TY - JOUR A1 - Schempp, Philipp A1 - Schwenk, Christopher A1 - Rethmeier, Michael A1 - Cross, C.E. T1 - Weld metal grain refinement of aluminium alloy 5083 through controlled additions of Ti and B N2 - Kornfeinung im Schweißgut kann die mechanischen Eigenschaften der Schweißnaht und die Schweißeignung des Grundwerkstoffs deutlich verbessern. Eine Möglichkeit korngefeintes Schweißgut zu erreichen, ist das Versetzen des Schmelzbades mit kornfeinenden Mitteln. In dieser Studie wird gezeigt wie Titan- und Borzusätze Korngröße und -struktur von WIG-Schweißnähten der Al-Legierung 5083 (Al Mg4,5Mn0,7) beeinflussen. Dazu wurden in einem Gießprozess stäbchenförmige Einlagen hergestellt, die aus Grundwerkstoff und definierten Zusätzen der Kornfeinungslegierung Al Ti5B1 bestanden. Sie wurden als Ersatz für einen Schweißzusatzwerkstoff in einer Nut im Grundwerkstoff untergebracht und im WIG-Verfahren überschweißt. Durch die Steigerung des Titan- und Borgehalts im Schweißgut konnte dessen mittlere Korngröße deutlich verringert werden. Außerdem wurde eine Änderung der Kornstruktur beobachtet. Die Ergebnisse können als Grundlage genutzt werden, um die empfohlene chemische Zusammensetzung von Schweißzusätzen für Lichtbogenschweißen von Aluminium anzupassen. KW - Aluminium-Legierung 5083 KW - Kornfeinung KW - WIG-Schweißen PY - 2011 DO - https://doi.org/10.3139/120.110265 SN - 0025-5300 VL - 53 IS - 10 SP - 604 EP - 609 PB - Hanser CY - München AN - OPUS4-24654 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Heinze, Christoph A1 - Schwenk, Christopher A1 - Rethmeier, Michael ED - Zoch, H.-W. ED - Lübben, T. T1 - Influences on the result quality of numerical calculation of welding-induced distortion N2 - The present investigations cover different relevant influences on the numerical calculation of welding-induced distortion. Therefore, a single-layer pulsed gas metal arc (GMA) weld of structural Steel S355J2+N with a thickness Öf5 mm is experimentally and numerically investigated. The influences of mesh density, tack-welds, and continuous cooling transformation (CCT) diagrams on welding-induced distortion are studied. The quality and quantity of These effects are clarified based on the used experimental and numerical set up. The occurring differences between the investigated cases achieve significant values. Consequently, prediction of welding-induced distortion can be improved considering the present investigations. T2 - IDE 2011 - 3rd International conference on distortion engineering 2011 CY - Bremen, Germany DA - 14.09.2011 KW - Welding simulation KW - Welding-induced distortion KW - Mesh analysis KW - Tack welding KW - Continuous cooling transformation behaviour PY - 2011 SN - 978-3-88722-724-1 SP - 277 EP - 285 AN - OPUS4-24363 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Roeren, S. A1 - Schwenk, Christopher A1 - Rethmeier, Michael ED - H.K.D.H. Bhadeshia, ED - H. Cerjak, ED - E. Kozeschnik, T1 - Different approaches to model clamping conditions within a welding simulation PY - 2007 SN - 978-3-902465-69-6 SP - 1093 EP - 1106 CY - Graz, Austria AN - OPUS4-16489 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Heinze, Christoph A1 - Schwenk, Christopher A1 - Rethmeier, Michael A1 - Caron, J. T1 - Numerical sensitivity analysis of welding-induced residual stress depending on variations in continuous cooling transformation behavior N2 - The usage of continuous cooling transformation (CCT) diagrams in numerical welding simulations is state of the art. Nevertheless, specifications provide limits in chemical composition of materials which result in different CCT behavior and CCT diagrams, respectively. Therefore, it is necessary to analyze the influence of variations in CCT diagrams on the developing residual stresses. In the present paper, four CCT diagrams and their effect on numerical calculation of residual stresses are investigated for the widely used structural steel S355J2 + N welded by the gas metal arc welding (GMAW) process. Rather than performing an arbitrary adjustment of CCT behavior, four justifiable data sets were used as input to the numerical calculation: data available in the Sysweld database, experimental data acquired through Gleeble dilatometry tests, and TTT/CCT predictions calculated from the JMatPro and Edison Welding Institute (EWI) Virtual Joining Portal software. The performed numerical analyses resulted in noticeable deviations in residual stresses considering the different CCT diagrams. Furthermore, possibilities to improve the prediction of distortions and residual stress based on CCT behavior are discussed. KW - Welding simulation KW - GMAW KW - CCT sensitivity