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Tube and Pipe Production
Название Springback coefficient of the main pipelines' steel large-diameter pipes under elastoplastic bending
DOI 10.17580/cisisr.2017.02.06
Автор V. N. Shinkin
Информация об авторе

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

V. N. Shinkin, Dr. Sci. (Phys.-Math.), Prof., shinkin-korolev@yandex.ru

Реферат

The length of modern main gas-oil pipelines often reaches several thousand kilometers, and the pipelines are composed from an enormous number of steel large-diameter pipes. The production of the single-joint longitudinally welded steel pipes for main gas pipelines with a length of from 12 to 18 m, a diameter from 1020 to 1420 mm, a wall thickness from 19 to 48 mm from the steels of the strength classes from К38 to K65 is carried out in Russia at JSC “Vyksa Steel Works”, JSC “Izhora Pipe Mill” and JSC “Chelyabinsk Pipe-Rolling Plant”, as well as abroad at the pipe plants of the United States, Germany, China and India. During the ground laying of main pipelines in the trenches on the areas with a rugged terrain (“Yamal-Center”, “Sakhalin-1”, “Sakhalin-2”, “Eastern Siberia - Pacific Ocean”) or the submarine pipeline laying on the seabed (“Nord Stream”, “Turkish Stream”) the main large-diameter pipes experience the significant elastic and plastic bending deformations, which can lead to the industrial defects of main pipelines and the walls of main pipes. After the land and underwater laying, the main pipelines’ pipes springback and fully or partially become straight, however, under an elastoplastic bending their residual longitudinal curvature is significantly different from zero. Under an excessive residual curvature, the main pipelines may have defects that are not compatible with the operational rules for pumping of gas and oil under a high-line pressure (from 1.2 to 10 MPa), or even to collapse. Disaster on the main pipelines often have the difficult removable environmental consequences on a global scale. Therefore, it is important to know the springback coefficient of the pipe during bending, allowing to calculate the residual curvature of the pipe after bending. In this paper we have obtained the springback coefficient of the pipe under bending for an elastoplastic medium with a linear hardening, depending on the diameter and the wall thickness of the pipe, the yield strength, the young's modulus and the hardening modulus of pipe’s material. The research results can be used in the metallurgical and machine-building factories as well as in the construction of the gas-oil main pipelines.

Ключевые слова Large-diameter welded steel pipe, bending of pipe, bending moment, springback coefficient, elasto-plastic deformation, main gas-oil pipelines
Библиографический список

