Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating

- Corrosion is a natural process that occurs when refined metal is converted into a more stable form, such as oxide, hydroxide, or sulfide. Wear is the failure of a surface due to dynamic contact between two surfaces. In offshore operations and environments, corrosion and wear are major problems due...

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Published in:JOURNAL OF MECHANICAL ENGINEERING AND SCIENCES
Main Authors: Yussoff, N. S.; Roseley, N. R. N.; Saad, N. H.; Bushroa, A. R.; Katiyar, J. K.
Format: Article
Language:English
Published: UNIV MALAYSIA PAHANG 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001207222800008
author Yussoff
N. S.; Roseley
N. R. N.; Saad
N. H.; Bushroa
A. R.; Katiyar, J. K.
spellingShingle Yussoff
N. S.; Roseley
N. R. N.; Saad
N. H.; Bushroa
A. R.; Katiyar, J. K.
Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating
Engineering
author_facet Yussoff
N. S.; Roseley
N. R. N.; Saad
N. H.; Bushroa
A. R.; Katiyar, J. K.
author_sort Yussoff
spelling Yussoff, N. S.; Roseley, N. R. N.; Saad, N. H.; Bushroa, A. R.; Katiyar, J. K.
Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating
JOURNAL OF MECHANICAL ENGINEERING AND SCIENCES
English
Article
- Corrosion is a natural process that occurs when refined metal is converted into a more stable form, such as oxide, hydroxide, or sulfide. Wear is the failure of a surface due to dynamic contact between two surfaces. In offshore operations and environments, corrosion and wear are major problems due to the presence of corrosive and abrasive elements. The coating is a common surface protection method that enhances corrosion resistance and prolongs lifespan. In this work, a Ni-Graphene nanocomposite coating was fabricated using the electrodeposition method. This work aimed to fabricate a Ni-GO nanocomposite coating on mild steel with different surface roughness, to characterize the physical, mechanical, and chemical properties of the coating, and to investigate its corrosion and wear rate. The fabrication process involved preparing substrates coated with Ni-GO nanocomposite through a 45 -minute constant current electrodeposition process. The coated specimens were characterized using X-ray diffraction machine, scanning electron microscope, Alicona infinite focus, vicker's hardness test, raman spectroscopy, and adhesion test. The corrosion and wear rate of the coatings were investigated using a slurry erosion tester and salt water spray, respectively. The results showed that the Ni-GO nanocomposite coating on a smooth surface roughness substrate achieved the highest microhardness, wear resistance, and corrosion resistance, with values of 468.8 HV, 0.182 % weight loss, and 0.03 % weight gain, respectively. This indicates that the specimen coated with a smooth surface roughness substrate provided better coating performance than the rough and medium surface roughness substrates.
UNIV MALAYSIA PAHANG
2289-4659
2231-8380
2024
18
1
10.15282/jmes.18.1.2024.8.0783
Engineering
gold
WOS:001207222800008
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001207222800008
title Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating
title_short Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating
title_full Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating
title_fullStr Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating
title_full_unstemmed Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating
title_sort Effect of substrate's surface roughness on corrosion and wear rate of Ni-GO nanocomposite coating
container_title JOURNAL OF MECHANICAL ENGINEERING AND SCIENCES
language English
format Article
description - Corrosion is a natural process that occurs when refined metal is converted into a more stable form, such as oxide, hydroxide, or sulfide. Wear is the failure of a surface due to dynamic contact between two surfaces. In offshore operations and environments, corrosion and wear are major problems due to the presence of corrosive and abrasive elements. The coating is a common surface protection method that enhances corrosion resistance and prolongs lifespan. In this work, a Ni-Graphene nanocomposite coating was fabricated using the electrodeposition method. This work aimed to fabricate a Ni-GO nanocomposite coating on mild steel with different surface roughness, to characterize the physical, mechanical, and chemical properties of the coating, and to investigate its corrosion and wear rate. The fabrication process involved preparing substrates coated with Ni-GO nanocomposite through a 45 -minute constant current electrodeposition process. The coated specimens were characterized using X-ray diffraction machine, scanning electron microscope, Alicona infinite focus, vicker's hardness test, raman spectroscopy, and adhesion test. The corrosion and wear rate of the coatings were investigated using a slurry erosion tester and salt water spray, respectively. The results showed that the Ni-GO nanocomposite coating on a smooth surface roughness substrate achieved the highest microhardness, wear resistance, and corrosion resistance, with values of 468.8 HV, 0.182 % weight loss, and 0.03 % weight gain, respectively. This indicates that the specimen coated with a smooth surface roughness substrate provided better coating performance than the rough and medium surface roughness substrates.
publisher UNIV MALAYSIA PAHANG
issn 2289-4659
2231-8380
publishDate 2024
container_volume 18
container_issue 1
doi_str_mv 10.15282/jmes.18.1.2024.8.0783
topic Engineering
topic_facet Engineering
accesstype gold
id WOS:001207222800008
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001207222800008
record_format wos
collection Web of Science (WoS)
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