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Acoustic Emission Response to Brittle Cutting of 6H-SiC Using Molecular Dynamics
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1.School of Mechanical and Electrical Engineering, Lanzhou University of Technology, Lanzhou 730050, China;2.Key Laboratory of Digital Manufacturing Technology and Application, Ministry of Education, Lanzhou University of Technology, Lanzhou 730050, China;3.Centre for Efficiency and Performance Engineering, University of Huddersfield, Huddersfield HD1 3DH, UK

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National Natural Science Foundation of China (52065036); Natural Science Foundation of Gansu (20JR5RA448); Hongliu First-class Disciplines Development Program of Lanzhou University of Technology

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    Abstract:

    The acoustic emission (AE) response to brittle cutting of 6H-SiC was studied by molecular dynamics simulation. The micro-deformation and crack formation at atomic scale were analyzed. Furthermore, the AE sources in machining were distinguished and their corresponding AE characteristics were discussed. The results show that the brittle deformation process of 6H-SiC at cutting depth of 77 nm is simple but unusual. The deformation possesses discontinuous dislocation propagation and divides the deformed workpiece into pieces, and then the crack is initiated from a fast dislocation propagation. The compressive stress results in the decline of AE power initially. Three AE sources clustered in the frequency-energy analysis are lattice vibration, dislocation propagation and crack propagation. In addition, the AE response of two times of dislocation propagation shows a higher frequency characteristic than lattice vibration does at temperature of 1 K, with the lowest energy occupation in total. On the contrary, the AE response of crack propagation has apparent frequency and energy accumulation characteristics.

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[Feng Ruicheng, Qi Yongnian, Li Haiyan, Song Wenyuan, Fan Lihe, Lei Chunli, Feng Guojin, Rui Zhiyuan. Acoustic Emission Response to Brittle Cutting of 6H-SiC Using Molecular Dynamics[J]. Rare Metal Materials and Engineering,2021,50(5):1602~1610.]
DOI:10.12442/j. issn.1002-185X.20200822

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History
  • Received:October 24,2020
  • Revised:November 08,2020
  • Adopted:November 25,2020
  • Online: July 19,2021
  • Published: May 25,2021