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Rolling and Other Metal Forming Processes
Название Development of a method and equipment for testing materials for alternating bending during piercing in screw rolling mills
DOI 10.17580/chm.2020.11.04
Автор B. A. Romantsev, A. S. Aleshchenko, E. R. Guseynov, V. Yu. Tsyutsyura
Информация об авторе

National University of Science and Technology “MISiS” (Moscow, Russia):

B. A. Romantsev, Dr. Eng., Prof., Metal Forming Dept.
A. S. Aleshchenko, Cand. Eng., Head of Metal Forming Dept.
E. R. Guseynov, Engineer, Metal Forming Dept.

 

Volgograd State Technical University (Volgograd, Russia):

V. Yu. Tsyutsyura, Senior Lecturer, “Materials Technology” Dept., E-mail: Tsyutsyura.Vladimir@gmail.com

Реферат

Hot-rolled pipe production is complicated process of metal treatment by pressure and as a rule it has three operations of form charging: piercing, plugging, calibration or reduction. Each of them is characterized by complex schemes of stress-deformed state which promotes either formation or detection of various defects. Hot billet piercing at screw piercing rolling mill is widely used for pipe production for its high output and getting the shells of long length. But this operation of form charging of the metal is realized under the conditions of complicated stress-deformed state with cyclic alternating bending of all metal layers. Defects appearing on the outside surface of the shell such as captures and cracks is caused by plastic bending of shell wall, which is followed by alternating stress and deformation at the inlet and outlet cone of deformation zone in consequence of four times plastic bending of the wall. Shell wall is influenced by compression stress of the working rolls and guides. The less favorable scheme of stress state with tensile stress arises on the shell surface between the rolls and the guide. And as a results it generates and increases the defects on the outside surface. Theoretical and experimental research of deformation and speed conditions of billet piercing process for screw piercing rolling mill is presented in the work. Statistic data of production mills which operate in TRA 50-200 and TRA 159-426 lines were used for the research. All the calculations were done with use of applied software and test machine of original design with crank and connecting rod mechanism was constructed. The machine carries out the process of alternating plastic bending which is in maximum close to the conditions taking place in deformation zone of screw piercing rolling mill. Definition of rational configuration of sample shape was determined. Process plasticity of the metal of hot samples was analyzed as well. The samples were made from hot-rolled bars of different steel grades.

Ключевые слова Piercing, screw rolling piercing mill, uninterruptedly-casted billet, deformation cycle, surface defects, hot rolled pipes
Библиографический список

