Inductor for Uniform Bulk Heat Treatment of Welded Butt Joints of Railway Rails

Article Preview

Abstract:

To improve the structure of metal in welded butt joints of railway rails produced by flash-butt welding and increase the reliability of butt joints, it is advisable to carry out their induction heat treatment using high-frequency currents. Solving the problem of a uniform bulk heating of weld metal of railway rails in a narrow area during its heat treatment remains an urgent task. The work describes the principle of designing an inductor without magnetic cores for carrying out a uniform bulk heat treatment of welded butt joints of railway rails for realization of favorable phase transformations of metal and normalization of its structure. The principle is based on the physical laws of propagation of electromagnetic fields and electric currents in the inductor and a rail. Based on the carried out investigations, an inductor was designed that has a variable shape along the perimeter of a rail and a variable distance from it, as well as a partial splitting of the inductor busbar for current parallelization, which provides a uniform bulk heating of a rail butt joint. Splitting of the inductor busbar allowed adjusting the propagation of currents in the inductor and a rail in such a way as to avoid overheating of a rail in its particular areas without a significant increase in the distance between the inductor and a rail, and respectively without a significant increase in the reactive power of the “inductor-product” system. The carried out experiments on heating the welded butt joint of a rail by the designed inductor showed the indices of uniformity and rate of its bulk heating, which are acceptable for heat treatment of rails both on the surface as well as in the depth of a rail in a narrow heating zone with providing the required temperature levels.

You might also be interested in these eBooks

Info:

Periodical:

Solid State Phenomena (Volume 313)

Pages:

72-81

Citation:

Online since:

January 2021

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2021 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] S.I. Kuchuk-Yatsenko, V.G. Krivenko, A.V. Didkovsky, Yu.V. Shvets, A.K. Kharchenko, A.N. Levchuk, Technology and new generation of equipment for flash butt welding of advanced high-strength rails for construction and reconstruction of high-speed railway lines, The Paton Welding Journal 6 (2012) 22-26.

DOI: 10.15407/tpwj2016.06.01

Google Scholar

[2] S.I. Kuchuk-Yatsenko, A.V. Didkovsky, V.I. Shvets, P.M. Rudenko, E.V. Antipin, Flash-butt welding of high-strength rails of nowadays production, The Paton Welding Journal 5-6 (2016) 4-12. https://doi.org/10.15407/tpwj2016.06.01.

DOI: 10.15407/tpwj2016.06.01

Google Scholar

[3] I.Z. Genkin, Heat treatment of rail welded joints in induction units, The Paton Welding Journal 9 (2003) 41-44.

Google Scholar

[4] X. Zhan, S.Wang, Research on the improvement of rail head hardening, Technology on railway. Proceedings of the Eastern Asia Society for Transportation Studies 5 (2005) 263-271.

Google Scholar

[5] L.A. Andreeva, V.M. Fedin, A.V. Bashlykov, A.I. Fimkin, V.A. Rezanov, Thermal hardening of rail welded joints in industrial transport. Promyshlennyj Transport XXI Vek, 1 (2013) 19-20 (in Russian).

Google Scholar

[6] V.M. Rezanov, A.V. Fedin, A.V. Bashlykov, Differential hardening of rail welded joints, Vestnik of the Railway Research Institute 2 (2013) 28-34 (in Russian).

Google Scholar

[7] L. Gong, L. Zhu, H.X. Zhou, Effect on hardness and microstructures of rail joint with ultra-narrow gap arc welding by post weld heat treatment, Key Engineering Materials 737 (2017) 90-94. https://doi.org/10.4028/www.scientific.net/KEM.737.90.

DOI: 10.4028/www.scientific.net/kem.737.90

Google Scholar

[8] R.S. Gubatyuk, Heat treatment of welded joints of high-strength railway rails (Review), The Paton Welding Journal 2 (2019) 41-48. https://doi.org/10.15407/tpwj2019.02.07.

DOI: 10.15407/tpwj2019.02.07

Google Scholar

[9] O.S. Prokofiev, R.S. Gubatyuk, O.S. Pismennyi, S.V. Rymar, Ye.O. Panteleymonov, Development of inductors for bulk and surface heat treatment of welded butt joints of railway rails, The Paton Welding Journal 5 (2020) 41-48. https://doi.org/10.37434/tpwj2020.05.07.

DOI: 10.37434/tpwj2020.05.07

Google Scholar

[10] P. Taras, V. Fireteanu, Inductors for continuous induction heating of rails, Induktsionnyj Nagrev 4 (2010) 21-26 (in Russian).

Google Scholar

[11] T.S. Skoblo, V.E. Sapozhkov, N.M. Aleksandrova, A.I. Sidashenko, Quality of thermally-hardened rails and rail bases. Investigations. Theory. Equipment. Technology. Operation, ed. by T.S. Skoblo, LLC Shchedra Sadyba Plus, Kharkov, 2014 (in Russian).

Google Scholar

[12] E.A. Pantelejmonov, A.A. Pismenny, Inductor for continuous heating in hardening of railway rail head, The Paton Welding Journal 3-4 (2015) 74-76. https://doi.org/10.15407 /tpwj2015.04.11.

DOI: 10.15407/tpwj2015.04.11

Google Scholar

[13] A.N. Shamov, V.A. Bodazhkov, Design and operation of high-frequency installations, Mashgiz, Moscow, Leningrad, 1963 (in Russian).

Google Scholar

[14] DSTU 4344:2004: Normal rails for full-gauge railway. General specifications, Gospotrebstandart Ukrainy, Kyiv, 2005 (in Ukrainian).

Google Scholar

[15] V.I. Panov, Evaluation of technological heredity of metal of solid structures before their repair welding, Svarshchik 1 (2018) 9-11 (in Russian).

Google Scholar

[16] Information on http://magnit-m.ru/catalog/ustanovki-induktsionnogo-nagreva-tvch/ termoobrabotka-svarnykh-relsovykh-stykov/uin-001-100-r-tsm.

Google Scholar

[17] Information on http://magnit-m.ru/catalog/ustanovki-induktsionnogo-nagreva-tvch/termoobrabotka-svarnykh-relsovykh-stykov/uin-001-100-rt-p.

Google Scholar

[18] Zh. Xinwei, W. Shuqing, Sh. Yangdao, L. Li, Zh. Guo, G. Zhenkun, et al., Non-contact type opening closing split induction heating device for rail welded joints, China Patent CN 201510540567. (2015).

Google Scholar

[19] D. Wei, S. Hongtu, L. Li, L. Zhenhua, W. Guishan, G. Zhenkun, G. Wenhui, China Patent CN 201120285569. (2012).

Google Scholar

[20] A.A. Slukhotsky, S.G. Ryskin, Inductors for induction heating, Energiya, Leningrad, 1974 (in Russian).

Google Scholar