Low friction and wear characteristics formed by mechanically induced surface nanocrystallization: A review of recent advances

Friction and wear of metallic materials are ubiquitous in modern life, resulting in significant energy consumption and property damage. The tribological performance of metallic materials is strongly affected by their surface characteristics, motivating the rapid development of surface treatment tech...

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Main Authors: Youwang Tu, Yong He, Lei Zhang, Miao Song
Format: Article
Language:English
Published: Tsinghua University Press 2025-06-01
Series:Friction
Subjects:
Online Access:https://www.sciopen.com/article/10.26599/FRICT.2025.9440971
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author Youwang Tu
Yong He
Lei Zhang
Miao Song
author_facet Youwang Tu
Yong He
Lei Zhang
Miao Song
author_sort Youwang Tu
collection DOAJ
description Friction and wear of metallic materials are ubiquitous in modern life, resulting in significant energy consumption and property damage. The tribological performance of metallic materials is strongly affected by their surface characteristics, motivating the rapid development of surface treatment technology. As a simple method without changing the matrix composition, mechanically induced surface nanocrystallization has emerged as a promising strategy to achieve reduced friction coefficients and increased wear resistance for metals. This review highlights the systemic progress and prospects of mechanically induced surface nanocrystallization, emphasizing its ability to mitigate friction and wear in metals. This review begins by presenting various processing techniques for preparing surface nanostructures, followed by an in-depth discussion of the mechanisms of mechanically induced surface nanocrystallization and the effects of processing techniques and their parameters on surface nanocrystallization. Then, several methods for stabilizing nanocrystalline (NC) structures are briefly introduced. Furthermore, this review thoroughly examines the influence of surface nanocrystallization on the tribological properties and the underlying mechanisms. Finally, the potential applications and challenges of surface nanostructured configurations in friction- and wear-related fields are thoroughly discussed.
format Article
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institution Kabale University
issn 2223-7690
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language English
publishDate 2025-06-01
publisher Tsinghua University Press
record_format Article
series Friction
spelling doaj-art-11d1c19369e5416f9cf4a2c203b7aa302025-08-20T03:48:14ZengTsinghua University PressFriction2223-76902223-77042025-06-01136944097110.26599/FRICT.2025.9440971Low friction and wear characteristics formed by mechanically induced surface nanocrystallization: A review of recent advancesYouwang Tu0Yong He1Lei Zhang2Miao Song3State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, ChinaState Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, ChinaState Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, ChinaState Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, ChinaFriction and wear of metallic materials are ubiquitous in modern life, resulting in significant energy consumption and property damage. The tribological performance of metallic materials is strongly affected by their surface characteristics, motivating the rapid development of surface treatment technology. As a simple method without changing the matrix composition, mechanically induced surface nanocrystallization has emerged as a promising strategy to achieve reduced friction coefficients and increased wear resistance for metals. This review highlights the systemic progress and prospects of mechanically induced surface nanocrystallization, emphasizing its ability to mitigate friction and wear in metals. This review begins by presenting various processing techniques for preparing surface nanostructures, followed by an in-depth discussion of the mechanisms of mechanically induced surface nanocrystallization and the effects of processing techniques and their parameters on surface nanocrystallization. Then, several methods for stabilizing nanocrystalline (NC) structures are briefly introduced. Furthermore, this review thoroughly examines the influence of surface nanocrystallization on the tribological properties and the underlying mechanisms. Finally, the potential applications and challenges of surface nanostructured configurations in friction- and wear-related fields are thoroughly discussed.https://www.sciopen.com/article/10.26599/FRICT.2025.9440971metalsurface nanocrystallizationgradient structurefrictionwear
spellingShingle Youwang Tu
Yong He
Lei Zhang
Miao Song
Low friction and wear characteristics formed by mechanically induced surface nanocrystallization: A review of recent advances
Friction
metal
surface nanocrystallization
gradient structure
friction
wear
title Low friction and wear characteristics formed by mechanically induced surface nanocrystallization: A review of recent advances
title_full Low friction and wear characteristics formed by mechanically induced surface nanocrystallization: A review of recent advances
title_fullStr Low friction and wear characteristics formed by mechanically induced surface nanocrystallization: A review of recent advances
title_full_unstemmed Low friction and wear characteristics formed by mechanically induced surface nanocrystallization: A review of recent advances
title_short Low friction and wear characteristics formed by mechanically induced surface nanocrystallization: A review of recent advances
title_sort low friction and wear characteristics formed by mechanically induced surface nanocrystallization a review of recent advances
topic metal
surface nanocrystallization
gradient structure
friction
wear
url https://www.sciopen.com/article/10.26599/FRICT.2025.9440971
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