The Use of Compressed Air for Micro-Jet Cooling After MIG Welding
The material selected for this investigation was low alloy steel weld metal deposit (WMD) after MIG welding with micro-jet cooling. The present investigation was aimed as the following tasks: obtained WMD with various amount of acicular ferrite and further analyze impact toughness of WMD in terms of...
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Polish Academy of Sciences
2016-09-01
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doaj-f6e9c65404174ec298815fe42f0f627c2020-11-25T03:51:47ZengPolish Academy of SciencesArchives of Metallurgy and Materials2300-19092016-09-016131405140810.1515/amm-2016-0230amm-2016-0230The Use of Compressed Air for Micro-Jet Cooling After MIG WeldingHadryś D.0Węgrzyn T.1Piwnik J.2Stanik Z.3Tarasiuk W.4 University of Occupational Safety Management in Katowice, 8 Bankowa Str., 40-007 Katowice, Poland Silesian University of Technology, 8 Krasinskiego Str., 40-019 Katowice, Poland Bialystok University of Technology, 45C Wiejska Str., 15-351 Bialystok, Poland Silesian University of Technology, 8 Krasinskiego Str., 40-019 Katowice, Poland Bialystok University of Technology, 45C Wiejska Str., 15-351 Bialystok, PolandThe material selected for this investigation was low alloy steel weld metal deposit (WMD) after MIG welding with micro-jet cooling. The present investigation was aimed as the following tasks: obtained WMD with various amount of acicular ferrite and further analyze impact toughness of WMD in terms of acicular ferrite amount in it. Weld metal deposit (WMD) was first time carried out for MIG welding with micro-jet cooling of compressed air and gas mixture of argon and air. Until that moment only argon, helium and nitrogen were tested as micro-jet gases for MIG/MAG processes. An important role in the interpretation of the results can give methods of artificial intelligence.http://www.degruyter.com/view/j/amm.2016.61.issue-3/amm-2016-0230/amm-2016-0230.xml?format=INTMIGweldingmicro-jetnitrogen and oxygen in WMDacicular ferriteimpact toughnesscompressed air |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Hadryś D. Węgrzyn T. Piwnik J. Stanik Z. Tarasiuk W. |
spellingShingle |
Hadryś D. Węgrzyn T. Piwnik J. Stanik Z. Tarasiuk W. The Use of Compressed Air for Micro-Jet Cooling After MIG Welding Archives of Metallurgy and Materials MIG welding micro-jet nitrogen and oxygen in WMD acicular ferrite impact toughness compressed air |
author_facet |
Hadryś D. Węgrzyn T. Piwnik J. Stanik Z. Tarasiuk W. |
author_sort |
Hadryś D. |
title |
The Use of Compressed Air for Micro-Jet Cooling After MIG Welding |
title_short |
The Use of Compressed Air for Micro-Jet Cooling After MIG Welding |
title_full |
The Use of Compressed Air for Micro-Jet Cooling After MIG Welding |
title_fullStr |
The Use of Compressed Air for Micro-Jet Cooling After MIG Welding |
title_full_unstemmed |
The Use of Compressed Air for Micro-Jet Cooling After MIG Welding |
title_sort |
use of compressed air for micro-jet cooling after mig welding |
publisher |
Polish Academy of Sciences |
series |
Archives of Metallurgy and Materials |
issn |
2300-1909 |
publishDate |
2016-09-01 |
description |
The material selected for this investigation was low alloy steel weld metal deposit (WMD) after MIG welding with micro-jet cooling. The present investigation was aimed as the following tasks: obtained WMD with various amount of acicular ferrite and further analyze impact toughness of WMD in terms of acicular ferrite amount in it. Weld metal deposit (WMD) was first time carried out for MIG welding with micro-jet cooling of compressed air and gas mixture of argon and air. Until that moment only argon, helium and nitrogen were tested as micro-jet gases for MIG/MAG processes. An important role in the interpretation of the results can give methods of artificial intelligence. |
topic |
MIG welding micro-jet nitrogen and oxygen in WMD acicular ferrite impact toughness compressed air |
url |
http://www.degruyter.com/view/j/amm.2016.61.issue-3/amm-2016-0230/amm-2016-0230.xml?format=INT |
work_keys_str_mv |
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