Features in the formation of the structural state of low-carbon micro-alloyed steels after eletron beam welding
DOI:
https://doi.org/10.15587/1729-4061.2021.234783Keywords:
electron beam welding, structural state, low-carbon micro-alloyed steels, welded joint zonesAbstract
Welding thermomechanically-strengthened materials is accompanied with certain difficulties in terms of loss of strength characteristics in the zone of thermal influence. This issue can be resolved by using the technological welding schemes that include fusion of materials in a narrow contact area. One such technological scheme is electron beam welding, which is currently widely used to fabricate structures from refractory and chemically active materials. One of the main advantages of the electron beam welding process is a small quantity of heat input, which leads to the formation of narrow zones of melting and thermal influence and, as a result, minor deformities in the structure of the material. The welded joint can structurally be divided into several zones, which differ in the morphological characteristics of the structure. The most interesting, in terms of ensuring the quality of the joint, are the boundaries between the zones. It has been shown that the use of local heating sources, which is the case at electron beam welding, leads to the migration of the boundaries of grains. As a result, clear intersections, fusion lines, form at the boundaries between zones of the welded joint. The formation of the structural state of a welded joint is predetermined by the simultaneous course of several processes. First, a crystallization from the liquid state – the formation of a welded joint structure, as well as the boundary between a welded joint and the zone of thermal influence. Second, the phase-structural transformations in the solid state – a thermal impact zone, the boundary between a thermal impact zone and the main metal. Given this, one should note that the geometry and quality of joints at electron beam welding are more interrelated than in other welding techniques. Thus, one of the main parameters that ensure the quality of a welded joint is the structural state of the material that forms during welding
References
- Bol'shakov, V. I., Razumova, O. V. (2008). Ispol'zovanie staley povyshennoy prochnosti v novom vysotnom stroitel'stve i rekonstruktsii. Dnepropetrovsk: Porogi, 216.
- Zherbin, M. M., Bol'shakov, V. I. (2000). Novaya kontseptsiya modernizatsii i nadstroyki suschestvuyuschih maloetazhnyh zhilyh zdaniy do lyubogo kolichestva etazhey. Dnepropetrovsk: Gaudeamus, 50.
- Bailey, N., Wright, M. D. (1993). Weldability of High Strength Steels. Welding and Metal Fabrication, 61 (8), 389–396.
- Paton, B. E. (1999). Problemy svarki na rubezhe vekov. Avtomaticheskaya svarka, 1, 4–14.
- Laukhin, D., Pozniakov, V., Beketov, O., Rott, N., Shchudro, A. (2020). Analysis of the Effects of Welding Conditions on the Formation of the Structure of Welded Joints of Low-Carbon Low-Alloy Steels. Key Engineering Materials, 844, 146–154. doi: https://doi.org/10.4028/www.scientific.net/kem.844.146
- Gubenko, S. (2015). Nemetallicheskie vklyucheniya i prochnost' staley. Fizicheskie osnovy prochnosti staley. Dnepropetrovsk: Palmarium academic publishing, 471.
- Loboda, P., Zvorykin, C., Zvorykin, V., Vrzhyzhevskyi, E., Taranova, T., Kostin, V. (2020). Production and Properties of Electron-Beam-Welded Joints on Ti-TiB Titanium Alloys. Metals, 10 (4), 522. doi: https://doi.org/10.3390/met10040522
- Fedosov, A. V., Karpovych, E. V. (2015). Advanced aspects of electron-beam welding for high-strength titanium alloys. Aviatsionno-kosmicheskaya tekhnika i tekhnologiya, 1 (118), 16–22.
- Kostin, V., Taranova, T., Zvorykin, V. (2021). Fracture of Electron Beam Welding Joints of Titan Alloys. Solid State Phenomena, 316, 333–339. doi: https://doi.org/10.4028/www.scientific.net/ssp.316.333
- Nazarenko, O. K., Grabin, V. F., Lokshin, V. E. (1974). Fiziko-metallurgicheskie osobennosti elektronnoluchevoy svarki sredneuglerodistyh staley. Avtomaticheskaya svarka, 4, 1–4.
