Журналы →  Chernye Metally →  2024 →  №6 →  Назад

Production of pipes
Название Bending of bimetallic steel sheet on three-roll mills in the production of large diameter tubes
DOI 10.17580/chm.2024.06.09
Автор V. N. Shinkin
Информация об авторе

National University of Science and Technology "MISIS", Moscow, Russia

V. N. Shinkin, Dr. Phys.-Math., Prof., Dept. of Physics, e-mail: shinkin-korolev@yandex.ru

Реферат

The three-roll bending mills are used for the production of the cylindrical, oval and conical products by bending sheet metal. The operation principle of the three-roll bending mills is based on the oppositely directed rotation of the rolls, due to which the sheet material is captured and bent along a given radius. During the forming process, the rolls perform a reversible movement, while the upper roll rise and go down to adjust the diameter of the billet being formed. The durability of the large-diameter thick-walled steel tubes on the main gas-and-oil pipelines significantly depends on the quality and strength of the insulation of the outer and inner tubes’ surfaces. Such tubes have a durable external anticorrosive three-layer polyethylene or polypropylene coating. To insulate the inner surface of the large-diameter tubes, for example, it is possible (prospectively) to apply a thin layer of anti-corrosion steel to the inner surface of the tube, which is not destroyed when pumping gas and oil, containing acidic aggressive components. The service life of such thick-walled bimetallic (clad) large-diameter steel tubes with an internal coating of anti-corrosion steel with a thickness of about 2–3 mm is about 40 years. Such tubes are produced, for example, on the Haeusler three-roll mills from a bimetallic sheet, the basis of which is highstrength tubular steel (substrate) with a thickness of 17–32 mm of strength class K55–K65, coated with a layer of anti-corrosion steel with a thickness of about 2–3 mm. Rolling of a bimetallic sheet on the three-roll mills is qualitatively different from rolling of a monometallic sheet on the threeroll mills. A mathematical model for calculating the residual curvature of a bimetallic sheet after its elastic-plastic bending on the three-roll mills is constructed below.

Ключевые слова Bimetallic steel sheet, elastic-plastic bending, residual curvature of sheet, three-roll sheet-bending mills, large-diameter tubes
Библиографический список

1. Shinkin V. N. Residual curvature of bimetallic sheet at elastoplastic bending. Chernye metally. 2023. No. 7. рр. 67–70.
2. Shinkin V. N. Moment at elastic-plastic bending of steel sheet. Part 2. Cubic approximation of steel’s hardening zone. Chernye Metally. 2022. No. 2. pp. 15–18.
3. Adigamov R. R., Baraboshkin K. A., Mishnev P. A., Karlina A. I. Development of rolling procedures for pipes of K55 strength class at the laboratorial mill. CIS Iron and Steel Review. 2022. Vol. 24. pp. 60–66.
4. Wang W. B. Stability analysis of cross-section of double-row large-diameter pipeline based on BIM technology. International Journal of Industrial and Systems Engineering. 2021. Vol. 39, No. 2. pp. 162–175.
5. El Kouifat M. K., Zniker H., Ouaki B. Investigation of the damage of the welded stainless steel tube used in the solar power plants. Journal of Failure Analysis and Prevention. 2023. Vol. 23. pp. 1675–1683.
6. Andrianov I., Feoktistov S. Bearing capacity of spherical thick-walled shell taking into account compressibility and nonlinear plasticity. Materials Physics and Mechanics. 2022. Vol. 50, No. 3. pp. 410–419.
7. Arslan E., Mack W. Effects of parameter uncertainties on the forecasted behavior of thermomechanically loaded thick-walled functionally graded spherical structures. Acta Mechanica. 2022. Vol. 233, No. 2. pp. 1–16.
8. Nguyen L., Buhl J., Israr R., Bambach M. Analysis and compensation of shrinkage and distortion in wire-arc additive manufacturing of thin-walled curved hollow sections. Additive Manufacturing. 2021. Vol. 47. 102365.
9. Belskiy S. M., Kovalev D. A., Pimenov V. A., Mazur I. P., Shopin I. I., Dagman M. A. Testing of the technology of hot rolling of transformer steel strips with edge-drop compensation using hot-rolling mill (model 2000) at “Novolipetsk Steel”. Metallurgist. 2023. Vol. 67, No. 5-6. pp. 732–737.
10. Safronov A. A., Shopin I. I., Belskiy S. M. Influence of the variation of mechanical properties and thickness in hot-rolled strips of electrical anisotropic steel to stabilize cold rolling. Metallurgist. 2023. Vol. 66, No. 11-12. pp. 1557–1561.
11. Wang Y., Shen H., Wu J., Yan H., Xu S. Reinforcement-learning-based composite optimal control for looper hydraulic servo systems in hot strip rolling. IEEE/ASME Transactions on Mechatronics. 2023. Vol. 28, No. 5. pp. 2495–2504.
12. Marchenko E. S., Baigonakova G. A., Garin A. S., Yasenchuk Yu. F. Peculiarities of deformation and destruction of porous titanium nickelide alloys at stretching, compression and bending. Non-Ferrous Metals. 2022. No. 2. pp. 73–77.
13. Li S., Wei C., Long Y. Deformation analysis of engineering reinforcement straightening based on Bauschinger effect. International Journal of Steel Structures. 2020. Vol. 20. pp. 1–12.
14. Skripalenko M. M., Karpov B. V., Rogachev S. O., Kaputkina L. M. et al. Simulation of the kinematic condition of radial shear rolling and estimation of its influence on a titanium billet microstructure. Materials. 2022. Vol. 15, No. 22. 7980.
15. Skripalenko M. M., Rogachev S. O., Romantsev B. A., Galkin S. P. et al. Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling. Materials. 2022. Vol. 15, No. 3. 995.
16. Bathelt L., Scurk M., Djakow E., Henke C., Trachtler A. Novel straightening-machine design with integrated force measurement for straightening of high-strength flat wire. Sensors. 2023. Vol. 23, No. 22. 9091.

Language of full-text русский
Полный текст статьи Получить
Назад