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On understanding the specific cutting mechanisms governing the workpiece surface integrity in metal matrix composites machining

Han, Xiao; Xu, Dongdong; Axinte, Dragos; Liao, Zhirong; Li, Hao Nan

Authors

Xiao Han

Dongdong Xu

DRAGOS AXINTE dragos.axinte@nottingham.ac.uk
Professor of Manufacturing Engineering

Hao Nan Li



Abstract

Machining of metal matrix composites (MMCs) is always challenging due to the mismatch of mechanical and thermal properties between the soft matrix and the abrasive reinforced particles, which causes rapid tool wear and severe surface damage. This paper investigates the effects of cutting regimes on surface integrity in machining of MMCs to understand the (sub) surface damage mechanism induced by thermo-mechanical loads in accordance with the evaluation on particle behaviours and matrix metallurgical transformation. For the first time, it is observed that two different cutting regimes (semi-brittle and ductile cutting) occur in machining of MMCs depending on the feed rate/uncut chip thickness. The machined surface morphology greatly depends on these two cutting regimes wherein various particle removal modes (i.e. push-in, crack and pullout) are generated due to the different cutting mechanisms. The semi-brittle cutting regime tends to happen under low uncut chip thickness and lead to obvious damaged surface morphology (high density of fractured particles), while matrix plastic deformation associated with high cutting temperature and built-up heat is found on the machined surface. Furthermore, the semi-brittle cutting regime further leads to an interesting phenomenon within the superficial surface: (i) a layer of broken SiC particles and (ii) the plastic flow of matrix around the hard particles which act as local barriers. Also, the aggregation of fractured particles and strain hardening of matrix can cause an increased hardness at the near-surface area. An additional cutting experiment on matrix material as a comparison revealed that the brittle fracture of reinforced particles plays a key role in the specific mechanism of MMCs under very low uncut chip thickness, which can cause cutting force increase, flank wear accelerate and the formation of surface damage.

Citation

Han, X., Xu, D., Axinte, D., Liao, Z., & Li, H. N. (2021). On understanding the specific cutting mechanisms governing the workpiece surface integrity in metal matrix composites machining. Journal of Materials Processing Technology, 288, Article 116875. https://doi.org/10.1016/j.jmatprotec.2020.116875

Journal Article Type Article
Acceptance Date Aug 4, 2020
Online Publication Date Aug 8, 2020
Publication Date Feb 1, 2021
Deposit Date May 11, 2023
Journal Journal of Materials Processing Technology
Print ISSN 0924-0136
Electronic ISSN 1873-4774
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 288
Article Number 116875
DOI https://doi.org/10.1016/j.jmatprotec.2020.116875
Keywords Modelling and Simulation; Industrial and Manufacturing Engineering; Metals and Alloys; Ceramics and Composites; Computer Science Applications
Public URL https://nottingham-repository.worktribe.com/output/4838491
Publisher URL https://www.sciencedirect.com/science/article/pii/S0924013620302892


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