Improved gas metal arc welding multi-physics process model and its application to MIL A46100 armor-grade steel butt-welds. Issue 2 (5th August 2014)
- Record Type:
- Journal Article
- Title:
- Improved gas metal arc welding multi-physics process model and its application to MIL A46100 armor-grade steel butt-welds. Issue 2 (5th August 2014)
- Main Title:
- Improved gas metal arc welding multi-physics process model and its application to MIL A46100 armor-grade steel butt-welds
- Authors:
- Grujicic, M.
Snipes, J.S.
Galgalikar, R.
Ramaswami, S.
Yavari, R.
Yen, C.-F.
Cheeseman, B.A.
Montgomery, J.S. - Abstract:
- <abstract> <title> <x content-type="archive" xml:space="preserve">Abstract</x> </title> <sec> <title content-type="abstract-heading">Purpose</title> <p> – The purpose of this paper is to develop multi-physics computational model for the conventional gas metal arc welding (GMAW) joining process has been improved with respect to its predictive capabilities regarding the spatial distribution of the mechanical properties (strength, in particular) within the weld. </p> </sec> <sec> <title content-type="abstract-heading">Design/methodology/approach</title> <p> – The improved GMAW process model is next applied to the case of butt-welding of MIL A46100 (a prototypical high-hardness armor-grade martensitic steel) workpieces using filler-metal electrodes made of the same material. A critical assessment is conducted of the basic foundation of the model, including its five modules, each dedicated to handling a specific aspect of the GMAW process, i.e.: first, electro-dynamics of the welding-gun; second, radiation/convection controlled heat transfer from the electric arc to the workpiece and mass transfer from the filler-metal consumable electrode to the weld; third, prediction of the temporal evolution and the spatial distribution of thermal and mechanical fields within the weld region during the GMAW joining process; fourth, the resulting temporal evolution and spatial distribution of the material microstructure throughout the weld region; and fifth, spatial distribution of the<abstract> <title> <x content-type="archive" xml:space="preserve">Abstract</x> </title> <sec> <title content-type="abstract-heading">Purpose</title> <p> – The purpose of this paper is to develop multi-physics computational model for the conventional gas metal arc welding (GMAW) joining process has been improved with respect to its predictive capabilities regarding the spatial distribution of the mechanical properties (strength, in particular) within the weld. </p> </sec> <sec> <title content-type="abstract-heading">Design/methodology/approach</title> <p> – The improved GMAW process model is next applied to the case of butt-welding of MIL A46100 (a prototypical high-hardness armor-grade martensitic steel) workpieces using filler-metal electrodes made of the same material. A critical assessment is conducted of the basic foundation of the model, including its five modules, each dedicated to handling a specific aspect of the GMAW process, i.e.: first, electro-dynamics of the welding-gun; second, radiation/convection controlled heat transfer from the electric arc to the workpiece and mass transfer from the filler-metal consumable electrode to the weld; third, prediction of the temporal evolution and the spatial distribution of thermal and mechanical fields within the weld region during the GMAW joining process; fourth, the resulting temporal evolution and spatial distribution of the material microstructure throughout the weld region; and fifth, spatial distribution of the as-welded material mechanical properties. </p> </sec> <sec> <title content-type="abstract-heading">Findings</title> <p> – The predictions of the improved GMAW process model pertaining to the spatial distribution of the material microstructure and properties within the MIL A46100 butt-weld are found to be consistent with general expectations and prior observations. </p> </sec> <sec> <title content-type="abstract-heading">Originality/value</title> <p> – To explain microstructure/property relationships within different portions of the weld, advanced physical-metallurgy concepts and principles are identified, and their governing equations parameterized and applied within a post-processing data-reduction procedure.</p> </sec> </abstract> … (more)
- Is Part Of:
- Multidiscipline modeling in materials and structures. Volume 10:Issue 2(2014)
- Journal:
- Multidiscipline modeling in materials and structures
- Issue:
- Volume 10:Issue 2(2014)
- Issue Display:
- Volume 10, Issue 2 (2014)
- Year:
- 2014
- Volume:
- 10
- Issue:
- 2
- Issue Sort Value:
- 2014-0010-0002-0000
- Page Start:
- 176
- Page End:
- 210
- Publication Date:
- 2014-08-05
- Subjects:
- Materials -- Mathematical models -- Periodicals
Engineering -- Mathematical models -- Periodicals
620.11015118 - Journal URLs:
- http://firstsearch.oclc.org ↗
http://www.emeraldinsight.com/journals.htm?issn=1573-6105 ↗
http://www.ingentaconnect.com/content/vsp/mmms ↗
http://www.swetswise.com/link/access%5Fdb?issn=1573-6105 ↗
http://www.emeraldinsight.com/ ↗ - DOI:
- 10.1108/MMMS-05-2013-0038 ↗
- Languages:
- English
- ISSNs:
- 1573-6105
- Deposit Type:
- Legaldeposit
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- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 3376.xml