1. Romantsev B., Goncharuk A., Aleshchenko A., Gamin Y., Mintakhanov M. Development of multipass skew rolling technology for stainless steel and alloy pipes’ production. International Journal of Advanced Manufacturing Technology. 2018. Vol. 97, Iss. 9-12. pp. 3223–3230.
2. Zhang Z., Liu D., Zhang R., Yang Y., Pang Y., Wang J., Wang H. Experimental and numerical analysis of rotary tube piercing process for producing thick-walled tubes of nickel-base superalloy. Journal of Materials Processing Technology. 2020. 279.
3. Romantsev B. A., Goncharuk A. V., Aleshchenko A. S., Onuchin A. B., Gamin Y. V. Improving the Regimes Used for Hot-Rolling Tubes on Mini Tube-Production Unit 70–270. Metallurgist. 2015. Vol. 59, Iss. 5-6. pp. 386–389.
4. Kharitonov E. A., Romanenko V. P., Budnikov A. S. Sleeve deformation in a three-roller screw-rolling mill. Steel in Translation. 2016. Vol. 46, Iss. 3. pp. 180–185.
5. Kharitonov E. A., Romanenko V. P., Budnikov A. S. Pipe behavior in a three-roller screw-rolling mill. Steel in Translation. 2014. Vol. 44, Iss. 10. pp. 769–772.
6. Romanenko V. P., Stepanov P. P., Kriskovich S. M. Production of Hollow Railroad Axles by screw Piercing and Radial Forging. Metallurgist. 2018. Vol. 61, Iss. 9-10. pp. 873–877.
7. Zhao Y., Yu E., Yan T. Deformation analysis of seamless steel tube in cross rolling piercing process. The 2010 International Conference on Computer Design and Applications, ICCDA. 2010. Vol. 3. V320–V323.
8. Pravosudovich V. V., Sokurnko V. P., Danchenko V. N. et. al. Defects of steel ingots and rolled products: reference book. Moscow: Intermet Inzhiniring, 2006. 384 p.
9. Katsumura T., Ota H. Effect of rolling conditions on ductile fracture during piercing. AISTech (6–9 May 2019) Iron and Steel Technology Conference Proceedings. 2019. pp. 2035–2040.
10. Fanini S., Ghiotti A., Bruschi S. Prediction of the fracture due to Mannesmann effect in tube piercing. AIP Conference Proceedings. 2007. Vol. 908. pp. 1407–1412.
11. Bogatov A. A., Nukhov D. Sh., Panasenko O. A., Tolkushkin A. O. Physical simulation method of the fracture process during helical rolling of the billet. Chernye Metally. 2018. No. 10. pp. 6–10.
12. Skripalenko M. M., Romantsev B. A., Galkin S. P., Skripalenko M. N., Kaputkina L. M. et. al. Prediction of metal fracture during helical rolling in a twin-roll mill. Metallurg. 2017. No. 11. pp. 11–18.
13. Galkin S. P., Stebunov S. A., Aleshchenko A. S., Vlasov A. V., Patrin P. V. et. al. Modeling and experimental evaluation of ring fracture conditions during hot radial-displacement rolling. Metallurg. 2020. No. 3. pp. 55–61.
14. Vydrin A. V., Korol A. V. Determination of tuning parameters of the piercing process on twin-roll helical rolling mills. Vestnik Yuzhno-Uralskogo gosudarstvennogo universiteta. Seriya: Metallurgiya. 2016. Vol. 16. No. 2. pp. 74–80.
15. Chernyshev Yu. M., Bolotov A. V., Starogorodtsev V. P., Shamilov A. R., Chechulin Yu. B. Expanding the range and improving the quality of tubes on the 220 PRP piercing mill. Stal. 2018. No. 1. pp. 42–45.
16. Wójcik L., Pater Z. Physical simulation of the Mannesmann effect in the rolling process. Archives of Metallurgy and Materials. 2019. Vol. 64, Iss. 4. pp. 1369–1375.
17. Fomin A. V., Aleshchenko A. S., Maslenniko I. M. et al. Structural and Analytical Evaluation of the Strain Intensity and its Components During Cross-Roll Piercing at Different Feed Angles. Metallurgist. 2019. Vol. 63. pp. 477–486.
18. Zhang Z., Liu D., Yang Y., Wang J., Zheng Y. et al. Microstructure evolution of nickel-based superalloy with periodic thermal parameters during rotary tube piercing process. International Journal of Advanced Manufacturing Technology. 2019. Vol. 104, Iss. 9-12. pp. 3991–4006.
19. Aleshchenko A. S., Gamin Yu. V., Chan B. Kh., Tsyutsyura V. Yu. Wear features of working tools during piercing of high-temperature alloys. Chernye Metally. 2018. No. 8. pp. 63–70.
20. Sherkunov V., Korsakov A. The usage of 156 mm diameter continuous cast billets on “140” pipe-rolling plant for pipe production. Procedia Engineering. 2015. Vol. 129. pp. 886–890.
21. Smyrnov Y. N., Skliar V. A., Belevitin V. A., Shmyglya R. A., Smyrnov O. Y. Defect healing in the axial zone of continuous-cast billet. Steel in Translation. 2016. Vol. 46, Iss. 5. pp. 325–328.
22. Guo F., Wang X., Wang J., Misra R. D. K., Shang C. The significance of central segregation of continuously cast billet on banded microstructure and mechanical properties of section steel. Metals. 2020. Vol. 10, Iss. 1. P. 76.
23. Kuryatnikov A. V., Korol A. V., Korsakov A. A., Mikhalkin D. V., Gaslenko M. I. et. al. Determination of the temperature range of maximum technological plasticity of metal by the hot twisting method as applied to the process of cross-roll piercing. Proizvodstvo prokata. 2014. No. 2. pp. 20–27.
24. Potapov I. N., Polukhin P. I. Helical rolling technology. 2nd edition revised and enlarged. Moscow: Metallurgiya, 1990. 344 p.
25. Protasjev V. B., Ilyukhin S. Yu. Determination of the shape of billets obtained by cross-helical rolling, taking into account the laws of deformation. Abstracts of the All-Union conference “Metal deformation in multi-roll calibers”. (26–27 March 1987., Magnitogorsk). Magnitogorsk: MGTI, 1987. p. 10.
26. Romanenko V. P., Fomin A. V., Sevastyanov A. A., Nikulin A. N. A study of the mechanical properties of railroad wheels manufactured from a billet broached in a helical rolling mill. Metallurgist. 2018. Vol. 62, Iss. 5-6. pp. 568–573.

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