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April 10, 2026Journal of Manufacturing Processes5 citationsOpen Access

Insight from molecular dynamics into the phase boundary behavior and material removal mechanism during nanometric cutting of RB-SiC at various temperatures

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LZLong ZhangYQYunze QiSZShuo Zhang

Key Points

  • This research aims to understand the material removal mechanism of RB-SiC during nanometric cutting at various temperatures.
  • Conducted molecular dynamics simulations of RB-SiC during nanometric cutting.
  • Investigated the effects of temperature on material removal mechanisms.
  • Analyzed phase boundary behaviors and mechanical property mismatches.
  • Found a soft-guidance effect along the Si/SiC phase boundary due to mechanical property mismatches.
  • Observed a 32.2% reduction in cutting forces at elevated temperatures.
  • Noted increased plastic deformation in the Si phase and weakened amorphization in the SiC phase as temperature rises.

Abstract

This study used molecular dynamics (MD) simulations to systematically investigate the material removal mechanism of reaction-bonded silicon carbide (RB-SiC) during nanometric cutting at different temperatures, which fills the gap in understanding the material removal mechanism at the phase boundary of two-phase materials with mismatched properties. Results show that the strong mismatch in mechanical properties between the Si/SiC phase boundary produces a distinct soft-guidance effect caused by the hardness gradient i.e., amorphous structures preferentially flow along the phase boundary into the softer Si phase, leading to the V-shaped boundary defects pointing toward the Si phase. At elevated temperatures, the thermal softening effect becomes more pronounced, leading to a reduction in cutting forces by 32.2%. Moreover, the degree of amorphization in the SiC phase weakens, and the plastic deformation of Si phase increases, resulting in a more significant hardness-gradient soft-guidance effect at elevated temperatures. Overall, this work provides new theoretical insights into the unreported critical role of phase boundary of Si/SiC in RB-SiC.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69d894ec6c1944d70ce05d12https://doi.org/10.1016/j.jmapro.2026.03.083
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