Effect of graphite particle size and content on the formation mechanism of detonation polycrystalline diamond

Y. Tong, Y. Cao, R. Liu, S. Y. Shang, F. L. Huang*

*Corresponding author for this work

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Abstract

The formation mechanism of detonation polycrystalline diamond (DPD) generated from the detonation of a mixed RDX/graphite explosive is investigated. It is found experimentally that the DPD conversion rate decreases with both the content and the particle size of the graphite. Moreover, the particle sizes of the generated DPD powder are analyzed, which shows that, with the decrease in the graphite particle size, the mean number diameter of DPD decreases, but the mean volume diameter increases. In addition, with the help of scanning electron microscopy, it is observed that the in situ phase change occurs in the graphite particles, by which the small particles combine to form numerous large DPD particles. Based on both the experimental data and the classical ZND detonation model, we divide such a DPD synthesis process into two stages: In the first stage, the in situ phase change from graphite to diamond is dominant, supplemented by some coalescence growth at high pressure and temperature, which is affected mainly by the detonation performance of the mixed explosive under consideration. In the second stage, the graphitization of DPD caused by the residual heat is dominant, which is affected mainly by the unloading rate of the particle temperature.

Original languageEnglish
Pages (from-to)153-161
Number of pages9
JournalShock Waves
Volume28
Issue number2
DOIs
Publication statusPublished - 1 Mar 2018

Keywords

  • Detonation
  • Graphite
  • Phase change
  • Polycrystalline diamond

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Tong, Y., Cao, Y., Liu, R., Shang, S. Y., & Huang, F. L. (2018). Effect of graphite particle size and content on the formation mechanism of detonation polycrystalline diamond. Shock Waves, 28(2), 153-161. https://doi.org/10.1007/s00193-017-0723-y