Название |
Study of fatigue structural changes in specimens of 09G2S steel obtained by the WAAM method |
Информация об авторе |
Nizhny Novgorod State Technical University named after R. E. Alekseev, Nizhny Novgorod, Russia:
D. A. Ryabov, Post-graduate Student, Assistant, Researcher of the Dept. of Materials Science, Materials Technology and Heat Treatment of Metals, e-mail: ryabovdm1996@gmail.com M. S. Anosov, Cand. Eng., Associate Prof., Dept. of Technology and Equipment of Mechanical Engineering, e-mail: anosov-maksim@list.ru A. A. Khlybov, Dr. Eng., Prof., Head of the Dept. of Materials Science, Materials Technology and Heat Treatment of Metals, e-mail: hlybov_52@mail.ru |
Библиографический список |
1. Jackson M. A., Van Asten A., Morrow J. D., Min S., Pfefferkorn F. E. Energy consumption model for additive-subtractive manufacturing processes with case study. International Journal of Precision Engineering and Manufacturing-Green Technology. 2018. Vol. 5, Iss. 4. pp. 459–466. DOI: 10.1007/s40684-018-0049-y 2. Pinto-Lopera J. E. et al. Real-time measurement of width and height of weld beads in GMAW processes. Sensors. 2016. Vol. 16, Iss. 9. 1500. DOI: 10.3390/s16091500 3. Johnnieew Zhong Li, Mohd Rizal Alkahari, Nor Ana Rosli. Review of wire arc additive manufacturing for 3D metal printing. International Journal of Automation Technology. 2019. Vol. 13, Iss. 3. pp. 346–353. DOI: 10.20965/ijat.2019.p0346 4. Kabaldin Yu. G., Khlybov А. А., Anosov М. S., Ryabov D. А. Study of the fatigue strength of steel 09G2S obtained by 3D printing based electric arc welding in a wide range of low temperatures. Chernye Metally. 2022. No. 2. pp. 42–48. DOI: 10.17580/chm.2022.02.082022 5. Ageev S. V., Girshov V. L. Hot isostatic pressing in powder metallurgy. Metalloobrabotka. 2015. No. 4 (88). pp. 56–60. 6. Khlybov A. A., Belyaev E. S., Ryabtsev A. D., Ryabov D. A. et al. Simulation of the hot isostatic pressing process. Vestnik Permskogo natsionalnogo issledovatelskogo politekhniceskogo universiteta. 2021. No. 3. pp. 190–198. DOI: 10.15593/perm.mech/2021.3.18 7. Popovich А. А., Sufiyarov V. Sh., Borisov E. V., Polozov I. A., Masaylo D. V., Grigoryev A. V. Anisotropy of mechanical properties of products manufactured by selective laser melting of powder materials. Izvestiya vysshikh uchebnykh zavedeniy. Poroshkovaya metallurgiya i funktsionalnye pokrytiya. 2016. No. 3. pp. 4–11. 8. Kabaldin Yu. G., Anosov М. S., Ryabov D. А., Kolchin P. V., Shatagin D. A., Kisilev A. V. Study of the influence of 3D printing modes on the structure and cold resistance of 08G2S steel. Vestnik Magnitogorskogo gosudarstvennogo tekhnicheskogo universiteta imeni G. I. Nosova. 2021. Vol. 19. No. 4. pp. 64–70. DOI: 10.18503/1995-2732-2021-19-4-64-70 9. Terentyev V. F., Korableva S. A. Fatigue of metals. Moscow: Nauka, 2015. 484 p. 10. Ledenyov V. I., Skrylyov V. I. Accidents, destruction and damage. Causes, consequences and warnings: monograph. Tambov: Izdatelstvo ТGTU. 2017. 440 p. 11. Chernyavskiy А. О. Development of surface crack systems under mechanical loading. Vestnik YuUrGU. Seriya: Matematika. Mekhanika. Fizika. 2003. No. 8. pp. 78–82. 12. Gonchar A. V., Anosov M. S., Ryabov D. A. Estimation of structural degradation of the heat affected zone of the welded joint under fatigue. Russian Journal of Nondestructive Testing. 2022. Vol. 58, Iss. 9, pp. 790–799. 13. Kuznetsov P. V., Petrakova I. V., Shrayber Yu. Fractal dimension as a fatigue characteristic of metal polycrystals. Fizicheskaya Mezomekhanika. 2004. Vol. 7. No. 1. pp. 389–392. 14. Kim V. A., Mokritskii B. Y., Morozova A.V. Multifractal analysis of microstructures after laser treatment of steel. Solid State Phenomena. 2020. Vol. 299SSP. pp. 926–932. 15. Non-destructive testing: handbook. Edited by V. V. Klyuev. Vol. 3. Moscow: Mashinostroenie, 2004. 864 p. 16. Muravyeva O., Muravyev V., Volkova L., Kazantseva N., Nichipuruk A., Stashkov A. Acoustic properties of low-carbon 2% Mn-doped steel manufactured by laser powder bed fusion technology. Additive Manufacturing. 2022. Vol. 51. 102635. DOI: 10.1016/j.addma.2022.102635 17. Naumenko А. P. Introduction to technical diagnostics and non-destructive testing: textbook. Omsk: Izdatelstvo OmGTU, 2019. 152 p. 18. Tolmachev I. I. Magnetic methods of control and diagnostics: textbook. Tomsk: Izdatelstvo TPU, 2008. 216 p. 19. Kabaldin Yu. G., Khlybov A. A., Shatagin D. A., Anosov M. S., Ryabov D. A. Evaluation of the cold resistance of samples from 09G2S steel obtained using 3D printing technology by electric arc welding on a CNC machine. Vestnik IzhGTU imeni М. Т. Kalashnikova. 2020. Vol. 23. No. 2. pp. 16–23. DOI: 10.22213/2413-1172-2020-2-16-23 20. GOST 1497–84. Metals. Methods of extension testing. Introducede: 01.01.1986. 21. GOST 25.502–79. Methods of mechanical testing of metals. Fatigue testing methods. Introduced: 01.01.1981. 22. Gonchar А. V., Mishakin V. V. Investigation of the fatigue fracture process of low-carbon steel 15YuTA by non-destructive control methods. Trudy NGTU imeni R. Е. Alekseeva. 2011. No. 3. pp. 235–243. 23. Maksimov А. B., Gulyaev М. V., Erokhina I. S. Influence of damageability of low-alloy steels on physical and mechanical properties. Izvestiya vuzov. Chernaya metallurgiya. 2017. Vol. 60. No. 5. pp. 364–368. 24. Gorkunov E. S., Smirnov S. V., Zadvorkin S. М. Relationship between stress-strain state parameters and magnetic characteristics of carbon steels. Fizika metallov i metallovedenie. 2007. No. 3. pp. 1–6. |