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Eingeladener Vortrag
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The most important results of the dissertation are: 1. Systematic experimental investigations of the vapour-plasma plume generated during deep penetration high-power (10÷20 kW) ytterbium fiber laser beamwelding of low-alloyed mild steel plates were carried out. 2. It was confirmed experimentally that free electron temperature and concentration in the laser- induced welding plasma plume are negligibly low (Т < 4500 К,ne < 10 15 cm-3). On the basis of these values it can be affirmed that absorption and refraction of high power fiber laser radiation in the welding plasma plume are not able to influence the welding quality in this case. 3. It was shown that the vapour-plasma welding plume is composed of the welding plasma generated in a relatively small area (5-10 mm height) near the metal surface and of an extensive upper part (up to 60-70 mm height) which consists of a small condensed metal vapour particle cloud and is able to absorb electromagnetic radiation. 4. Average condensed metal vapour particle diameter in the welding plume was measured experimentally to vary from 80 nm to 110 nm depending on the welding plume height as well as on the welding process parameters. Volume particle concentration in the cloud on the welding plume axis has a value of about 1010 cm-3. 5. Extinction of the probe laser radiation in the upper part of the welding plume is mainly caused by absorption in the small condensed metal vapour particles. The extinction coefficient at the probe radiation wavelength of 1.3 μm was measured experimentally to have a value of about a few units per meter which is much higher than the inverse Bremsstrahlung absorption coefficient in the welding plasma plume calculated for this radiation wavelength. 6. Shielding gas (Ar or He) supplied to the welding area leads to intensive cooling of the welding plasma in the lower part of the welding plume down to its complete suppression. However, due to the more intensive metal vapour condensation process in the colder medium above the keyhole, the upper part influence can become even stronger. 7. Total attenuation of the high-power fiber laser beam propagating through the whole welding plume height to the metal surface was estimated to be about 10%. Considering the spatial dynamics of the probe light extinction signals it was concluded that the effect of metal vapour condensation over the keyhole during deep penetration high-power fiber laser metal welding is able to significantly worsen of the laser beam power stability when the beam reaches the keyhole inlet.
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.
Experimental Investigation of the Laser-Plume Interaction during High Power Fiber Laser Welding
(2011)
Condensed metal particles influence on the process of high power fiber laser thick metal welding
(2011)
We have conducted spectroscopic studies of the welding plasma formed in the process of welding with an ytterbium fiber laser delivering output power of up to 20 kW. The influence of shielding gases (Ar, He) on different parts of the welding plume is investigated. The absorption coefficient of the laser radiation by the welding-plume plasma is estimated. Scattering of 532-nm probe radiation from particles of the condensed metal vapor within the caustic of a high-power fiber laser beam is measured. Based on the obtained results, conclusions are made on the influence of the plasma formation and metal vapor condensation on the radiation of the high-power fiber laser and the stability of the welding process.