Investigation of Micro Hardness, Cooling Rate and Microstructure of ATIG Welded samples of Al-SiC composite

Activated TIG welding has been performed on Al – 8% SiC composite 5mm plate with various fluxes such as Al2O3, MnO2, CaO, MgO, SiO2 & TiO2, to study & analyze the Microstructure, Micro hardness and cooling rate. Correlation study between micro hardness, microstructure and cooling rate for Co...

Full description

Bibliographic Details
Main Authors: Pichumani Sivachidambaram, Srinivasan Raghuraman, Ramamoorthi Venkatraman
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201815101002
_version_ 1818615734810443776
author Pichumani Sivachidambaram
Srinivasan Raghuraman
Ramamoorthi Venkatraman
author_facet Pichumani Sivachidambaram
Srinivasan Raghuraman
Ramamoorthi Venkatraman
author_sort Pichumani Sivachidambaram
collection DOAJ
description Activated TIG welding has been performed on Al – 8% SiC composite 5mm plate with various fluxes such as Al2O3, MnO2, CaO, MgO, SiO2 & TiO2, to study & analyze the Microstructure, Micro hardness and cooling rate. Correlation study between micro hardness, microstructure and cooling rate for Constant Current TIG welding and Activated TIG welding on Al-SiC composite are also carried out to analyze the relation between the effect of cooling rate on microstructure & the effect of microstructure on micro hardness. The experimental results of ATIG welding on Al-SiC composite shows fine grain weld microstructure on ATIG – SiO2 & ATIG – TiO2, which results in higher micro hardness. Micro hardness values are taken in different locations of weld surface at 1mm, 2mm & 3mm below the weld surface and the same is also observed along the weld zone to heat affected zone upto 12mm for the center of the weldment. Minimum micro hardness values found in ATIG – MnO2, ATIG – CaO & ATIG – MgO are due to intermediate micro structure between coarse and fine in heat affected zone. ATIG – Al2O3 weld zone & heat affected zone and heat affected zone of ATIG – MnO2, ATIG – CaO & ATIG – MgO shows coarse microstructure leading to reduction in micro hardness value. Cooling rate for the different CCTIG & ATIG welding are recorded and correlation between the micro structures are studied. Coarse micro structure in weld zone and heat affected zone have least cooling rate whereas fine micro structure in weld zone resulted at higher cooling rate. Heat affected zone strongly depends on temperature gradient between the weld center and weldment’s heat affected zone.
first_indexed 2024-12-16T16:38:37Z
format Article
id doaj.art-e65599e103a44e71b61c1597ed2702dd
institution Directory Open Access Journal
issn 2261-236X
language English
last_indexed 2024-12-16T16:38:37Z
publishDate 2018-01-01
publisher EDP Sciences
record_format Article
series MATEC Web of Conferences
spelling doaj.art-e65599e103a44e71b61c1597ed2702dd2022-12-21T22:24:24ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011510100210.1051/matecconf/201815101002matecconf_acmae2018_01002Investigation of Micro Hardness, Cooling Rate and Microstructure of ATIG Welded samples of Al-SiC compositePichumani SivachidambaramSrinivasan RaghuramanRamamoorthi VenkatramanActivated TIG welding has been performed on Al – 8% SiC composite 5mm plate with various fluxes such as Al2O3, MnO2, CaO, MgO, SiO2 & TiO2, to study & analyze the Microstructure, Micro hardness and cooling rate. Correlation study between micro hardness, microstructure and cooling rate for Constant Current TIG welding and Activated TIG welding on Al-SiC composite are also carried out to analyze the relation between the effect of cooling rate on microstructure & the effect of microstructure on micro hardness. The experimental results of ATIG welding on Al-SiC composite shows fine grain weld microstructure on ATIG – SiO2 & ATIG – TiO2, which results in higher micro hardness. Micro hardness values are taken in different locations of weld surface at 1mm, 2mm & 3mm below the weld surface and the same is also observed along the weld zone to heat affected zone upto 12mm for the center of the weldment. Minimum micro hardness values found in ATIG – MnO2, ATIG – CaO & ATIG – MgO are due to intermediate micro structure between coarse and fine in heat affected zone. ATIG – Al2O3 weld zone & heat affected zone and heat affected zone of ATIG – MnO2, ATIG – CaO & ATIG – MgO shows coarse microstructure leading to reduction in micro hardness value. Cooling rate for the different CCTIG & ATIG welding are recorded and correlation between the micro structures are studied. Coarse micro structure in weld zone and heat affected zone have least cooling rate whereas fine micro structure in weld zone resulted at higher cooling rate. Heat affected zone strongly depends on temperature gradient between the weld center and weldment’s heat affected zone.https://doi.org/10.1051/matecconf/201815101002
spellingShingle Pichumani Sivachidambaram
Srinivasan Raghuraman
Ramamoorthi Venkatraman
Investigation of Micro Hardness, Cooling Rate and Microstructure of ATIG Welded samples of Al-SiC composite
MATEC Web of Conferences
title Investigation of Micro Hardness, Cooling Rate and Microstructure of ATIG Welded samples of Al-SiC composite
title_full Investigation of Micro Hardness, Cooling Rate and Microstructure of ATIG Welded samples of Al-SiC composite
title_fullStr Investigation of Micro Hardness, Cooling Rate and Microstructure of ATIG Welded samples of Al-SiC composite
title_full_unstemmed Investigation of Micro Hardness, Cooling Rate and Microstructure of ATIG Welded samples of Al-SiC composite
title_short Investigation of Micro Hardness, Cooling Rate and Microstructure of ATIG Welded samples of Al-SiC composite
title_sort investigation of micro hardness cooling rate and microstructure of atig welded samples of al sic composite
url https://doi.org/10.1051/matecconf/201815101002
work_keys_str_mv AT pichumanisivachidambaram investigationofmicrohardnesscoolingrateandmicrostructureofatigweldedsamplesofalsiccomposite
AT srinivasanraghuraman investigationofmicrohardnesscoolingrateandmicrostructureofatigweldedsamplesofalsiccomposite
AT ramamoorthivenkatraman investigationofmicrohardnesscoolingrateandmicrostructureofatigweldedsamplesofalsiccomposite