Investigation on dry sliding wear behavior of Mg/BN nanocomposites

The present research objective is to investigate the effect of boron nitride nanoparticles reinforcement on dry sliding wear behavior of pure Magnesium and magnesium nanocomposites. The fabricated nanocomposites contains varied percentages of boron nitride such as 0% (pure Mg), 0.5%, 1.5% and 2.5% w...

Full description

Bibliographic Details
Main Authors: R. Vara Prasad Kaviti, D. Jeyasimman, Gururaj Parande, Manoj Gupta, R. Narayanasamy
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2018-09-01
Series:Journal of Magnesium and Alloys
Online Access:http://www.sciencedirect.com/science/article/pii/S221395671830032X
id doaj-31e9158066ce47a39bf38232c0f5d257
record_format Article
spelling doaj-31e9158066ce47a39bf38232c0f5d2572021-03-02T06:50:36ZengKeAi Communications Co., Ltd.Journal of Magnesium and Alloys2213-95672018-09-0163263276Investigation on dry sliding wear behavior of Mg/BN nanocompositesR. Vara Prasad Kaviti0D. Jeyasimman1Gururaj Parande2Manoj Gupta3R. Narayanasamy4Department of Mechanical Engineering, Periyar Maniammai Institute of Science & Technology, Thanjavur 613403, Tamil Nadu, IndiaDepartment of Mechanical Engineering, Periyar Maniammai Institute of Science & Technology, Thanjavur 613403, Tamil Nadu, India; Corresponding author.Department of Mechanical Engineering, National Institute of Singapore, 9 Engineering drive, Singapore 117576, SingaporeDepartment of Mechanical Engineering, National Institute of Singapore, 9 Engineering drive, Singapore 117576, SingaporeDepartment of Production Engineering, National Institute of Technology, Tiruchirappalli 620015, Tamil Nadu, IndiaThe present research objective is to investigate the effect of boron nitride nanoparticles reinforcement on dry sliding wear behavior of pure Magnesium and magnesium nanocomposites. The fabricated nanocomposites contains varied percentages of boron nitride such as 0% (pure Mg), 0.5%, 1.5% and 2.5% were synthesized by using powder metallurgy technique and followed by a hot working process called hot extrusion. The pin on disk equipment was used for conducting the wear tests for traditional loads of 5 N, 7 N and 10 N at different sliding speeds of 0.6, 0.9 and 1.2 m/s against the steel disk at room temperature. For all traditional loads and sliding speeds, the changes in wear rate and friction co-efficient (µ) with respect to sliding distances were observed and analyzed. The wear characteristics are observed with the help of scanning electron microscopy under given test conditions. To investigate dominant wear mechanisms for various test conditions, the morphologies of all worn composites surfaces were analyzed. Final results show that, for all nanocomposites the wear level raises with respect to the sliding speeds and loads. Magnesium reinforced with 0.5% boron nitride shows lower wear rates and low friction coefficient values compare with magnesium reinforced with 1.5% boron nitride and 2.5% boron nitride nanocomposites. Keywords: Metal matrix composites, Wear, Friction coefficient, Wear mechanismshttp://www.sciencedirect.com/science/article/pii/S221395671830032X
collection DOAJ
language English
format Article
sources DOAJ
author R. Vara Prasad Kaviti
D. Jeyasimman
Gururaj Parande
Manoj Gupta
R. Narayanasamy
spellingShingle R. Vara Prasad Kaviti
D. Jeyasimman
Gururaj Parande
Manoj Gupta
R. Narayanasamy
Investigation on dry sliding wear behavior of Mg/BN nanocomposites
Journal of Magnesium and Alloys
author_facet R. Vara Prasad Kaviti
D. Jeyasimman
Gururaj Parande
Manoj Gupta
R. Narayanasamy
author_sort R. Vara Prasad Kaviti
title Investigation on dry sliding wear behavior of Mg/BN nanocomposites
title_short Investigation on dry sliding wear behavior of Mg/BN nanocomposites
title_full Investigation on dry sliding wear behavior of Mg/BN nanocomposites
title_fullStr Investigation on dry sliding wear behavior of Mg/BN nanocomposites
title_full_unstemmed Investigation on dry sliding wear behavior of Mg/BN nanocomposites
title_sort investigation on dry sliding wear behavior of mg/bn nanocomposites
publisher KeAi Communications Co., Ltd.
series Journal of Magnesium and Alloys
issn 2213-9567
publishDate 2018-09-01
description The present research objective is to investigate the effect of boron nitride nanoparticles reinforcement on dry sliding wear behavior of pure Magnesium and magnesium nanocomposites. The fabricated nanocomposites contains varied percentages of boron nitride such as 0% (pure Mg), 0.5%, 1.5% and 2.5% were synthesized by using powder metallurgy technique and followed by a hot working process called hot extrusion. The pin on disk equipment was used for conducting the wear tests for traditional loads of 5 N, 7 N and 10 N at different sliding speeds of 0.6, 0.9 and 1.2 m/s against the steel disk at room temperature. For all traditional loads and sliding speeds, the changes in wear rate and friction co-efficient (µ) with respect to sliding distances were observed and analyzed. The wear characteristics are observed with the help of scanning electron microscopy under given test conditions. To investigate dominant wear mechanisms for various test conditions, the morphologies of all worn composites surfaces were analyzed. Final results show that, for all nanocomposites the wear level raises with respect to the sliding speeds and loads. Magnesium reinforced with 0.5% boron nitride shows lower wear rates and low friction coefficient values compare with magnesium reinforced with 1.5% boron nitride and 2.5% boron nitride nanocomposites. Keywords: Metal matrix composites, Wear, Friction coefficient, Wear mechanisms
url http://www.sciencedirect.com/science/article/pii/S221395671830032X
work_keys_str_mv AT rvaraprasadkaviti investigationondryslidingwearbehaviorofmgbnnanocomposites
AT djeyasimman investigationondryslidingwearbehaviorofmgbnnanocomposites
AT gururajparande investigationondryslidingwearbehaviorofmgbnnanocomposites
AT manojgupta investigationondryslidingwearbehaviorofmgbnnanocomposites
AT rnarayanasamy investigationondryslidingwearbehaviorofmgbnnanocomposites
_version_ 1724241857921155072