- Sharonov, N. I. (2010). Primenenie elektronno-luchevoy svarki v turbostroenii. Nauchno-tekhnicheskie vedomosti SPbPU, 3, 143–149.
- Bulatnikova, O. V., Mikhalchenkov, A. V. (2017). Specific defects in welded compounds and methods of their prevention. Aktual'nye problemy aviatsii i kosmonavtiki. Sektsiya «Svarka letatel'nyh apparatov i rodstvennye tekhnologii», 1, 389–391.
- Bulatnikova, O. V., Cheburashkin, S. A. (2016). Characteristic of process of electron beam welding. Aktual'nye problemy aviatsii i kosmonavtiki, 1, 419–421.
- Grigoriev, V. V., Muravyev, V. I., Bakhmatov, P. V. (2019). Changes in the structure and microhardness of permanent joints of load-bearing structures made of titanium alloy VT23 by electron beam welding. Proceedings of Higher Educational Institutions. Маchine Building, 1 (706), 20–28. doi: https://doi.org/10.18698/0536-1044-2019-1-20-28
- Fouad, Y., Marouani, H. (2019). Fracture characteristics of dissimilar electron-beam welded joints between Cr-Mo steel and austenitic steel AISI 304. AIP Advances, 9 (4), 045211. doi: https://doi.org/10.1063/1.5090401
- Laukhin, D., Beketov, O., Rott, N., Schudro, A. (2019). The Elaboration of Modernized Technology of Controlled Rolling Directed at the Formation of High Strengthening and Viscous Qualities in HSLA Steel. Solid State Phenomena, 291, 13–19. doi: https://doi.org/10.4028/www.scientific.net/ssp.291.13
- DeArdo, A. (1995). Modern Thermomechanical Processing of Microalloyed Steel: A Physical Metallurgy Perspective. Proceedings of Microalloying 95 Conference. Pittsburgh, 15–33.
- Beketov, A. V., Bol'shakov, V. I., Kuksenko, V. I., Suhomlin, G. D., Lauhin, D. V., Semenov, T. V. (2010). Obrazovanie i rost perlitnyh koloniy. Visnyk Prydniprovskoi derzhavnoi akademii budivnytstva ta arkhitektury, 1, 29–35.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2021 Дмитрий Вячеславович Лаухин, Валерий Дмитриевич Позняков, Валерий Анатольевич Костин, Александр Вадимович Бекетов, Наталья Александровна Ротт, Юлия Сергеевна Слупская, Лилия Николаевна Дадиверина, Ольга Валентиновна Любимова-Зинченко
This work is licensed under a Creative Commons Attribution 4.0 International License.
The consolidation and conditions for the transfer of copyright (identification of authorship) is carried out in the License Agreement. In particular, the authors reserve the right to the authorship of their manuscript and transfer the first publication of this work to the journal under the terms of the Creative Commons CC BY license. At the same time, they have the right to conclude on their own additional agreements concerning the non-exclusive distribution of the work in the form in which it was published by this journal, but provided that the link to the first publication of the article in this journal is preserved.
A license agreement is a document in which the author warrants that he/she owns all copyright for the work (manuscript, article, etc.).
The authors, signing the License Agreement with TECHNOLOGY CENTER PC, have all rights to the further use of their work, provided that they link to our edition in which the work was published.
According to the terms of the License Agreement, the Publisher TECHNOLOGY CENTER PC does not take away your copyrights and receives permission from the authors to use and dissemination of the publication through the world's scientific resources (own electronic resources, scientometric databases, repositories, libraries, etc.).
In the absence of a signed License Agreement or in the absence of this agreement of identifiers allowing to identify the identity of the author, the editors have no right to work with the manuscript.
It is important to remember that there is another type of agreement between authors and publishers – when copyright is transferred from the authors to the publisher. In this case, the authors lose ownership of their work and may not use it in any way.