[1]
P. Poletskov, M. Gushchina, M. Polyakova. Development of Alloyed Pipe Steel Composition for Oil and Gas Production in the Arctic Region// Resources 2019, 8, 67.
DOI: 10.3390/resources8020067
Google Scholar
[2]
H. Zhao1,2, B. P. Wynne1, and E. J. Palmiere. Conditions for the occurrence of acicular ferrite transformation in HSLA steels// Metals. J Mater Sci (2018) 53:3785–3804. P/ 3785-3804
DOI: 10.1007/s10853-017-1781-3
Google Scholar
[3]
Shaposhnikov N.O., Ermakov B.S., Valiakhmetov R.I., Mikheev V.V., Influence of structural heterogeneity on the perfomance of the material of large diameter pipes in cold climates
DOI: 10.24247/ijmperdjun20201447
Google Scholar
[4]
Ermakov B.S., Shaposhnikov, N.O. Effect of Production Factors on Main Oil Pipeline Pipe Metal Property Formation, Metallurgist 62(7-8)
DOI: 10.1007/s11015-018-0718-7
Google Scholar
[5]
N. Shaposhnikov, B. Ermakov, N. Zhukov and A. Fedorov// Analysis of the reasons for the accelerated failure of oil pipelines in the regions of the Far North and Siberia// II International Conference "Corrosion in the Oil & Gas Industry" 2020, 05 January 2021.
DOI: 10.1051/e3sconf/202122506001
Google Scholar
[6]
Kazakov A. A., Zhitenev A., Ryaboshuk S.. Interpretation and Classification of Nonmetallic Inclusions// Materials Performance and Characterization. – 2016.
DOI: 10.1520/mpc20160040
Google Scholar
[7]
Kazakov A. A., Zhitenev A. I. Assessment and interpretation of nonmetallic inclusions in steel. CIS Iron and steel review. Vol. 16, 2018.
DOI: 10.17580/cisisr.2018.02.07
Google Scholar
[8]
Kazakov, A.A., Zhitenev, A.I., Salynova, M.A. Extension of ASTM E2283 standard practice for the assessment of large exogenous nonmetallic inclusions in super duty steels. CIS Iron and Steel Review, 2019, 18, p.4–9
DOI: 10.17580/cisisr.2019.02.01
Google Scholar
[9]
A.I. Rudskoy, N.G. Kolbasnikov// Digital twins of thermomechanical treatment of steel// UDK669.017:621.789:658.512.4
Google Scholar
[10]
Ogoltcov A, Sokolov D, Sokolov S, Vasilyev А (2017) Practical Use of Computer Model STAN 2000 for Improvement and Creation of Regimes of Steels Hot Rolling on SEVERSTAL Mill 2000. Mater Sci Forum 879:2543-2548.
DOI: 10.4028/www.scientific.net/msf.879.2543
Google Scholar
[11]
Ogoltcov A, Sokolov D, Sokolov S, Vasilyev А .Computer Model STAN 2000 and its Use in Practice of Steels Hot Rolling on Mill 2000 of Severstal. Materials Science Forum.
DOI: 10.4028/www.scientific.net/msf.854.183
Google Scholar
[12]
Y.A. Bezobrazov, N.G. Kolbasnikov, A.A. Naumov. The «tension – compression» method for physical modeling of multistage plastic deformation processes. Metallovedenie i termicheskaya obrabotka. «STAL». №1. . 2014 г. ISSN 0038—920X
DOI: 10.3103/s0967091214010057
Google Scholar
[13]
Kolbasnikov, N.G. Investigation of structure, rheological and relaxation properties, and stress relaxation kinetics in nanocrystalline beryllium at hot rolling temperatures / N.G. Kolbasnikov, V.V. Mishin, A.I. Shamshurin, A.V. Zabrodin // Nanotechnologies in Russia. – 2014. – Vol. 9. – Iss. 1-2. – P. 65-72.
DOI: 10.1134/s1995078014010078
Google Scholar
[14]
Ringinen D.A. // Formation of a homogeneous structure during thermomechanical treatment in a 5000 mill and stability of impact toughness and cold resistance of pipe steels of strength classes x80 and x100. // Moscow, 2016.
Google Scholar
[15]
D.A. Ringinen, A.V. Chastukhin, G.E. Khadeev, L.I. Efron, V.I. Il'inskii, Evolution of austenite grain structure and microalloying element precipitation during heating of steel of strength class K65 (X80) for rolling // Metallurgist 57 (11), 996-1004.
DOI: 10.1007/s11015-014-9835-0
Google Scholar
[16]
L.I. Efron, Metal Science in «Big» metallurgy. Pipe steels// Metallurgizdat. 2012.// ISBN 978-5-902194-63-7.
Google Scholar