Abstract

In this note experimental studies of tungsten (W) samples irradiated by intense plasma-ion streams are reported. Measurements were performed using the modified plasma focus device DPF-1000U equipped with an axial gas-puffing system. The main diagnostic tool was a Mechelle®900 optical spectrometer. The electron density of a freely propagating plasma stream (i.e., the plasma stream observed without any target inside the vacuum chamber) was estimated on the basis of the half-width of the Dβ spectral line, taking into account the linear Stark effect. For a freely propagating plasma stream the maximum electron density amounted to about 1.3 × 1017 cm−3 and was reached during the maximum plasma compression. The plasma electron density depends on the initial conditions of the experiments. It was thus important to determine first the plasma flow characteristics before attempting any target irradiation. These data were needed for comparison with plasma characteristics after an irradiation of the investigated target. In fact, spectroscopic measurements performed during interactions of plasma streams with the investigated W samples showed many WI and WII spectral lines. The surface erosion was determined from mass losses of the irradiated samples. Changes on the surfaces of the irradiated samples were also investigated with an optical microscope and some sputtering and melting zones were observed.

Details

Title
Study of tungsten surface interaction with plasma streams at DPF-1000U
Author
Ladygina, Marina S 1 ; Skladnik-Sadowska, Elzbieta 2 ; Zaloga, Dobromil R 2 ; Malinowski, Karol 2 ; Sadowski, Marek J 3 ; Kubkowska, Monika 4 ; Kowalska-Strzeciwilk, Ewa 4 ; Paduch, Marian 4 ; Zielinska, Ewa 4 ; Miklaszewski, Ryszard 4 ; Garkusha, Igor E 1 ; Gribkov, Vladimir A 5 

 Institute of Plasma Physics, NSC KIPT, 61-108 Kharkov, Ukraine, Tel.: +380 57 335 6122, Fax: +380 57 335 2664 
 National Centre for Nuclear Research (NCBJ), 7 Andrzeja Soltana Str., 05-400 Otwock/Swierk, Poland 
 National Centre for Nuclear Research (NCBJ), 7 Andrzeja Soltana Str., 05-400 Otwock/Swierk, Poland and Institute of Plasma Physics and Laser Microfusion (IPPLM), 23 Hery Str., 01-497 Warsaw, Poland 
 Institute of Plasma Physics and Laser Microfusion (IPPLM), 23 Hery Str., 01-497 Warsaw, Poland 
 Institute of Plasma Physics and Laser Microfusion (IPPLM), 23 Hery Str., 01-497 Warsaw, Poland and A. A. Baikov Institute of Metallurgy and Material Science, 119991 Moscow, Russia 
Pages
293-296
Publication year
2015
Publication date
2015
Publisher
De Gruyter Poland
ISSN
00295922
e-ISSN
15085791
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
3157335295
Copyright
© 2015. This work is published under http://creativecommons.org/licenses/by-nc-nd/3.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.