@article{VTGU_2023_86_a8,
author = {V. A. Skripnyak and M. O. Chirkov and V. V. Skripnyak},
title = {Mechanical behavior of aluminum alloy 1520 under tension in the range of strain rates from 10$^{-1}$ to 10$^3$ s$^{-1}$},
journal = {Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mehanika},
pages = {120--135},
year = {2023},
number = {86},
language = {ru},
url = {http://geodesic.mathdoc.fr/item/VTGU_2023_86_a8/}
}
TY - JOUR
AU - V. A. Skripnyak
AU - M. O. Chirkov
AU - V. V. Skripnyak
TI - Mechanical behavior of aluminum alloy 1520 under tension in the range of strain rates from 10$^{-1}$ to 10$^3$ s$^{-1}$
JO - Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mehanika
PY - 2023
SP - 120
EP - 135
IS - 86
UR - http://geodesic.mathdoc.fr/item/VTGU_2023_86_a8/
LA - ru
ID - VTGU_2023_86_a8
ER -
%0 Journal Article
%A V. A. Skripnyak
%A M. O. Chirkov
%A V. V. Skripnyak
%T Mechanical behavior of aluminum alloy 1520 under tension in the range of strain rates from 10$^{-1}$ to 10$^3$ s$^{-1}$
%J Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mehanika
%D 2023
%P 120-135
%N 86
%U http://geodesic.mathdoc.fr/item/VTGU_2023_86_a8/
%G ru
%F VTGU_2023_86_a8
V. A. Skripnyak; M. O. Chirkov; V. V. Skripnyak. Mechanical behavior of aluminum alloy 1520 under tension in the range of strain rates from 10$^{-1}$ to 10$^3$ s$^{-1}$. Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mehanika, no. 86 (2023), pp. 120-135. http://geodesic.mathdoc.fr/item/VTGU_2023_86_a8/
[1] Vishnukumar M., Pramod R., Rajesh Kannan A., “Wire arc additive manufacturing for repairing aluminium structures in marine application”, Materials Letters, 299 (2021), 130112 | DOI
[2] Promakhov V.V., Matveev A.E., Shults N.A., Bakhmat V.R., Dronov F.Yu., Turanov T.E., “Issledovanie struktury i svoistv metallomatrichnykh kompozitsionnykh materialov, poluchennykh metodom pryamogo lazernogo vyraschivaniya”, Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mekhanika, 2022, no. 77, 125–139 | DOI
[3] Khrustalev A.P., Platov V.V., Kakhidze N.I., Zhukov I.A., Vorozhtsov A.B., “Vliyanie nanochastits volframa na strukturu i mekhanicheskoe povedenie alyuminievogo splava 1550 v usloviyakh kvazistaticheskogo nagruzheniya”, Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mekhanika, 2021, no. 74, 141–153 | DOI
[4] Alyuminii AMg2, Tsentralnyi metallicheskii portal, , 2023 (data obrascheniya: 24.05.2023) https://metallicheckiyportal.ru/marki_metallov/alu/AMg2
[5] Li X., Shi T., Li B., Chen X., Zhang C., Guo Z., Zhang Q., “Subtractive manufacturing of stable hierarchical micro-nano structures on AA5052 sheet with enhanced water repellence and durable corrosion resistance”, Materials and Design, 183 (2019), 108152 | DOI
[6] He H., Yang T., Ren Y., Peng Y., Xue S., Zheng L., “Experimental investigation on the formability of Al-Mg alloy 5052 sheet by tensile and cupping test”, Materials, 15 (2023), 8949 | DOI
[7] Skripnyak N.V., “Osobennosti razrusheniya alyuminii-magnievogo splava AMg6 pri vysokoskorostnoi deformatsii”, Izvestiya vuzov. Fizika, 58:5 (2015), 96–101
[8] Tretyakova T.V., Vildeman V.E., “Zakonomernosti i skhematizatsiya protsessa lokalizatsii plasticheskogo techeniya pri ispytaniyakh ploskikh obraztsov alyuminievo-magnievogo splavakh”, Fizicheskaya mezomekhanika, 20:2 (2017), 71–78
[9] LS-DYNA3D Theoretical manual, Livermore software Technology Corporation, Livermore, CA, 1993
[10] Skripnyak V. V., Skripnyak E.G., Skripnyak V.A., “Fracture of titanium alloys at high strain rates and under stress triaxiality”, Metals, 10:3 (2020), 305 | DOI
[11] Lucon E., Benzing J., Hrabe N., Development and validation of small punch testing at NIST, National Institute of Standards and Technology Interagency or Internal Report 8303, Natl. Inst. Stand. Technol. Interag. Intern., 2020, 55 pp. | DOI
[12] Norris S.D., Parker J.D., “Deformation processes during disc bend loading”, Materials Science and Technology, 12 (1996), 163–170 | DOI
[13] Vorlicek V., Exworthy L.F., Flewitt P.E.J., “Evaluation of a miniaturized disc test for establishing the mechanical properties of low-alloy ferritic steels”, Journal of Materials Science, 30 (1995), 2936–2943 | DOI
[14] Skripnyak V.V., Skripnyak V.A., “Hexagonal close packed (hcp) alloys under dynamic impacts”, Journal of Applied Physics, 131 (2022), 165902 | DOI
[15] Carmona R., Zhu Q., Sellars C.M., Beynon J.H., “Controlling mechanisms of deformation of AA5052 aluminium alloy at small strains under hot working conditions”, Materials Science and Engineering: A, 393:1–2 (2005), 157–163 | DOI
[16] Johnson G.R., Cook W.H., “Fracture characteristics of three metals subjected to various strains, strain rates, temperatures and pressures”, Engineering Fracture Mechanics, 21 (1985), 31–48 | DOI
[17] Taylor G.I., Quinney H., “The latent energy remaining in a metal after cold working”, Proc. Royal Soc. London. Ser. A. Mathematical and Physical Sciences, 143:849 (1934), 307–326
[18] Bragov A.,Igumnov L., Konstantinov A., Lomunov A., Rusin E., “Efects of high strain rate and self-heating on plastic deformation of metal materials under fast compression loading”, Journal of Dynamic Behavior of Materials, 5 (2019), 309–319 | DOI | MR
[19] Prakash G., Singh N.K., Sharma P., Gupta N.K., “Tensile, compressive, and flexural behaviors of Al5052-H32 in a wide range of strain rates and temperatures”, Journal of Materials in Civil Engineering, 32:5 (2020), 04020090 | DOI
[20] Ijaz H., Zain-ul-abdein M., Saleem W., Asad M., Mabrouki T., “Modified Johnson-Cook plasticity model with damage evolution: application to turning simulation of 2XXX aluminium alloy”, Journal of Mechanics, 33 (2017), 777–788 | DOI
[21] Song P., Li W., Wang X., Xu W., “Study on mechanical properties and constitutive model of 5052 aluminium alloy”, Materials Science and Technology, 35:8 (2019), 916–924 | DOI
[22] Skrlec A., Klemenc J., “Estimating the strain-rate-dependent parameters of the Cowper-Symonds and Johnson-Cook material models using Taguchi arrays”, Strojniski vestnik - Journal of Mechanical Engineering, 62:4 (2016), 220–230 | DOI