Formation of Hard Composite Layer on Tool Steel by Laser Alloying

Investigations include alloying the PMHSS6-5-3 steel surface layer with carbide and ceramic powders WC, VC, TiC, SiC, Si3N4 and Al2O3, using the high power diode laser (HPDL). Laser treatment is especially promising for solving contemporary surface engineering problems making it possible to focus pr...

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Main Author: Bonek M.
Format: Article
Language:English
Published: Polish Academy of Sciences 2016-06-01
Series:Archives of Metallurgy and Materials
Subjects:
Online Access:http://www.degruyter.com/view/j/amm.2016.61.issue-2/amm-2016-0123/amm-2016-0123.xml?format=INT
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spelling doaj-8e133ec672f1465eae995561a8753be12020-11-25T03:17:48ZengPolish Academy of SciencesArchives of Metallurgy and Materials2300-19092016-06-0161271972410.1515/amm-2016-0123amm-2016-0123Formation of Hard Composite Layer on Tool Steel by Laser AlloyingBonek M.0SILESIAN UNIVERSITY OF TECHNOLOGY, INSTITUTE OF ENGINEERING MATERIALS AND BIOMATERIALS, FACULTY OF MECHANICAL ENGINEERING, 18A KONARSKIEGO STR., 44-100 GLIWICE, POLANDInvestigations include alloying the PMHSS6-5-3 steel surface layer with carbide and ceramic powders WC, VC, TiC, SiC, Si3N4 and Al2O3, using the high power diode laser (HPDL). Laser treatment is especially promising for solving contemporary surface engineering problems making it possible to focus precisely the delivered energy in the form of heat in the surface layer. The structural mechanism was determined of surface layers development, effect was studied of alloying parameters, method on structure refinement and influence of these factors on the mechanical properties of surface layer, and especially on its abrasive wear resistance. The fine grained martensite structure is responsible for hardness increase of the alloyed layer. The tribological wear relationships were determined for laser treated surface layers, determining friction coefficient, and wear trace shape developed due to the abrasive wear of the investigated surfaces. Comparison of the laser treatment parameters and tribological properties of surface layer after remelting and alloying with hard particles of the PMHSS6-5-3 steel using the high power diode laser to obtain the optimum service properties is the outcome of the investigations carried out.http://www.degruyter.com/view/j/amm.2016.61.issue-2/amm-2016-0123/amm-2016-0123.xml?format=INTtool materialssurface treatmentlasertribology
collection DOAJ
language English
format Article
sources DOAJ
author Bonek M.
spellingShingle Bonek M.
Formation of Hard Composite Layer on Tool Steel by Laser Alloying
Archives of Metallurgy and Materials
tool materials
surface treatment
laser
tribology
author_facet Bonek M.
author_sort Bonek M.
title Formation of Hard Composite Layer on Tool Steel by Laser Alloying
title_short Formation of Hard Composite Layer on Tool Steel by Laser Alloying
title_full Formation of Hard Composite Layer on Tool Steel by Laser Alloying
title_fullStr Formation of Hard Composite Layer on Tool Steel by Laser Alloying
title_full_unstemmed Formation of Hard Composite Layer on Tool Steel by Laser Alloying
title_sort formation of hard composite layer on tool steel by laser alloying
publisher Polish Academy of Sciences
series Archives of Metallurgy and Materials
issn 2300-1909
publishDate 2016-06-01
description Investigations include alloying the PMHSS6-5-3 steel surface layer with carbide and ceramic powders WC, VC, TiC, SiC, Si3N4 and Al2O3, using the high power diode laser (HPDL). Laser treatment is especially promising for solving contemporary surface engineering problems making it possible to focus precisely the delivered energy in the form of heat in the surface layer. The structural mechanism was determined of surface layers development, effect was studied of alloying parameters, method on structure refinement and influence of these factors on the mechanical properties of surface layer, and especially on its abrasive wear resistance. The fine grained martensite structure is responsible for hardness increase of the alloyed layer. The tribological wear relationships were determined for laser treated surface layers, determining friction coefficient, and wear trace shape developed due to the abrasive wear of the investigated surfaces. Comparison of the laser treatment parameters and tribological properties of surface layer after remelting and alloying with hard particles of the PMHSS6-5-3 steel using the high power diode laser to obtain the optimum service properties is the outcome of the investigations carried out.
topic tool materials
surface treatment
laser
tribology
url http://www.degruyter.com/view/j/amm.2016.61.issue-2/amm-2016-0123/amm-2016-0123.xml?format=INT
work_keys_str_mv AT bonekm formationofhardcompositelayerontoolsteelbylaseralloying
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