KW - Welding residual stress PY - 2011 DO - https://doi.org/10.1007/s11706-011-0131-7 SN - 1673-7377 SN - 1673-7482 VL - 5 IS - 2 SP - 168 EP - 178 PB - Springer ; [Beijing] : Higher Education Press CY - Secaucus, N.J. ; Heidelberg AN - OPUS4-23835 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - THES A1 - Schwenk, Christopher T1 - FE-Simulation des Schweißverzugs laserstrahlgeschweißter dünner Bleche Sensitivitätsanalyse durch Variation der Werkstoffkennwerte N2 - Der Hauptaspekt der vorliegenden Dissertation ist die Sensitivitätsanalyse der FE- Schweißsimulation, basierend auf einer Variation der Werkstoffkennwerte, sowie deren Einfluss auf das transiente Temperaturfeld und die Verzüge. Dabei wird das Streuband der Werkstoffkennwerte für den gesamten Temperaturbereich sowie für diskrete Temperaturintervalle, die aus der Metallurgie und den experimentellen Randbedingungen abgeleitet sind, betrachtet. Die Untersuchung findet an drei verschiedenen Legierungen statt, welche zurzeit gebräuchliche Werkstoffe im Automobilbau innerhalb der folgenden Hauptlegierungsgruppen darstellen: • hochfester Dualphasenstahl • austenitischer Chrom-Nickel-Stahl • aushärtbare Aluminiumlegierung Die betrachteten Kennwerte sind Wärmeleitfähigkeit, spezifische Wärmekapazität und Dichte sowie E-Modul, Dehngrenze, thermische Dehnung, Querkontraktionszahl und Verfestigungsverhalten. Die Untersuchungen zeigen den großen Einfluss der spezifischen Wärmekapazität und der Dichte auf das berechnete Temperaturfeld und die anschließend ermittelten Verzüge. Mit Blick auf die thermomechanischen Kennwerte werden die Verzüge hauptsächlich von der thermischen Dehnung, dem E-Modul und der Dehngrenze beeinflusst. Die wichtigen thermophysikalischen und thermomechanischen Kennwerte werden für alle drei Legierungen gemessen. Diese sehr genauen Daten werden für eine Simulation ohne die möglichen Fehlerquellen der Streuung der Werkstoffkennwerte verwendet. Die Daten der Werkstoffkennwerte werden dann entsprechend der bekannten Streubänder variiert um die Sensitivität der simulierten Temperaturzyklen und Verzüge zu ermitteln. Die Berechnungsergebnisse werden über Schweißversuche an ebenen Platten mit Laserstrahl- Blindnähten validiert (Thermoelementmessungen, Nahtquerschliffe und Wegaufnehmermessungen der Verzüge). Darüber hinaus werden die Ergebnisse anhand einer Schweißsimulation und Verzugsoptimierung eines industriell relevanten Bauteils überprüft. Die Ergebnisse, Meinungen und Schlüsse dieser Dissertation sind nicht notwendigerweise die der Volkswagen AG. N2 - The primary focus of this dissertation is the analysis of the sensitivity of FE welding simulation depending on material property values variation and their influence on the transient temperature field and distortions. The scatter band of material property values for the complete temperature range and for discrete temperature intervals, derived from the metallurgy and the experimental boundary conditions, is considered. Three different alloys for the main material groups are examined which represent some of the currently most widely used materials in automotive engineering: • high strength dual phase steel • austenitic chromium-nickel steel • precipitation hardening aluminium alloy The investigated properties are heat conductivity, specific heat capacity and density as well as Young’s modulus, yield strength, thermal expansion, Poisson’s ratio and strain hardening. The analyses show the great impact of the specific heat capacity and density on the calculated temperature field and subsequently acquired distortions. Looking at the thermomechanical properties, the distortions are mostly affected by thermal expansion, Young’s modulus and yield strength. The main thermophysical and thermomechanical properties for all three alloys are measured. This very accurate data is used to generate a simulation without the possible error sources from the scattering of material properties. The data of the material properties is then varied according to the known scatter band in order to extract the sensitivity of the simulated thermal cycles and distortions. The calculated results are validated with welding experiments of flat plates with laser beam-bead-on-platewelds (thermocouple measurements, macrosections of the weld seam and transducer measurements of distortions). Furthermore, the results are cross-checked for the welding simulation and distortion optimisation of an industrially relevant part. The results, opinions and conclusions expressed in this thesis are not necessarily those of Volkswagen AG. T3 - BAM Dissertationsreihe - 26 KW - Finite Elemente KW - experimentelle