TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization

The multiphase composite layers have been developed in thick surface on low alloy steel by preplacing TiC/hBN hybrid ceramic particles into a shallow melt pool produced on a moving sample using traditional TIG torch melting technique (known as surfacing). Surface layers ranging in thickness from 0....

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Main Author: Maleque, Md. Abdul
Format: Conference or Workshop Item
Language:English
Published: 2017
Subjects:
Online Access:http://irep.iium.edu.my/58800/
http://irep.iium.edu.my/58800/1/Brochure_paper_invitation_%20program.pdf
id iium-58800
recordtype eprints
spelling iium-588002017-10-27T01:24:26Z http://irep.iium.edu.my/58800/ TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization Maleque, Md. Abdul T11.95 Industrial directories TA401 Materials of engineering and construction TN600 Metallurgy TN799.5 Nonmetallic minerals TS200 Metal manufactures. Metalworking The multiphase composite layers have been developed in thick surface on low alloy steel by preplacing TiC/hBN hybrid ceramic particles into a shallow melt pool produced on a moving sample using traditional TIG torch melting technique (known as surfacing). Surface layers ranging in thickness from 0.05 to 1.0 mm are formed, the thickness being determined by the process variables of heat input, particles feed rate and gas flow rate. Typical operating conditions employ TIG input energies, preplaced particle amount, gas flow rate and working distance. The hybrid composite layer was investigated by a diversity of techniques, including scanning electron microscopy (SEM), energy-dispersive spectroscopy (EDS) and microhardness testing. This paper discusses the types of surface morphology or multiphase structures which have been produced by preplacing ceramic particles on the substrate of low alloy steels and TIG melting/particle injection process and considers the effect upon these structures developed by different processing parameters which in turn change the mode of dissolution or particle reeling. Special consideration is given to the degree of hardness development on the hybrid particulate composite (TiC/hBN and TiC/Ni-P-hBN) surface layer after re-solidification via TIG torch melting technique. . 2017-10 Conference or Workshop Item PeerReviewed application/pdf en http://irep.iium.edu.my/58800/1/Brochure_paper_invitation_%20program.pdf Maleque, Md. Abdul (2017) TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization. In: 1st International Workshop on Multifunctional Materials (IW2M-2017), 10th-12th October 2017, Mostaganem, Algeria. (Unpublished)
repository_type Digital Repository
institution_category Local University
institution International Islamic University Malaysia
building IIUM Repository
collection Online Access
language English
topic T11.95 Industrial directories
TA401 Materials of engineering and construction
TN600 Metallurgy
TN799.5 Nonmetallic minerals
TS200 Metal manufactures. Metalworking
spellingShingle T11.95 Industrial directories
TA401 Materials of engineering and construction
TN600 Metallurgy
TN799.5 Nonmetallic minerals
TS200 Metal manufactures. Metalworking
Maleque, Md. Abdul
TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization
description The multiphase composite layers have been developed in thick surface on low alloy steel by preplacing TiC/hBN hybrid ceramic particles into a shallow melt pool produced on a moving sample using traditional TIG torch melting technique (known as surfacing). Surface layers ranging in thickness from 0.05 to 1.0 mm are formed, the thickness being determined by the process variables of heat input, particles feed rate and gas flow rate. Typical operating conditions employ TIG input energies, preplaced particle amount, gas flow rate and working distance. The hybrid composite layer was investigated by a diversity of techniques, including scanning electron microscopy (SEM), energy-dispersive spectroscopy (EDS) and microhardness testing. This paper discusses the types of surface morphology or multiphase structures which have been produced by preplacing ceramic particles on the substrate of low alloy steels and TIG melting/particle injection process and considers the effect upon these structures developed by different processing parameters which in turn change the mode of dissolution or particle reeling. Special consideration is given to the degree of hardness development on the hybrid particulate composite (TiC/hBN and TiC/Ni-P-hBN) surface layer after re-solidification via TIG torch melting technique. .
format Conference or Workshop Item
author Maleque, Md. Abdul
author_facet Maleque, Md. Abdul
author_sort Maleque, Md. Abdul
title TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization
title_short TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization
title_full TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization
title_fullStr TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization
title_full_unstemmed TIG torch surfacing of nano-particulate hybrid composite layer: development and characterization
title_sort tig torch surfacing of nano-particulate hybrid composite layer: development and characterization
publishDate 2017
url http://irep.iium.edu.my/58800/
http://irep.iium.edu.my/58800/1/Brochure_paper_invitation_%20program.pdf
first_indexed 2023-09-18T21:23:12Z
last_indexed 2023-09-18T21:23:12Z
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