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Original Article | Open Access

Grain Size-Dependent Surface Formation and Evolution in Nanocutting: An Atomic-Scale Insight

Mingfei Cao1Hui Wang1Chengzu Ren1,2Zhimin Cao3Chunlei He1 ( )
Tianjin Key Laboratory of Equipment Design and Manufacturing Technology, Tianjin University, Tianjin 300354, China
School of Mechanical Engineering, Tianjin Renai College, Tianjin 301636, China
Institute of Chemical Materials, China Academy of Engineering Physics, Mianyang 621900, China
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Highlights

• The grain size-dependent surface formation mechanism in nanocutting is elucidated.

• The critical grain size for deformation transition in nanocutting is identified.

• Amorphous aluminum and stacking faults are observed after nanocutting.

Abstract

This study utilizes a hybrid methodology of molecular dynamic simulation and experimental observations to elucidate the intrinsic mechanism through which grain size influences the machined surface quality of pure metallic materials, systematically examining correlations among material removal mechanisms, deformation behavior, and microstructural evolution across varying grain size scales. The results demonstrate that grain size significantly affects machined surface integrity by modifying deformation mechanisms, with its effect strongly linked to a transition in the dominant deformation mechanism from dislocation slip to grain boundary sliding. Transmission electron microscopy characterization confirms that the machined subsurface of pure aluminum metal exhibits amorphous phases and stacking faults, hence corroborating the material deformation mechanism in nanocutting. This study elucidates the formation pathway of distinctive microstructures in nanocutting of pure metallic materials, offering a theoretical foundation for attaining high-precision machining of metallic materials through grain size modulation.

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Nanomanufacturing and Metrology
Article number: 17

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Cite this article:
Cao M, Wang H, Ren C, et al. Grain Size-Dependent Surface Formation and Evolution in Nanocutting: An Atomic-Scale Insight. Nanomanufacturing and Metrology, 2026, 9(2): 17. https://doi.org/10.1007/s41871-026-00299-8

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Received: 04 December 2025
Revised: 16 March 2026
Accepted: 18 March 2026
Published: 28 April 2026
© The Author(s) 2026

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