Cast Austenitic Steels for Cryogenic Technology

Article Preview

Abstract:

This article presents the results of a study of martensitic steels. Studied steels: OZH9K14N6MZD, 12X18N10TL, 07X13G28ANFL. The object of the study was the optimization of properties for use in cryogenic technology. The purpose of the study is to increase the strength and service life of products for various purposes. The destruction of steel 12X18N10TL and 07X13G28ANFL was investigated. It has been established that 07X13G28ANFL steel is more preferable for cryogenic use and is recommended by the authors.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

60-65

Citation:

Online since:

September 2019

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2019 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] N.M. Bobrovskij, D.G. Levashkin, I.N. Bobrovskij, P.A. Melnikov and A.A. Lukyanov, The Modelling Of Basing Holes Machining Of Automatically Replaceable Cubical Units For Reconfigurable Manufacturing Systems With Low-Waste Production, IOP Conference Series: Earth and Environmental Science 50 (2017) 012013.

DOI: 10.1088/1755-1315/50/1/012013

Google Scholar

[2] I.N. Bobrovskij, Burnishing Systems: а Short Survey of the State-of-the-art, ATCES 2017 IOP Conf. Series: Materials Science and Engineering 302 (2018) 012041.

DOI: 10.1088/1757-899x/302/1/012041

Google Scholar

[3] I.N. Bobrovskij, How to Select the most Relevant Roughness Parameters of a Surface: Methodology Research Strategy, ATCES 2017 IOP Conf. Series: Materials Science and Engineering 302 (2018) 012066.

DOI: 10.1088/1757-899x/302/1/012066

Google Scholar

[4] S.N. Grigoriev, N.M. Bobrovskij, P.A. Melnikov, I.N. Bobrovskij and T. Zaborowski, Research of Tool Durability in Surface Plastic Deformation by Wide Burnishing of Cast Iron without Metalworking Fluids, Key Engineering Materials 746 (2017) 120-125.

DOI: 10.4028/www.scientific.net/kem.746.120

Google Scholar

[5] A.A. Lukyanov, S.N. Grigoriev, I.N. Bobrovskij, P.A. Melnikov and N.M. Bobrovskij, Optical Method For Monitoring Tool Control For Green Burnishing With Using Of Algorithms With Adaptive Settings, IOP Conf. Series: Earth and Environmental Science 66 (2017) 012020.

DOI: 10.1088/1755-1315/66/1/012020

Google Scholar

[6] S.N. Grigoriev, N.M. Bobrovskij, I.N. Bobrovskij and C.P. Jiang, Technological Parameters Forming the Surface Texture in Hyper Productive Surface Plastic Deformation Processing Key Engineering Materials 746 (2017) 114-119.

DOI: 10.4028/www.scientific.net/kem.746.114

Google Scholar

[7] S.N. Grigoriev, N.M. Bobrovskij, P.A. Melnikov and I.N. Bobrovskij, Research of Tool Durability in Surface Plastic Deformation Processing by Burnishing of Steel Without Metalworking Fluids, IOP Conference Series: Earth and Environmental Science 66(1) (2017) 012013.

DOI: 10.1088/1755-1315/66/1/012013

Google Scholar

[8] S.N. Grigoriev, N.M. Bobrovskij, I.N. Bobrovskij, P.A. Melnikov and A.A. Lukyanov, Environmental Aspects of the Green Surface Plastic Deformation Technology of Car Parts, IOP Conference Series: Earth and Environmental Science 50(1) (2017) 012015.

DOI: 10.1088/1755-1315/50/1/012015

Google Scholar

[9] F.V. Grechnikov, Ya.A. Erisov, and S.E. Alexandrov, Effect of anisotropic yield criterion on the springback in plane strain pure bending, CEUR Workshop Proceedings, 1638 (2016) 569-577.

Google Scholar

[10] F.V. Grechnikov, V.V. Antipov, Y.A. Erisov, and A.F. Grechnikova, A manufacturability improvement of glass-fiber reinforced aluminum laminate by forming an effective crystallographic texture in V95 alloy sheets, Russian Journal of Non-Ferrous Metals 56 (1) (2015) 39-43.

DOI: 10.3103/s1067821215010095

Google Scholar

[11] Y.A. Erisov, F.V. Grechnikov, and M.S. Oglodkov, The influence of fabrication modes of sheets of V-1461 alloy on the structure crystallography and anisotropy of properties, Russian Journal of Non-Ferrous Metals 57 (1) (2016) 19-24.

DOI: 10.3103/s106782121601003x

Google Scholar

[12] S. Alexandrov, Y. Erisov, and F. Grechnikov, Effect of the yield criterion of matrix on the brittle fracture of fibres in uniaxial tension of composites, Advances in Materials Science and Engineering (2016) 3746161.

DOI: 10.1155/2016/3746161

Google Scholar

[13] Yu.P. Solncev, G.A. Stepanov Materials in creogenic technology [Materialy v kriogennoj tekhnike] Mashinostroenie, Leningrad, (1982).

Google Scholar

[14] Yu.P. Solncev, B.S. Ermakov and D.V. Povarov, Materials and reliability of low-temperature structures [Materialy i nadezhnost' nizkotemperaturnyh konstrukcij] HIMIZDAT, St. Petersburg, (2007).

