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January 17, 2026Processes0 citationsOpen Access

Friction Stir Processing: An Eco-Efficient Route to High-Performance Surface Architectures in MMCs

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SSS Kumar SharmaSMSaša MilojevićLSLokesh Kumar Sharma

Key Points

  • This review explores the impact of friction stir processing on the performance of metal matrix composites, focusing on process–structure–property relationships.
  • Analyses of friction stir processing as a solid-state surface engineering technique.
  • Discussion of mechanisms such as grain boundary strengthening and defect elimination.
  • Evaluation of mechanical, tribological, and corrosion performance of composites.
  • Comparison of eco-efficiency and sustainability with traditional surface modification techniques.
  • Enhanced mechanical, tribological, and corrosion performance due to grain refinement and strong interfacial bonding.
  • Identification of key strengthening mechanisms that improve wear resistance and durability.
  • Evaluation of ecological and industrial benefits over conventional techniques.

Abstract

Friction Stir Processing (FSP) has emerged as an advanced solid-state surface engineering technique for tailoring high-performance surface architectures in metal matrix composites (MMCs). By combining localized thermo-mechanical deformation with controlled material flow, FSP enables grain refinement, homogeneous dispersion of reinforcement, and strong interfacial bonding without melting or altering bulk properties. This review critically examines the role of FSP in enhancing the mechanical, tribological, and corrosion performance of composites, with emphasis on process–structure–property relationships. Key strengthening mechanisms, including grain boundary strengthening, load transfer, particle pinning, and defect elimination, are systematically discussed, along with their implications for wear resistance, fatigue life, and durability. Special attention is given to corrosion and tribo-corrosion behavior, highlighting electrochemical mechanisms such as micro-galvanic interactions, passive film stability, and interfacial chemistry. Furthermore, the eco-efficiency, industrial viability, and sustainability advantages of FSP are evaluated in comparison with conventional surface modification techniques. The review concludes by identifying critical challenges and outlining future research directions for the scalable, multifunctional, and sustainable design of composite surfaces.

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Cite This Study

Sharma et al. (2026) studied this question.

synapsesocial.com/papers/696b26d7d2a12237a934a1e8https://doi.org/10.3390/pr14020306
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