1. Calladine C. R. Plasticity for engineers. Theory and applications. Woodhead Publishing, 2000. 328 p.
2. Chakrabarty J. Theory of plasticity. Butterworth-Heinemann, 2006. 896 p.
3. Bhattacharyya D. Composite sheet forming. Vol. 11. Elsevier Science, 1997. 530 p.
4. Predeleanu M., Gilormini P. Advanced methods in materials processing defects. Vol. 45. Elsevier Science, 1997. 422 p.
5. Abe T., Tsuruta T. Advances in engineering plasticity and its applications (AEPA ‘96). Pergamon, 1996. 938 p.
6. Muhin U., Belskij S., Makarov E. Simulation of accelerated strip cooling on the hot rolling mill run-out roller table. Frattura ed Integrita Strutturale. 2016. Vol. 37. pp. 305−311.
7. Muhin U., Belskij S., Makarov E. Application of betweenstand cooling in the production hot-rolled strips. Frattura ed Integrita Strutturale. 2016. Vol. 37. pp. 312−317.
8. Muhin U., Belskij S. Study of the influence between the strength of antibending of working rolls on the widening during hot rolling of thin sheet metal. Frattura ed Integrita Strutturale. 2016. Vol. 37. pp. 318−324.
9. Klocke F. Manufacturing processes 4. Forming. Springer, 2013. 516 p.
10. Kang S.-J. Sintering. Densification, grain growth and microstructure. Butterworth-Heinemann, 2004. 280 p.
11. Banabic D. Multiscale modeling in sheet metal forming. Springer, 2016. 405 p.
12. Hu J., Marciniak Z., Duncan J. Mechanics of Sheet Metal Forming. Butterworth-Heinemann, 2002. 211 p.
13. Shinkin V. N. The mathematical model of the thick steel sheet flattening on the twelve-roller sheet-straightening machine. Massage 1. Curvature of sheet. CIS Iron and Steel Review. 2016. Vol. 12. pp. 37−40.
14. Shinkin V. N. The mathematical model of the thick steel sheet flattening on the twelve-roller sheet-straightening machine. Massage 2. Forces and moments. CIS Iron and Steel Review. 2016. Vol. 12. pp. 40−44.
15. Shinkin V. N. Calculation of steel sheet’s curvature for its flattening in the eight-roller straightening machine. Chernye Metally. 2017. No. 2. pp. 46−50.
16. Shinkin V. N. Calculation of bending moments of steel sheet and support reactions under flattening on the eight-roller straightening machine. Chernye Metally. 2017. No. 4. pp. 49−53.
17. Shinkin V. N. Calculation of technological parameters of O-forming press for manufacture of large-diameter steel pipes. CIS Iron and Steel Review. 2017. Vol. 13. pp. 33−37.
18. Shinkin V. N. Mathematical model of technological parameters’ calculation of flanging press and the formation criterion of corrugation defect of steel sheet’s edge. CIS Iron and Steel Review. 2017. Vol. 13. pp. 44−47.
19. Shinkin V. N. Asymmetric three-roller sheet-bending systems in steel-pipe production. Steel in Translation. 2017. Vol. 47. No. 4. pp. 235−240.
20. Shinkin V. N. Failure of large-diameter steel pipe with rolling scabs. Steel in Translation. 2017. Vol. 47. No. 6. pp. 363−368.
21. Lenard J. G. Metal Forming Science and Practice. Elsevier Science, 2002. 378 p.
22. Hingole R. S. Advances in metal forming. Expert system for metal forming. Springer, 2015. 116 p.
23. Qin Y. Micromanufacturing engineering and technology. William Andrew, 2015. 858 p.
24. Predeleanu M., Ghosh S. K. Materials processing defects. Vol. 43. Elsevier Science, 1995. 434 p.
25. Gorshkova A. L., Polulyakh L. A., Travyanov A. Ya., Dashevskii V. Ya., Yusfin Yu. S. Phosphorus distribution between phases in smelting high-carbon ferromanganese in the blast furnace. Steel in Translation. 2007. Vol. 37. No. 11. pp. 904−907.
26. Podgorodetskii G. S., Yusfin Yu. S., Sazhin A. Yu., Gorbunov V. B., Polulyakh L. A. Production of generator gas from solid fuels. Steel in Translation. 2015. Vol. 45. No. 6. pp. 395−402.
27. Orelkina O. A., Petelin A. L., Polulyakh L. A. Distribution of secondary gas emissions around steel plants. Steel in Translation. 2015. Vol. 45. No. 11. pp. 811−814.
28. Punin V. I., Kokhan L. S., Morozov Yu. A. Reduction of the length of strip rolled on roll-forming machines. Metallurgist. 2013. Vol. 56. Nos. 11−12. pp. 938−940.
29. Davim J. P. Materials Forming and Machining. Research and Development. Woodhead Publishing, 2015. 202 p.
30. Lin J., Balint D., Pietrzyk M. Microstructure evolution in metal forming processes. Woodhead Publishing, 2012. 416 p.
31. Rees D. Basic engineering plasticity. An introduction with engineering and manufacturing applications. Butterworth-Heinemann, 2006. 528 p.
32. Banabic D. Sheet metal forming processes. Constitutive mode lling and numerical simulation. Springer, 2010. 301 p.

Полный текст статьи Springback coefficient of the main pipelines' steel large-diameter pipes under elastoplastic bending
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