Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel

Laser hardfacing were produced using a high power Disk laser of 4 kW maximum power as a heat source to melt and bond the Colmonoy-5 powder on to AISI 316 LN stainless steel substrate. Significant difference in melting points between the austenitic stainless steel (ASS) substrate and Ni-based Colmono...

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Main Authors: Gnanasekaran S., Padmanaban G., Balasubramanian V., Kumar Hemant, Albert Shaju K.
Format: Article
Language:English
Published: De Gruyter 2019-02-01
Series:High Temperature Materials and Processes
Subjects:
Online Access:https://doi.org/10.1515/htmp-2017-0176
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spelling doaj-921215a2b52c4787bf8ac85367c5ecfe2021-09-06T19:19:57ZengDe GruyterHigh Temperature Materials and Processes0334-64552191-03242019-02-01382019162910.1515/htmp-2017-0176Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless SteelGnanasekaran S.0Padmanaban G.1Balasubramanian V.2Kumar Hemant3Albert Shaju K.4Centre for Materials Joining & Research (CEMAJOR), Department of Manufacturing Engineering, Annamalai University, Annamalainagar, Tamil Nadu608002, IndiaCentre for Materials Joining & Research (CEMAJOR), Department of Manufacturing Engineering, Annamalai University, Annamalainagar, Tamil Nadu608002, IndiaCentre for Materials Joining & Research (CEMAJOR), Department of Manufacturing Engineering, Annamalai University, Annamalainagar, Tamil Nadu608002, IndiaMaterials Technology Division, Indira Gandhi Centre for Atomic Research (IGCAR), Kalpakkam603102, Tamil Nadu, IndiaMaterials Engineering Group (MEG), Indira Gandhi Centre for Atomic Research (IGCAR), Kalpakkam, Tamil Nadu603102, IndiaLaser hardfacing were produced using a high power Disk laser of 4 kW maximum power as a heat source to melt and bond the Colmonoy-5 powder on to AISI 316 LN stainless steel substrate. Significant difference in melting points between the austenitic stainless steel (ASS) substrate and Ni-based Colmonoy alloy results in substantial dilution of the hardfaced deposit from the substrate. In this present study, the effect of travel speed (TS) on microstructure, microhardness and wear characteristics laser hardfaced deposits were investigated. The phase constitution, microstructure and hardness of laser hardfaced deposits were examined by optical microscope, scanning electron microscope, energy dispersion spectroscopy, x-ray diffraction and Vickers hardness tester. The TS was varied between 300 and 500 mm/min. The other parameters such as, laser power, powder feed rate, and defocusing distance were kept constant. From this investigation, it is found that the deposit hardness increased from 750 HV to 800 HV with decreasing in TS. The TS increases, bead height decreased and dilution and depth of penetration increased. Due to higher TS the faster cooling rate takes place, it causes the cracking and porosity. Microhardness and wear resistance are slightly improved in the TS of 400 mm/min. The microstructures of deposit layer are composed of Ni-rich carbide, boride and silicide, this are the responsible for higher hardness and better wear resistance.https://doi.org/10.1515/htmp-2017-0176laser hardfacingaustenitic stainless steelnickel based powdertravel speedmicrostructurewear
collection DOAJ
language English
format Article
sources DOAJ
author Gnanasekaran S.
Padmanaban G.
Balasubramanian V.
Kumar Hemant
Albert Shaju K.
spellingShingle Gnanasekaran S.
Padmanaban G.
Balasubramanian V.
Kumar Hemant
Albert Shaju K.
Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel
High Temperature Materials and Processes
laser hardfacing
austenitic stainless steel
nickel based powder
travel speed
microstructure
wear
author_facet Gnanasekaran S.
Padmanaban G.
Balasubramanian V.
Kumar Hemant
Albert Shaju K.
author_sort Gnanasekaran S.
title Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel
title_short Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel
title_full Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel
title_fullStr Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel
title_full_unstemmed Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel
title_sort correlation between travel speed, microstructure, mechanical properties and wear characteristics of ni-based hardfaced deposits over 316ln austenitic stainless steel
publisher De Gruyter
series High Temperature Materials and Processes
issn 0334-6455
2191-0324
publishDate 2019-02-01
description Laser hardfacing were produced using a high power Disk laser of 4 kW maximum power as a heat source to melt and bond the Colmonoy-5 powder on to AISI 316 LN stainless steel substrate. Significant difference in melting points between the austenitic stainless steel (ASS) substrate and Ni-based Colmonoy alloy results in substantial dilution of the hardfaced deposit from the substrate. In this present study, the effect of travel speed (TS) on microstructure, microhardness and wear characteristics laser hardfaced deposits were investigated. The phase constitution, microstructure and hardness of laser hardfaced deposits were examined by optical microscope, scanning electron microscope, energy dispersion spectroscopy, x-ray diffraction and Vickers hardness tester. The TS was varied between 300 and 500 mm/min. The other parameters such as, laser power, powder feed rate, and defocusing distance were kept constant. From this investigation, it is found that the deposit hardness increased from 750 HV to 800 HV with decreasing in TS. The TS increases, bead height decreased and dilution and depth of penetration increased. Due to higher TS the faster cooling rate takes place, it causes the cracking and porosity. Microhardness and wear resistance are slightly improved in the TS of 400 mm/min. The microstructures of deposit layer are composed of Ni-rich carbide, boride and silicide, this are the responsible for higher hardness and better wear resistance.
topic laser hardfacing
austenitic stainless steel
nickel based powder
travel speed
microstructure
wear
url https://doi.org/10.1515/htmp-2017-0176
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