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Short Term Metallurgy and Hot Cracking During Laser Beam Welding of Austenitic Stainless Steels
(2011)
Industrial application of high alloyed austenitic stainless steel laser welding has grown significantly in the recent time due to the continuous improvement of compact and high power density lasers systems. The application of such processes meanwhile ranges from pipeline or railway car body manufacturing to the production of household wares. The largest advantages of the laser application to welding production are much higher welding speeds, reduction or complete exclusion of welding consumables, easy design of the weld joints, decrease of thermal distortions and thus, costs saving. In contrast to arc welding, laser beam welding might particularly be associated with metallurgical defects, like the formation of hot cracks. Such phenomena are related to an order of magnitude higher temperature gradients and cooling rates in the solidification zone, providing rapid solidification kinetics which may cause significant segregation of alloying elements such as Ni and Cr and respective undercooling of the solute at the solidification front. In specific metastable austenitic stainless steels alloys in vicinity of the so called eutectic rim of the Fe-Cr-Ni constitutional diagram, such effects might entail a change of solidification mode from primary ferrite to austenite, providing an increased risk of solidification cracking. Previous studies has shown that the primary solidification mode change during laser beam welding of Cr-Ni austenitic stainless steels such alloys could be effectively influenced by nitrogen absorption as well as by the laser plasma type and also proved the occurrence of metastable primary ferritic solidification. In the present contribution, such results are compared to recent investigations of laser welding newer austenitic Fe-Cr-Mn-Ni steel grades by identification of respective hot cracking critical welding parameter intervals and strain rates in the Controlled Thermal Weldability (CTW) Test.
Schweißeigenspannungen - im Besonderen infolge von Strahlschweißprozessen - annähernd der werkstoffspezifischen Streckgrenze können durch eine mögliche Spannungsrelaxation oder verstärkte Spannungsrisskorrosion lebensdauerreduzierende Konsequenzen mit sich ziehen. Aus diesem Grund wurden viele Verfahren entwickelt, welche diese Eigenspannungen reduzieren können. Jedoch sind diese Verfahren kostenintensiv oder nur für breite Schweißnähte und einfache Bauteilgeometrien anwendbar. Die in dieser Arbeit dargestellte Methode nutzt den Schweißstrahl für den Schweißprozess sowie in defokussierter Form für eine thermische Nachbehandlung des Bauteils. Hierfür läuft der defokussierte Strahl durch hochfrequente Strahlablenkung beidseitig der Schweißnaht mit einer bestimmten zeitlichen Distanz dem Schmelzbad nach und wird zum Aufheizen dieser Materialbereiche genutzt. Mit dieser Prozedur ist es möglich die Spannungen in schmalen Schweißnähten mit großen Spannungsgradienten im Vergleich zu anderen spannungsreduzierenden Verfahren ohne Kontaktflächen oder zusätzlichem Equipment effizient zu reduzieren. Abhängig von der Bauteilgeometrie und der Strahlleistung können unterschiedliche Prozessparameter für dieses Verfahren angewandt werden. Es werden die Mechanismen der Eigenspannungsreduzierung in diesem Prozess und deren Abhängigkeit von den Prozessparametern anhand von Ergebnissen aus FEM-Simulationen diskutiert. Zudem wird in einer Reihe von experimentellen Ergebnissen die Anwendbarkeit von bereits für lineare Schweißnähte ermittelte Verfahrensparameter auf axiale und radiale Rundnähte nachgewiesen. Hierbei zeigen die besten experimentellen Ergebnisse für Elektronenstrahl- sowie für Laserstrahlschweißnähte Spannungsreduktionen größer als 90 %.
Experimental investigation of the laser-plume interaction during high power fiber laser welding
(2011)
The effect of the well-known plasma absorption and refraction in CO2-laser metal welding plumes is in case of high power solid state laser welding negligibly small. By contrast, the diffraction effects of shorter wavelength laser radiation are considerable. According
to the results of preliminary studies, the fine condensed metal particles in the welding plume can lead to essential worsening of the laser beam quality.
This work is devoted to the investigation of the lasermatter interaction during up to 20 kW ytterbium fiber laser welding of thick mild steel plates. The plume attenuation of a probe 1.3 µm wavelength diode laser beam as well as of continuous radiation in 250-600 nm
wavelength range was measured during welding with and without Ar shielding gas supply. The measured results allow it to calculate average size and concentration of fine condensed metal particles in
different plume areas using the multi-wavelength method and the Mie scattering theory. The plume temperature, which determines the condensation conditions, was measured by means of Fe I atom
spectral line emission registration.
The obtained results can be also of interest for remote metal treatment with high-power fiber or disc lasers.
The results of an in-situ plume-laser interaction measurement during welding of mild steel with a 5 kW ytterbium fiber laser are reported. A measurement of the attenuation of probe laser beam passing through the plume has allowed to estimate the plume characteristics like the size of the extinction area and the spatial distribution of the extinction coefficient. The power loss of the fiber laser radiation propagating through the whole plume length was calculated. Together with a measured temporal characteristics of extinction the result indicates a significant decreasing of the laser radiation stability, which can lead to the formation of the macroscopic welding defects.
A three-dimensional laminar steady
state numerical model was used to investigate
the influence of an alternating current (ac)
magnetic field during high power laser beam
keyhole welding of 20 mm thick nonferromagnetic
aluminum. COMSOL
Multiphysics was used to calculate the threedimensional
heat transfer, fluid dynamics and
electromagnetic field equations. Most
important physical effects of the process were
taken into account: Thermo-capillary
(Marangoni) convection at the upper and lower
weld pool boundaries, natural convection due
to gravity and latent heat of solid-liquid phase
transition. It is shown that the gravity drop-out
associated with welding of thick plates due to
the hydrostatic pressure can be prevented by
the application of an ac magnetic field. The
application of an oscillating magnetic field of
70 mT was investigated to allow for singlepass
laser beam welding of thick aluminum
plates. The flow pattern in the molten zone and
the temperature distributions are significantly
changed.