Validierung KW - Sensitivität KW - Werkstoffkennwerte KW - Simulation KW - Laserstrahlschweißen KW - Temperaturfeld KW - Verzug PY - 2007 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-1324 SN - 978-3-9811655-5-5 SN - 1613-4249 VL - 26 SP - 1 EP - 185 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-132 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Pittner, Andreas A1 - Weiss, D. A1 - Schwenk, Christopher A1 - Rethmeier, Michael T1 - A methodology for the fast temperature field generation for welding simulation T2 - 17th International Conference "Computer Technology in Welding and Manufacturing" CY - Cranfield, UK DA - 2008-06-18 KW - Welding simulation KW - Temperature field generation KW - Short calculation time KW - Multiple experiments KW - Inverse heat conduction problem KW - Neural networks PY - 2008 SN - 978-1-903761-07-6 SP - 1 EP - 12 PB - TWI CY - Cambridge AN - OPUS4-18290 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Perret, William A1 - Schwenk, Christopher A1 - Rethmeier, Michael T1 - Comparison of analytical and numerical welding temperature field calculation N2 - Analytical and numerical methods are used to estimate the temperature field due to the heat effects of welding. Numerical techniques are more adapted for industrial complex applications where analytical solutions do not exist yet. However, computational time is much lower with analytical models and a combination of both methods is investigated. Therefore, the two approaches are introduced and confronted in this paper. The finite-element software Ansys has been used for numerical simulations and Scilab for analytical simulations. In order to get a similar result quality, both methods have to be analysed and compared with respect to boundary conditions. These configurations are presented in this paper. Before starting any analysis, the analytical and numerical models have to be comparable. For the numerical simulation, every in- or output is given in discrete form and, for the analytical simulation, in continuous form. Thus, an analysis of the energy input distribution in both models is compulsory to ensure that the same amount of energy is applied. After this first study, a comparison of the analytical and numerical temperature field simulation is done from a fix point source in an infinite volume in steady state to a moving point source in a finite dimension in a transient state. A good agreement between the analytical and the numerical simulation results is found. However, some techniques, like a consideration of an image heat source for the analytical model or the selection of boundary conditions for the numerical model, need to be taken into consideration when the degree of complexity of the study (finite dimension or cooling time) increases. The limit of the comparison is reached when the geometry becomes too complex and when the effect of variable thermal properties with temperature cannot be neglected. KW - Welding simulation KW - Temperature field KW - Analytical approach KW - Numerical approach KW - Heat conduction PY - 2010 DO - https://doi.org/10.1016/j.commatsci.2009.11.032 SN - 0927-0256 VL - 47 IS - 4 SP - 1005 EP - 1015 PB - Elsevier CY - Amsterdam AN - OPUS4-20887 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schwenk, Christopher A1 - Rethmeier, Michael T1 - Simulation based approach for distortion analysis and optimisation of beam welded automotive parts T2 - VI. International conference "Beam technologies & laser application" CY - Saint Petersburg, Russia DA - 2009-09-23 KW - Numerical welding simulation KW - Distortion KW - Optimisation KW - Laser and electron beam welding KW - Automotive parts PY - 2009 SP - 1 EP - 9(?) CY - Saint Petersburg, Russia AN - OPUS4-20797 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Caron, J. A1 - Heinze, Christoph A1 - Schwenk, Christopher A1 - Rethmeier, Michael A1 - Babu, S. S. A1 - Lippold, J. T1 - Effect of continuous cooling transformation variations on numerical calculation of welding-induced residual stresses N2 - Continuous cooling transformation (CCT) behavior affects the transient state of material properties employed in a numerical welding simulation, having a direct influence on the developing stress state. Three different CCT diagrams for S355J2 steel were employed to understand the influence of variations in CCT behavior on the numerical calculation of welding-induced residual stresses. The CCT diagrams were constructed from transformation data contained in the Sysweld software database, measured dilatometric data from Gleeble experiments, and transformation data calculated from the JMatPro software. The calculated