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Up to the present, the thermomechanical loads during welding and subsequent cooling under design-specific shrinkage restraint resulting from the interaction between the materials and the structure have often not been taken into consideration approperiately for weldability assessment of components. As compared to previous investigations using small specimens this report presents component weld tests under varying intensities of restraint. Online records of the reaction forces and moments demonstrate in which way the intensity of restraint affects the reaction stresses and moments and their meaning for the evaluation of the load level in welded components.
Düring the past decades, weldability studies have predominantly been concentrated on the material and the welding process. In order to achieve a closer insight into the structural effects, component weldability tests have been performed by online monitoring of the reaction forces and moments. As a particular item, the effects of different strengths of the base and filier material on the reaction force and stress build up transverse to the welding direction have been studied at a specific structural restraint. As a most relevant result for practical welding it is demonstrated that the final reaction force and also the reaction stress level in the multilayer butt welds decreases with overmatch of the weld metal.
Analyse lokaler Verformungsfelder mittels DIC-Technik während der Heißrissbildung beim Schweißen
(2013)
Für die Gewährleistung der Bauteilsicherheit ist während des Fertigungsprozesses das Vermeiden von Imperfektionen maßgeblich. Zu diesen Imperfektionen zählen auch beim Schweißen auftretende Heißrisse, die insbesondere die Bauteileigenschaft beeinflussen und demzufolge ausgeschlossen werden müssen. Aufgrund der hohen Komplexität, hervorgerufen durch das Zusammenwirken zahlreicher Einflussgrößen, existieren überwiegend vereinfachte Werkstoffmodelle, die das Heißrissphänomen nur unzureichend beschreiben. Da bislang eine Charakterisierung dieser Heißrissentstehung überwiegend auf spannungs- und dehnungsbasierten Modellen erfolgt, wurde in diesem Fall speziell geprüft, in wie weit vereinfachend eine Quantifizierung des Heißrissverhaltens anhand von Verschiebungen bzw. Verschiebungsraten möglich ist. Die Tatsache, dass Heißrisse in Werkstoffen auftreten, die aus metallurgischer Sicht als heißrissunkritisch eingestuft werden können, zeigt, dass weitere Faktoren, wie der konstruktive Einfluss, betrachtet werden müssen. In der vorliegenden Arbeit wurde dieser Aspekt unter Nutzung des Controlled-Tensile- Weldability(CTW)-Tests untersucht. Hierfür wurde die Digital-Image-Correlation( DIC)-Technik erfolgreich zur In-situ-Analyse der lokalen Querverschiebungen dy und Querverschiebungsraten dy/dt in direkter Schmelzbadnähe während des Schweißens eingesetzt.-----------------------------------------------------------------------------------------------------------------------------------------------------------------
In order to guarantee the component safety, it is essential to avoid imperfections during the production process. These imperfections also include hot cracks which arise during welding, exert an influence on the component property in particular and must consequently be excluded. Due to the high complexity caused by the interaction of a large number of influencing variables, there are mostly simplified material models which describe the hot cracking phenomenon only insufficiently. Since this hot crack initiation has, until now, been characterised mostly on models based on stresses and strains, it was especially checked in this case the extent to which the hot cracking behaviour can be quantified using a simplifying method taking account of displacements and displacement rates. The fact that hot cracks occur in materials that, from the metallurgical point of view, cannot be classified as hot-crack-critical shows that further factors such as the influence of design need to be considered. This aspect was investigated in the present study by using the Controlled Tensile Weldability (CTW) test. For this, the Digital Image Correlation (DIC) technique was successfully applied for the in situ analysis of the local transverse displacements dy and transverse displacement rates dy/dt in the direct weld pool vicinity during welding.
Revealing hydrogen embrittlement mechanisms in steels is of great interest to scientists and engineers. Neutron radiography makes it possible to measure in-situ hydrogen diffusion with high spatial and temporal resolution at concentrations as low as 20 ppm. We compare hydrogen-charged specimens with hydrogen-free reference specimens and use calibration standards to normalize the hydrogen concentrations. This allows quantitative tracking of the hydrogen concentration evolution as a function of time, space and temperature. Furthermore, a view into the material with 'neutron eyes' facilitates the detection of cavities that contain molecular hydrogen.
Hydrogen generally causes lattice distortions and phase transformations when introduced into a metallic crystal lattice. For the investigations reported in this contribution, hydrogen thermal desorption analysis has been carried out to observe the influence of hydrogen desorption on the lattice of super martensitic stainless steel during continuous heating. The lattice expansion parameter and the phase transformations have been monitored during the thermal desorption process, and the influence of hydrogen on such characteristics has been evaluated. It was found that hydrogen has a significant influence on both the lattice parameter and on the thermal expansion. However, hydrogen has no influence on phase transformation during thermal desorption. The hydrogen's desorption behavior in this process was also observed and it turned out that hydrogen desorbs in two stages, i.e., firstly diffusible hydrogen and trapped hydrogen afterward.
Quantification of hydrogen diffusion Coefficients and Effusion Behaviour in Duplex Steel Weld Metals
(2012)
A 20 mm thick heat resistant 13CrMoV9-10 steel was welded using a multi-pass submerged arc tandem setup on a 3-D testing facility designed to prevent shrinkage both during the welding and the subsequent cooling to room temperature. The effects of variations in pre-heating and interpass temperatures on the local stresses were monitored by in situ measurement of reaction forces and bending moments during welding and the subsequent dehydrogenation heat treatment. The austenite to bainite transformation and its effects on the overall loads were monitored through the use of a high sampling rate. Increasing the pre-heating and interpass temperatures led to a rise in reaction forces and bending moments. The bending moments originated from the eccentric force transmission over the backing, with a concomitant risk of fracture, especially in the critical root zone. Although the pre-heating and interpass temperatures had a strong effect on the reaction forces, their effect on the bending moments upon cooling to room temperature was negligible.
The purpose of the present study is to show the feasibility of examining hydrogen desorption in technical iron samples using neutron radiography at the ANTARES facility of the FRM II research reactor, Technische Universität München. It has been shown that this method is appropriate for in situ determination of hydrogen Desorption for concentrations as low as 20 ppmH. Experiments were carried out in the temperature range from room temperature up to 260 °C. Measurement was based on direct comparison between electrochemically hydrogen-loaded iron samples and hydrogen-free reference samples at the same temperature.
This enables the determination of hydrogen concentration as a function of time and temperature. Ex situ carrier gas hot extraction experiments using the same temperature–time profiles as the neutron radiography experiments have been used to calibrate the greyscale values of the radiographs to defined hydrogen concentrations. It can be stated that hydrogen desorption correlates with sample temperature.