30th International Conference on Interaction of Intense Energy Fluxes with Matter | |
Quenching of liquid carbon under intensive heat transfer to the cold diamond substrate: Molecular-dynamic simulation | |
Dozhdikov, V.S.^1 ; Basharin, A.Yu.^1 ; Levashov, P.R.^1,2 | |
Joint Institute for High Temperatures, Russian Academy of Sciences, Izhorskaya 13, Moscow | |
125412, Russia^1 | |
Moscow Institute of Physics and Technology, Institutskiy Pereulok 9, Dolgoprudny, Moscow Region | |
141700, Russia^2 | |
关键词: Diamond substrates; Graphite-like structures; High thermal conductivity; Molecular dynamics simulations; Natural diamonds; Quenching process; Radial distribution functions; Temperature profiles; | |
Others : https://iopscience.iop.org/article/10.1088/1742-6596/653/1/012091/pdf DOI : 10.1088/1742-6596/653/1/012091 |
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来源: IOP | |
【 摘 要 】
Quenching of liquid carbon (T = 6600 K) on a cold diamond substrate at T = 300 K in conditions close to the experimental laser melting of dispersed graphite on the substrate of natural diamond is investigated using molecular dynamics (MD) simulations. Quenching was carried out for two types of boundary conditions on the side opposite to the diamond substrate. The simulations confirmed the experimental result of the formation of amorphous carbon under such conditions. The calculations showed that the destruction of the diamond substrate did not take place because of its very high thermal conductivity. The estimation of the cooling rate of liquid carbon was done, the result is 1015K/s. Temperature profiles in different layers of liquid carbon were restored to reproduce the detailed picture of the quenching process. We evaluated the radial distribution functions (RDF), the distribution of carbon atom bond fractions sp1-sp2-sp3, the average bond length and the azimuthal angles distributions for amorphous carbon atoms. This analysis confirmed that the amorphous carbon obtained by quenching in MD-simulations had a graphite-like structure.
【 预 览 】
Files | Size | Format | View |
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Quenching of liquid carbon under intensive heat transfer to the cold diamond substrate: Molecular-dynamic simulation | 1469KB | download |