transverse and longitudinal residual stress distributions provided a qualitative correction only in comparison to experimental measurements, with the largest deviation occurring near the weld interface. Overall, the results indicate a weak dependency of the calculated residual stresses due to anticipated CCT variations. The most significant effect on the calculated residual stresses was shown to be related to the proportion of formed martensite. It is suggested that CCT data of approximate accuracy is sufficient for reliable calculation of welding-induced residual stresses. KW - Continuous cooling transformation diagrams KW - Residual stresses KW - Gas metal arc welding KW - C-Mn steels KW - Welding simulation KW - Schweißsimulation KW - Eigenspannungen KW - Martensitbildung KW - Sensitivitätsanalyse KW - Sysweld KW - Martensite kinetic KW - Sensitivity analysis PY - 2010 SN - 0043-2296 SN - 0096-7629 VL - 89 SP - 151-s - 160-s PB - American Welding Society CY - New York, NY AN - OPUS4-21444 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Heinze, Christoph A1 - Kromm, Arne A1 - Schwenk, Christopher A1 - Kannengießer, Thomas A1 - Rethmeier, Michael T1 - Welding residual stresses depending on solid-state transformation behaviour studied by numerical and experimental methods N2 - The development of high-strength structural steels with yield strengths up to 1000 MPa results in the requirement of suitable filler materials for welding. Recently designed low transformation temperature (LTT) alloys offer appropriate strength. The martensitic phase transformation during welding induces compressive residual stress in the weld zone. Therefore, the mechanical properties of welded joints can be improved. The present paper illustrates numerical simulation of the residual stresses in LTT-welds taking into account the effect of varying Ms/Mf-temperatures, and therefore different retained austenite contents, on the residual stresses. Residual stress distributions measured by synchrotron diffraction are taken as evaluation basis. A numerical model for the simulation of transformation affected welds is established and can be used for identification of appropriate Ms-temperatures considering the content of retained austenite. KW - Welding simulation KW - Residual stress KW - Low transformation temperature filler material KW - Martensitic transformation KW - Retained austenite PY - 2011 DO - https://doi.org/10.4028/www.scientific.net/MSF.681.85 SN - 0255-5476 VL - 681 SP - 85 EP - 90 PB - Trans Tech Publications CY - Aedermannsdorf, Switzerland AN - OPUS4-23357 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Caron, J. A1 - Heinze, Christoph A1 - Schwenk, Christopher A1 - Rethmeier, Michael A1 - Babu, S. S. A1 - Lippold, J. ED - Cerjak, H. ED - Enzinger, N. T1 - Sensitivity analysis of martensite transformation temperatures with respect to numerical calculation of welding-induced residual stresses KW - Schweißsimulation KW - Eigenspannungen KW - Martensitbildung KW - Sensivitätsanalyse KW - Sysweld KW - Welding simulation KW - Residual stresses KW - Martensite kinetic KW - Sensitivity analysis PY - 2010 SN - 978-3-85125-127-2 SP - 215 EP - 238 PB - Verlag der Technischen Universität Graz AN - OPUS4-23008 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Schwenk, Christopher A1 - Rethmeier, Michael ED - Cerjak, H. ED - Enzinger, N. T1 - Structured approach for a transient 3D numerical welding simulation KW - Numerical welding simulation KW - Experimental validation KW - Temperature field KW - Welding distortion KW - Residual stress PY - 2010 SN - 978-3-85125-127-2 SP - 901 EP - 917 PB - Verlag der Technischen Universität Graz AN - OPUS4-23153 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schwenk, Christopher T1 - Standardisierung der numerischen Schweißsimulation T2 - Große Schweißtechnische Tagung 2011, DVS Congress und DVS Expo CY - Hamburg, Germany DA - 2011-09-27 PY - 2011 AN - OPUS4-24519 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schwenk, Christopher A1 - Tikhomirov, D. A1 - Eßer, G. A1 - Rethmeier, Michael T1 - General standard for welding simulation N2 - Für die Abgrenzung der Anwendbarkeit verschiedener Methoden der numerischen Schweißsimulation sowie für die Vereinheitlichung der Voraussetzungen und der durchzuführenden Schritte bei der Simulation sind normative Regelwerke für den Anwender erforderlich. Da es derzeit noch keine normähnlichen Dokumente auf diesem Gebiet gibt, wurde vom Deutschen Institut für Normung e.V. DIN in Zusammenarbeit mit der Forschungsvereinigung des DVS Deutscher Verband für Schweißen und verwandte Verfahren e.V. ein Arbeitsausschuss