Google Scholar

[15] Ya.B. Fridman, Mechanical properties of metals [Mekhanicheskie svojstva metallov] third ed., part 2. Mechanical tests. Structural strength [Mekhanicheskie ispytaniya. Konstruktivnaya prochnost'] Mashinostroenie, Moscow, (1974).

Google Scholar

[16] G.N. Grikurov, Metastability of chromium-manganese austenite at cryogenic temperatures and its effect on the physicomechanical properties of alloys of the austenitic region of the Fe-Cr-Mn system [Metastabil'nost' hromomargancevogo austenita pri kriogennyh temperaturah i ee vliyanie na fiziko-mekhanicheskie svojstva splavov austenitnoj oblasti sistemy Fe-Cr-Mn] FMM 78(1) (1994) 114-121.

DOI: 10.4028/www.scientific.net/msf.318-320.467

Google Scholar

[17] Yu.P. Solncev, A.K. Andreev and R.I. Grechin, Casting cold-resistant steel [Litejnye hladostojkie stali] Metallurgiya, Moscow, (1989).

Google Scholar

[18] Talis, A. L., Kraposhin, V. S., Kondrat'ev, S. Y., Nikolaichik, V. I., Svyatysheva, E. V., & Everstov, A. A. (2017). Non-crystallographic symmetry of liquid metal, flat crystallographic faults and polymorph transformation of the M7C3 carbide. Acta Crystallographica Section A: Foundations and Advances, 73(3), 209-217.

DOI: 10.1107/s2053273317000936

Google Scholar

[19] Rudskoy, A. I., Kol'Tsova, T. S., Larionova, T. V., Smirnov, A. N., Vasil'Eva, E. S., & Nasibulin, A. G. (2016). Gas-phase synthesis and control of structure and thickness of graphene layers on copper substrates. Metal Science and Heat Treatment, 58(1), 40-45.

DOI: 10.1007/s11041-016-9962-2

Google Scholar

[20] Mikhailov, V. G. (2016). Prediction of the properties of heat-affected zone of welded joints of sheets from aluminum alloys with structured surface. Metal Science and Heat Treatment, 58(1), 46-50.

DOI: 10.1007/s11041-016-9963-1

Google Scholar

[21] Velichko, O. V., Ivanov, S. Y., Karkhin, V. A., Lopota, V. A., & Makhin, I. D. (2016). Structure and properties of thick-walled joints of alloy 1570S prepared by friction stir welding. Metal Science and Heat Treatment, 58(5-6), 346-351.

DOI: 10.1007/s11041-016-0015-7

Google Scholar

[22] Kamyshev, A. V., Makarov, S. V., Pasmanik, L. A., Smirnov, V. A., Modestov, V. S., & Pivkov, A. V. (2017). Generalized coefficients for measuring mechanical stresses in carbon and low-alloyed steels by the acoustoelasticity method. Russian Journal of Nondestructive Testing, 53(1).

DOI: 10.1134/s1061830917010090

Google Scholar

[23] Klochkov, Y., Gazizulina, A., Ostapenko, M., Eskina, E., & Vlasova, N. (2016). Classifiers of nonconformities in norms and requirements. Paper presented at the 2016 5th International Conference on Reliability, Infocom Technologies and Optimization, ICRITO 2016: Trends and Future Directions, 96-99.

DOI: 10.1109/icrito.2016.7784933

Google Scholar

[24] Silva, C. C., De Assis, J. T., Philippov, S., & Farias, J. P. (2016). Residual stress, microstructure and hardness of thin-walled low-carbon steel pipes welded manually. Materials Research, 19(6), 1215-1225.

DOI: 10.1590/1980-5373-mr-2016-0217

Google Scholar

[25] Andreeva, N. V., Naberezhnov, A. A., Tomkovich, M. V., Nacke, B., Kichigin, V., Rudskoy, A. I., & Filimonov, A. V. (2016). Surface morphology and structure of double-phase magnetic alkali borosilicate glasses. Metal Science and Heat Treatment, 58(7-8), 479-482.

DOI: 10.1007/s11041-016-0039-z

Google Scholar

[26] Kolbasnikov, N. G., Matveev, M. A., & Mishnev, P. A. (2016). Effect of structure factor on high-temperature ductility of pipe steels. Metal Science and Heat Treatment, 58(1), 51-57.

DOI: 10.1007/s11041-016-9964-0

Google Scholar

[27] Artem'eva, D. A., & Anastasiadi, G. P. (2018). Effect of nitrogen alloying on short-term and long-term mechanical properties of steel 07Kh12NMFB. Metal Science and Heat Treatment, 60(1-2), 39-43.

DOI: 10.1007/s11041-018-0237-y

Google Scholar

[28] Tsemenko, V. N., Tolochko, O. V., Kol'tsova, T. S., Ganin, S. V., & Mikhailov, V. G. (2018). Fabrication, structure and properties of a composite from aluminum matrix reinforced with carbon nanofibers. Metal Science and Heat Treatment, 60(1-2), 24-31.

DOI: 10.1007/s11041-018-0235-0

Google Scholar