An estimation of critical buckling strain for pipe subjected plastic bending

Central European Journal of Engineering - Tập 4 - Trang 326-333 - 2014
L. K. Ji1,2, M. Zheng3, H. Y. Chen2, Y. Zhao3, L. J. Yu3, J. Hu3, H. P. Teng3
1School of Materials Sci. & Eng., Xi’an Jiaotong University, Xi’an, China
2CNPC Tubular Goods Research Institute, Xi’an, China
3Institute for Energy Transmission Technology and Application, School of Chemical Engineering, Northwest University, Xi’an, China

Tóm tắt

An approach for estimating critical buckling strain of pipe subjected plastic bending is established in the present paper. A rigid — perfectly plastic material model and cross section ovalization of pipe during bending are employed for the approach. The energy rates of the ovalised pipe bending and the cross section ovalising are proposed firstly. Furthermore, these energy rates are combined to perform the buckling analysis of pipe bending, an estimation formula of critical buckling strain for pipe subjected plastic bending is proposed. The predicting result of the new critical buckling strain formula is compared with the available experimental data, it shows that the formula is valid.

Tài liệu tham khảo

Li H. L., Development and application of strain based design and anti-large-strain pipeline steel, Petroleum Sci. & Tech. Forum (in Chinese) 27(2), 2008, 19–25 Dorey A. B., Murray D. W., Cheng J. J. R., An experimental evaluation of critical buckling strain criteria, 2000 International Pipeline Conference, Vol.1, Calgary, Alberta, Canada, October 1–5, 2000, 71–80 Dorey A. B., Murray D. W., Cheng J. J., Critical buckling strain equations for energy pipelines — A Parametric Study, Transaction of the ASME 128, 248–255, 2006 Li L. Y., Approximate estimates of dynamic instability of long circular cylindrical shells under pure bending, Int. J. Pres. Ves. & Piping 67, 1996, 37–40 Yang J. L., Reid S. R., Approximate estimation of hardening — softening behavior of circular pipes subjected to pure bending, Acta Mechanica Sinica 13(3), 1997, 227–240 Wierzbicki T., Sinmao M. V., A simplified model of Brazier effect in plastic bending of cylindrical tubes, Int. J. Pres. Ves. & Piping, 71, 1997, 19–28 Khurram Wadee M., Ahmer Wadee M., Bassom A. P., Aigner A. A., Longitudinally inhomogeneous deformation patterns in isotropic tubes under pure bending, Proc. R. Soc. A 462, 2006, 817–838 Le Grognec P., Anh Le van, Some new analytical results for plastic buckling and initial post-buckling of plates and cylinders under uniform compression, Thin-Walled Structures 47, 2009, 879–889 Poonaya S., Teeboonma U., Thinvongpituk C., Plastic collapse analysis of thin-walled circular tubes subjected to bending, hin-Walled Structures 47, 2009, 637–645 Ranzi G., Luongo A., A new approach for thin-walled member analysis in the frame work of GBT, Thin-Walled Structures 49, 2011, 1404–1414 Michael T. Ch., Veerappan A. R., Shanmugam S., Effect of modality and variable wall thickness on collapse loads in pipe bends subjected to inplane bending closing moment, Engineering Fracture Mechanics 79, 2012, 138–148 Rathnaweera G., Ruan D., Hajj M., Durandet Y., Performance of aluminium/Terocore hybrid structures in quasi-static three — point bending: Experimental and finite element analysis study, Materials and Design 54, 2014, 880–892 Elchalakani M., Zhao X. L, Grzebieta R. H., Plastic Slenderness Limits for Cold — Formed Circular Hollow Sections, Australian J. of Structural Eng. 3, 2002, 127–141 Guo L., Yang S., Jiao H., Behavior of Thin — walled Circular Hollow Section Tubes Subjected to Bending, Thin-Walled Structures, 73, 2013, 281–289