gegründet, welcher sich mit der Erarbeitung der entsprechenden Dokumente befasst. Der vorliegende Beitrag konzentriert sich auf die Vorstellung der neuen DIN Spec 32534-1, welche die grundlegenden Simulations-Schritte erläutert und ihre Anwendungsfelder sowie die Schlüsselbegriffe spezifiziert. Des Weiteren wurde eine allgemein gültige Simulationsstruktur erarbeitet, welche als Empfehlung für den Auftraggeber und den Auftragnehmer bei der Formulierung und Abwicklung eines Dienstleistungsauftrages sowie für den Neueinstieg in die Schweißsimulation dienen soll. Schließlich wird ein Ausblick auf die weiteren Themenfelder des Arbeitsausschusses sowie auf die internationalen Aktivitäten auf diesem Gebiet gegeben. N2 - For differentiating the applicability of various numerical welding simulation methods as well as unifying the prerequisites and the steps to be taken in simulation, normative codes are required for the user. Since any standard-like documents are currently still lacking in this field, the DIN German Institute for Standardization in partnership with the Research Association of DVS German Welding Society have set up a standards committee dealing with the preparation of respective documents. This article focuses on the presentation of the new DIN Spec 32534-1 explaining the major simulation steps and specifying the application fields and the key terms of welding simulation. In addition, a generally valid simulation structure has been established which is intended to serve as a recommendation for customers and suppliers in formulating and handling a service order as well as for persons who start doing welding simulation for the first time. It additionally gives an overview of the other subject areas dealt with in the standards committee as well as of the international activities in this field. PY - 2011 UR - 10.3139/120.110257 SN - 0025-5300 VL - 53 IS - 9 SP - 522 EP - 527 PB - Hanser CY - München AN - OPUS4-24355 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Thater, Raphael A1 - Perret, William A1 - Schwenk, Christopher A1 - Alber, U. A1 - Rethmeier, Michael T1 - Industrial application of welding temperature field and distortion visualization using FEA KW - Numerical welding simulation KW - Temperature field KW - Distortion KW - Industrial application KW - Automotive assembly PY - 2010 SN - 0387-4508 VL - 39 IS - 2 SP - 232 EP - 234 CY - Osaka, Japan AN - OPUS4-24354 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schwenk, Christopher A1 - Rethmeier, Michael T1 - Material properties for welding simulation - measurement, analysis, and exemplary data N2 - Welding is a key technology in the area of industrial production due to its flexibility and efficiency. However, new materials and welding techniques necessitate permanent research activities in order to keep up with the demands. A detailed knowledge about the process itself and the heat effects of welding, e.g., temperatures, distortions, and stresses, is the basis for a target-oriented optimization instead of a trial-and-error approach. Numerical welding simulation is a powerful tool to meet these demands. Complementary to an experimental investigation, it enables the analysis of the specimen during the welding process, commonly known as computational welding mechanics (CWM). Whereas simulation is nowadays a common tool in different development processes, the modeling of welding still remains difficult because of the multiple physical effects taking place. One of the most important problems for the user is the lack of knowledge about the material properties as input data for the simulation. Furthermore, any scattering of the data causes uncertainties that can have major effects on the calculations. The objective of this paper is to give an overview about the experimental determination and analysis of the material properties needed as input data for a welding simulation. The measurement techniques and the occurring deviations of the results are discussed. Additionally, the collected data for three representative alloys (dual-phase steel, austenitic steel, precipitation-hardenable aluminum alloy) are analyzed. Finally, the temperature-dependent thermophysical and thermomechanical material properties for these three alloys are given in a ready-to-use format for a numerical welding simulation. KW - Thermophysical material properties KW - Thermomechanical material properties KW - Experimental determination KW - Numerical welding simulation PY - 2011 SN - 0043-2296 SN - 0096-7629 VL - 90 SP - 220-s EP - 227-s PB - American Welding Society CY - New York, NY AN - OPUS4-25028 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -