Molecular-dynamic investigation of silicon carbide fracture under external mechanical loads
Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika, Tome 14 (2021) no. 6, pp. 787-794.

Voir la notice de l'article provenant de la source Math-Net.Ru

In this study, molecular dynamic simulations of quasi-static compression of silicon carbide nanorod, were performed. A longitudinal through defect in the form of a cylindrical channel was introduced into the central part of the nanorod. The influence of the cross sectional size of this internal channel on the strength properties was investigated.
Keywords: molecular dynamics
Mots-clés : silicon carbide, quasi-static compression.
@article{JSFU_2021_14_6_a11,
     author = {Andrey V. Utkin and Vasily M. Fomin},
     title = {Molecular-dynamic investigation of silicon carbide fracture under external mechanical loads},
     journal = {\v{Z}urnal Sibirskogo federalʹnogo universiteta. Matematika i fizika},
     pages = {787--794},
     publisher = {mathdoc},
     volume = {14},
     number = {6},
     year = {2021},
     language = {en},
     url = {http://geodesic.mathdoc.fr/item/JSFU_2021_14_6_a11/}
}
TY  - JOUR
AU  - Andrey V. Utkin
AU  - Vasily M. Fomin
TI  - Molecular-dynamic investigation of silicon carbide fracture under external mechanical loads
JO  - Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika
PY  - 2021
SP  - 787
EP  - 794
VL  - 14
IS  - 6
PB  - mathdoc
UR  - http://geodesic.mathdoc.fr/item/JSFU_2021_14_6_a11/
LA  - en
ID  - JSFU_2021_14_6_a11
ER  - 
%0 Journal Article
%A Andrey V. Utkin
%A Vasily M. Fomin
%T Molecular-dynamic investigation of silicon carbide fracture under external mechanical loads
%J Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika
%D 2021
%P 787-794
%V 14
%N 6
%I mathdoc
%U http://geodesic.mathdoc.fr/item/JSFU_2021_14_6_a11/
%G en
%F JSFU_2021_14_6_a11
Andrey V. Utkin; Vasily M. Fomin. Molecular-dynamic investigation of silicon carbide fracture under external mechanical loads. Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika, Tome 14 (2021) no. 6, pp. 787-794. http://geodesic.mathdoc.fr/item/JSFU_2021_14_6_a11/

[1] G.S. Corman, K.L. Luthra, Handbook of Ceramic Composites, Springer US, 2005

[2] C.P. Deck et al., Back Progress in Nuclear Energy, 57 (2012), 38–45 | DOI

[3] Advances in High Temperature Ceramic Matrix Composites and Materials for Sustainable Development, Ceramic Transactions, CCLXIII, eds. Mrityunjay Singh et al., John Wiley Sons, Inc., Hoboken, NJ, USA, 2017

[4] 10th International Conference on High Temperature Ceramic Matrix Composites – HT-CMC 10, Book of Abstracts (Bordeaux, France, 2019)

[5] D. Frenkel, B. Smit, Understanding Molecular Simulation: From Algorithms to Applications, Elsevier Academic Press, Amsterdam, 2001

[6] M.P. Allen, D.J. Tildesley, Computer Simulation of Liquids, Oxford University Press, 1987 | Zbl

[7] M.A. Makeev, D. Srivastava, Phys. Rev. B, 74 (2006), 165303 | DOI

[8] Zhiguo Wang, Xiaotao Zu, Fei Gao, William J. Weber, Phys. Rev. B, 77 (2008), 224113 | DOI

[9] Zhijie Li, Shenjie Wang, Zhiguo Wang, Xiaotao Zu, Fei Gao, William J. Weber, Journal of Applied Physics, 108 (2010), 013504 | DOI

[10] H. Tsuzuki, J.P. Rino, P.S. Branicio, J. Phys. D: Appl. Phys., 44 (2011), 055405 | DOI

[11] A.V. Utkin, V.M. Fomin, AIP Conference Proceedings, 1893 (2017), 030018 | DOI

[12] A.E. Buzyurkin, E.I. Kraus, Y.L. Lukyanov, AIP Conference Proceedings, 1770 (2016), 030091 | DOI

[13] E.I. Kraus, I.I. Shabalin, Journal of Physics Conference Series, 653 (2015), 012085 | DOI

[14] Andrey E. Buzyurkin, Eugeny I. Kraus, Yaroslav L. Lukyanov, Thermal Science, 23 (2019), S471–S476

[15] A.V. Utkin, V.M. Fomin, E.I. Golovneva, AIP Conference Proceedings, 2288 (2020), 030083 | DOI

[16] A.V. Utkin, Mathematica Montisnigri, 39 (2017), 101–109 | Zbl

[17] M.S. Ozhgibesov, T.S. Leu, C.H. Cheng et al., Journal Of Molecular Graphics Modelling, 38 (2012), 375–381 | DOI

[18] P. Vashishta, R.K. Kalia, A. Nakano, J.P. Rino, Journal of Applied Physics, 101 (2007), 103515 | DOI

[19] I.F. Golovnev, E.I. Golovneva, A.V. Utkin, Procedia Structural Integrity, 13 (2018), 1632–1637 | DOI

[20] I.F. Golovnev, E.I. Golovneva, A.V. Utkin, Physical Mesomechanics, 22 (2019), 420–431 | DOI

[21] A. Stukowski, Modell. Simul. Mater. Sci. Eng., 18 (2010), 015012 | DOI

[22] A.F. Ioffe, The Physics of Crystals, McGraw-Hill Book Company Inc, New York, 1928 | Zbl

[23] V.E. Panin (ed.), Surface Layers and Internal Interfaces in Heterogeneous Materials, Izd-vo SO RAN, Novosibirsk, 2006 (in Russian)