steels KW - Cold cracking KW - Residual stresses KW - Offshore steels PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-600259 DO - https://doi.org/10.1007/s40194-024-01731-7 SN - 0043-2288 SP - 1 EP - 15 PB - Springer Nature AN - OPUS4-60025 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Witte, Julien T1 - Additive Manufacturing of Iron Aluminides: Microstructure, Machinability, and Surface Integrity N2 - The increasing global focus on energy and resource efficiency has stimulated a growing interest in additive manufacturing. AM offers economic advantages and enables an efficient use of materials. However, AM components often require subsequent mechanical post-processing, such as machining (e.g. milling), to achieve the final contours or surfaces. This is a particular challenge due to the heterogeneous and anisotropic nature of AM structures, which affect machining and the resulting component properties. High-performance materials such as iron aluminide represent a promising alternative to conventional high-temperature materials with a significant economic advantage. However, the strength and hardness properties, which are advantageous for applications in highly stressed lightweight components, pose a challenge for economical machining in addition to the AM microstructure properties. The difficult-to-cut material causes accelerated tool wear and insufficient surface quality. This study shows that crack-free additive manufacturing of the three-component system of iron-nickel-aluminum is possible and advantages in terms of machinability compared to FeAl-AM components are achieved. The more homogeneous microstructure leads to a reduction in cutting forces, with positive effects on the machinability and optimized surface integrity. Ultrasonic assisted milling (USAM) offers great potential to address the major challenges posed by difficult-to-cut materials and additively manufactured weld structures. Therefore, this study focuses on assessing the transferability of previous positive results by USAM to the selected iron aluminide alloys. The machinability of the aluminides is analyzed by varying significant influencing variables in finish milling experiments and evaluated in terms of the loads on the tool and the resulting surface integrity. T2 - 77. IIW Annual International Conference CY - Rhodos, Greece DA - 07.07.2024 KW - Additive manufacturing KW - Surface-integrity KW - Iron-aluminide KW - Ultrasonic-assisted milling KW - Difficult-to-cut KW - Tool wear PY - 2024 AN - OPUS4-62027 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Witte, Julien T1 - Optimizing residual stresses in additively manufactured high-performance materials N2 - The integration of modern high-performance materials in combination with additive manufacturing (AM) has revolutionized the approach to lightweight construction across diverse applications. This study explores the synergy between these materials and additive manufacturing (AM), focusing on their unique properties to engineer resource-efficient structures. Despite these advancements, machining these hard-to-cut materials such as iron-aluminide for safety-critical components remains challenging due to increased tool wear and compromised surface integrity. This research focuses on overcoming these challenges through the application of ultrasonic-assisted milling (USAM), a hybrid machining process exhibiting significant potential. By incorporating ultrasonic oscillations along the milling tool axis, USAM minimizes tool and component surface loads, enhancing tool life and producing defect-free, homogeneous surfaces with reduced roughness parameters. This investigation centers on the influence of ultrasonic-assisted milling on residual material stresses, crucial for component performance under load. In contrast to conventional milling generating tensile stresses, USAM induces advantageous compressive residual stresses, potentially enhancing the component's crack resistance. The study employs experimental variations in ultrasonic amplitude during the machining process to identify optimal parameters for achieving maximum compressive stresses. In addition, the depth profile of these residual stresses on the surface is investigated, which provides more detailed insights into their distribution and possible effects. This research not only contributes to the evolving environment of innovative manufacturing technologies, but also places particular focus on the central role of residual stresses in the performance and reliability of safety-critical AM components. The results not only contribute to a better understanding of ultrasonic-assisted milling, but also provide crucial guidance for the design of components that can withstand the challenges of real-world applications. T2 - BMDK OvGU Magdeburg CY - Magdeburg, Germany DA - 19.06.2024 KW - Ultrasonic-assisted milling KW - Additive manufacturing KW - High-performance materials KW - Surface integrity KW - Residual stresses depth profile PY - 2024 AN - OPUS4-62025 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Witte, Julien T1 - Optimizing residual stresses in additively manufactured high-performance materials N2 - The integration of modern high-performance materials in combination with additive manufacturing (AM) has revolutionized the approach to lightweight construction across diverse applications. This study explores the synergy between these materials and additive manufacturing (AM), focusing on their unique properties to engineer resource-efficient structures. Despite these advancements, machining these hard-to-cut materials such as iron-aluminide for safety-critical components remains challenging due to increased tool wear and compromised surface integrity. This research focuses on overcoming these challenges through the application of ultrasonic-assisted milling (USAM), a hybrid machining process exhibiting significant potential. By incorporating ultrasonic oscillations along the milling tool axis, USAM minimizes tool and component surface loads, enhancing tool life and producing defect-free, homogeneous surfaces with reduced roughness parameters. This investigation centers on the influence of ultrasonic-assisted milling on residual material stresses, crucial for component performance under load. In contrast to conventional milling generating tensile stresses, USAM induces advantageous compressive residual stresses, potentially enhancing the component's crack resistance. The study employs experimental variations in ultrasonic amplitude during the machining process to identify optimal parameters for achieving maximum compressive stresses. In addition, the depth profile of these residual stresses on the surface is investigated, which provides more detailed insights into their distribution and possible effects. This research not only contributes to the evolving environment of innovative manufacturing technologies, but also places particular focus on the central role of residual stresses in the performance and reliability of safety-critical AM components. The results not only contribute to a better understanding of ultrasonic-assisted milling, but also provide crucial guidance for the design of components that can withstand the challenges of real-world applications. T2 - European Conference on Surface Integrity 11 CY - Prague, Czech Republic DA - 03.06.2024 KW - Ultrasonic-assisted milling KW - Additive manufacturing KW - High-performance materials KW - Surface integrity KW - Residual stresses depth profile PY - 2024 AN - OPUS4-62026 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -