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Additive Technologies and Powder Metallurgy
Название Study of influence of a longitudinal magnetic field on formed material density during additive shaping of products by an electric arc in a protective gas environment
DOI 10.17580/chm.2024.02.11
Автор V. V. Kuts, A. V. Oleshitsky, A. N. Grechukhin, I. Y. Grigorov
Информация об авторе

Southwest State University, Kursk, Russia
V. V. Kuts, Dr. Eng., Prof., Dept. of Mechanical Engineering Technologies and Equipment, e-mail: kuc-vadim@yandex.ru
A. V. Oleshitsky, Lecturer, Dept. of Mechanical Engineering Technologies and Equipment, e-mail: oav46@yandex.ru
A. N. Grechukhin, Cand. Eng., Associate Prof., Dept. of Mechanical Engineering Technologies and Equipment, e-mail: agrechuhin@mail.ru
I. Yu. Grigorov, Cand. Eng., Associate Prof., Dept. of Mechanical Engineering Technologies and Equipment, e-mail: grighorov.ighor@mail.ru

Реферат

The paper presents the results of a study of changes in the microstructure and density of samples formed by an additive method by an electric arc with an axial feed of a steel filler wire in a protective gas environment (GMAW technology) with additional exposure to an external longitudinal magnetic field on the electric arc. The production of samples was carried out on a 5-coordinate additive installation created on the basis of a CNC machine. Surfacing was carried out in the following modes: polarity – straight; voltage 17.5 V; gas pressure 0.15 MPa; electrode reach 10 mm; the feed rate of the wire is 4256.22 mm/min. At the same time, a wire with a diameter of 0.75 mm made of Sv-08G2S material was used. An additional magnetic field was created by an inductor when it was connected to an alternating current with a voltage of 220 V with a frequency of 50 Hz, the value of the measured magnetic induction in the formation zone of the welding bath did not exceed 12 MT. Analysis of the microstructure showed that the effect of a longitudinal magnetic field made it possible to obtain a ferrite-pearlite structure homogeneous over the entire deposited surface of the samples, without pronounced ferrite regions. The density of the deposited samples was determined by measuring their mass and volume. The mass of the samples was measured on the scales of the LE225D model, and the volume of the samples was determined by measuring the mass of the displaced distilled water when they were suspended on a thread. The influence of the longitudinal magnetic field on the change in the density of the samples was evaluated using single-factor analysis of variance. The analysis showed that with additional exposure to an electric arc by an external longitudinal magnetic field, the density of the deposited samples has a statistically significant increase of 0.3 %.
The work was carried out within the framework of the development program of the Federal State Budgetary Educational Institution of Higher Education "Southwest State University" of the project "Priority 2030".

Ключевые слова Additive shaping, deposition, electric arc, magnetic field, microstructure, density, dispersion analysis
Библиографический список

1. Kurakin A. I., Strukov I. G., Skoblikov Ya. P. et al. Prediction of layer geometry in arc additive P-GMAW production from aluminum alloys. Morskie intellektualnye tekhnologii. 2023. No. 2-1 (60). pp. 245–252. DOI: 10.37220/MIT.2023.60.2.030
2. Oskolkov A. A., Matveev E. V., Bezukladnikov I. I. et al. Advanced technologies for additive manufacturing of metal products. Vestnik Permskogo natsionalnogo issledovatelskogo politekhnicheskogo universiteta. Mashinostroenie, materialovedenie. 2018. Vol. 20. No. 3. pp. 90–105. DOI: 10.15593/2224-9877/2018.3.11
3. Jatmoko, Hanifah A., Pratama M. A., Rohimsyah F. M. Study of the effect GMAW and SMAW welding combination with WAAM method. SPECTA Journal of Technology. 2023. Vol. 7. pp. 549–555. DOI: 10.35718/specta.v7i2.938
4. Jafari D., Vaneker T., Gibson I. Wire and arc additive manufacturing: Opportunities and challenges to control the quality and accuracy of manufactured parts. Materials & Design. 2021. Vol. 202. 109471. DOI: 10.1016/j.matdes.2021.109471
5. Henckell P., Gierth M., Ali Y. et al. Reduction of energy input in wire arc additive manufacturing (WAAM) with gas metal arc welding (GMAW). Materials. 2020. Vol. 13, Iss. 11. 2491. DOI: 10.3390/ma13112491
6. Razmyshlyaev A. D., Ageeva M. V., Lavrova E. V. Refinement of the metal structure during arc surfacing under the influence of a longitudinal magnetic field. Avtomaticheskaya svarka. 2019. No. 2. pp. 25–28. DOI: 10.15407/as2019.02.03
7. Razmyshlyaev A. D., Mironova M. V., Leshchenko A. I. Improving the quality of butt joints during arc welding in a longitudinal magnetic field. Vestnik Priazovskogo gosudarstvennogo tekhnicheskogo universiteta. Seriya: Tekhnicheskie nauki. 2012. No. 24. pp. 190–196.
8. Mironova M. V. Influence of longitudinal magnetic field induction on the penetration of the base metal during arc surfacing. Vestnik Priazovskogo gosudarstvennogo tekhnicheskogo universiteta. Seriya: Tekhnicheskie nauki. 2012. No. 25. pp. 141–146.
9. Chernykh A. V. Features of melting and motion of electrode metal during arc welding in the external constant longitudinal magnetic field. Nauchny vestnik Voronezhskogo gosudarstvennogo arkhitekturno-stroitelnogo universiteta. Stroitelstvo i arkhitektura. 2012. No. 4 (28). pp. 103–113.
10. Razmyshlyaev A. D., Deli A. A., Mironova M. V. The influence of a longitudinal magnetic field on the productivity of wire melting during electric arc submerged surfacing. Avtomaticheskaya svarka. 2007. No. 6 (650). pp. 31–35.
11. Sharma P., Chattopadhyaya S., Singh N., Kumar A. et al. Recent developments in the design, development, and analysis of the influence of external magnetic-field on gas-metal arc welding of non-ferrous alloys: review on optimization of arc-structure to enhance the morphology, and mechanical properties of welded joints for automotive applications. Heliyon. 2022. Vol. 8. e11812. DOI: 10.1016/j.heliyon.2022.e11812
12. López F. F. The effect of applying magnetic fields during welding AISI-304 stainless steel on stress corrosion cracking. International Journal of Electrochemical Science. 2021. Vol. 16. 210338. DOI: 10.20964/2021.03.31
13. Xiao L., Fan D., Huang J., Tashiro S., Tanaka M. 3D numerical study of external axial magnetic field-controlled high-current GMAW metal transfer behavior. Materials. 2020. Vol. 13. 5792. DOI: 10.3390/ma13245792
14. Rosado-Carrasco J., Krupp U., López V., Giertler A. et al. Effect of a magnetic field applied during fusion welding on the fatigue damage of 2205 duplex stainless steel joints. International Journal of Fatigue. 2018. Vol. 121. DOI: 10.1016/j.ijfatigue.2018.12.022
15. Razmyshlyaev A. D., Ageeva M. V. The influence of a transverse magnetic field on the structure of the weld metal during electric arc welding of steel 12Kh18N9Т. Innovative technologies in mechanical engineering: collection of proceedings of the IX International Scientific and Practical Conference, Yurga, May 24–26, 2018. Yurga : National Research Tomsk Polytechnic University, 2018. pp. 8–11.
16. Razmyshlyaev A. D., Yarmonov S. V., Vydmysh P. A. Influence of the transverse magnetic field frequency on the productivity of melting electrode wire during submerged arc surfacing. Vestnik Priazovskogo gosudarstvennogo tekhnicheskogo universiteta. Seriya: Tekhnicheskie nauki. 2014. No. 28. pp. 140–144.
17. Razmyshlyaev A. D., Mironova M. V., Yarmonov S. V., Vydmysh P. A. Features of penetration of the base metal during arc surfacing under the influence of a transverse magnetic field. Vestnik Priazovskogo gosudarstvennogo tekhnicheskogo universiteta. Seriya: Tekhnicheskie nauki. 2012. No. 24. pp. 185–190.
18. Razmyshlyaev A. D., Mironova M. V., Kuzmenko K. G., Vydmysh P. A. Productivity of melting electrode wire during submerged arc surfacing under the influence of a transverse magnetic field. Avtomaticheskaya svarka. 2011. No. 5 (697). pp. 48–51.
19. Bao Y., Sun H., Cai X., Lin S., Chen C. Effect of external magnetic field on the forming, microstructure and property of TC4 titanium alloy during the directed energy deposition arc additive manufacturing. Crystals. 2023. Vol. 13. pp. 235. DOI: 10.3390/cryst13020235
20. Hu Y., Chen F., Cao S., Fan Y., Xie R. Preparation and characterization of CMT wire arc additive manufacturing Al–5 % Mg alloy depositions through assisted longitudinal magnetic field. Journal of Manufacturing Processes. 2023. Vol. 101. pp. 576–588. DOI: 10.1016/j.jmapro.2023.05.104
21. Shan Z., Wang Y., Song H., Huang J. et al. Effect of auxiliary longitudinal magnetic field on overlapping deposition of wire arc additive manufacturing. The International Journal of Advanced Manufacturing Technology. 2023. Vol. 125. pp. 1383–1401. DOI: 10.1007/s00170-022-10609-1
22. Zhao H., Li Y., Sun Y., Dong Z. et al. Effect of external magnetic field on morphology and microstructure of wire arc additive manufacture. Journal of Materials Science. 2022. Vol. 58. pp. 1769–1782. DOI: 10.21203/rs.3.rs-1234284/v1
23. Zhao W., Zhao Y., Zhang X., Chen J., Ou W. Comparative investigation of wire arc additive manufacturing of Al–5 % Mg alloy with and without external alternating magnetic field. The International Journal of Advanced Manufacturing Technology. 2022. Vol. 119. pp. 2571–2587. DOI: 10.1007/s00170-021-08466-5
24. Wang Y., Chen X., Shen Q., Su C. et al. Effect of magnetic Field on the microstructure and mechanical properties of Inconel 625 superalloy fabricated by wire arc additive manufacturing. Journal of Manufacturing Processes. 2021. Vol. 64. pp. 10–19. DOI: 10.1016/j.jmapro.2021.01.008
25. Veiga F., Suarez A., Aldalur E., Dhawale T. Effect of the metal transfer mode on the symmetry of bead geometry in WAAM aluminum. Symmetry. 2021. Vol. 13. 1245. DOI: 10.3390/sym13071245
26. GOST 4461–77. Reagents. Nitric acid. Specifications. Introduced: 01.01.1979.

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