Skip to main content
Top
Published in: International Journal of Steel Structures 5/2019

26-04-2019

Finite Element Analysis on Axial Compressive Behaviors of High-Performance Steel Stiffened Plates in Bridge Application

Authors: Yongxuan Li, Yuqing Liu, Rong Liu

Published in: International Journal of Steel Structures | Issue 5/2019

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

In order to investigate the mechanical behavior, the buckling performance and failure reason of stiffened high performance steel (HPS) plates, three-dimensional finite element (FE) models considering initial imperfections and residual stresses are compressed with axial force. Various influential factors such as element size, constitutive relations, second order effects of structure and membrane effects in buckling area were discussed to achieve a better validation with experimental data. As load increasing, the plastic strain in the U-rib near the end stiffener increases gradually under the influence of initial imperfections and stress concentration. Local buckling occurs after yielding of the whole section. With the refined model, the sensitivity of stiffened structure to the residual stresses and imperfections are investigated, and parametric studies on the material properties, geometric dimensions are conducted. The results show that the initial imperfections have a major influence on the ultimate capacity while the residual compressive stresses govern the elastic capacity and the ductility. Proper values of the imperfections and residual stresses are suggested for FE stiffened plate simulations. HPS stiffened plates with short length is more sensitive to initial imperfections. The effects of length, thickness and spacing are similar to the ordinary steel plates. Both equations in American and Chinese standards are used to evaluate the ultimate capacity of stiffened HPS plates, and formulas in AASHTO provide a more accurate estimate on capacity and failure mode, while Chinese specification is more conservative comparatively.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
go back to reference American Association of State Highway & Transportation Officials (AASHTO). (2010). LRFD-Bridge design specifications. Washington, DC: AASHTO. American Association of State Highway & Transportation Officials (AASHTO). (2010). LRFD-Bridge design specifications. Washington, DC: AASHTO.
go back to reference American Institute of Steel Construction (AISC). (1963). Design manual for orthotropic steel plate deck bridges, New York. American Institute of Steel Construction (AISC). (1963). Design manual for orthotropic steel plate deck bridges, New York.
go back to reference ANSYS. (2015). Release 16.0. ANSYS University advanced. ANSYS Inc. ANSYS. (2015). Release 16.0. ANSYS University advanced. ANSYS Inc.
go back to reference Bedair, O. K. (1998). A contribution to the stability of stiffened plates under uniform compression. Computers & Structures, 66(5), 535–570.CrossRef Bedair, O. K. (1998). A contribution to the stability of stiffened plates under uniform compression. Computers & Structures, 66(5), 535–570.CrossRef
go back to reference Bedair, O. K., & Sherbourne, A. N. (1993a). Plate/stiffener assemblies in uniform compression: Part I—buckling. ASCE, Journal of Engineering Mechanics, 119, 1937–1955.CrossRef Bedair, O. K., & Sherbourne, A. N. (1993a). Plate/stiffener assemblies in uniform compression: Part I—buckling. ASCE, Journal of Engineering Mechanics, 119, 1937–1955.CrossRef
go back to reference Bedair, O. K., & Sherbourne, A. N. (1993b). Plate/stiffener assemblies in uniform compression: Part II—post-buckling. ASCE, Journal of Engineering Mechanics, 119, 1956–1972.CrossRef Bedair, O. K., & Sherbourne, A. N. (1993b). Plate/stiffener assemblies in uniform compression: Part II—post-buckling. ASCE, Journal of Engineering Mechanics, 119, 1956–1972.CrossRef
go back to reference British Standards Institution. (2001). BS5400-3:2000: Steel, concrete and composite bridges. London, UK. British Standards Institution. (2001). BS5400-3:2000: Steel, concrete and composite bridges. London, UK.
go back to reference Chou, C. C., Uang, C. M., & Seible, F. (2006). Experimental evaluation of compressive behavior of orthotropic steel plates for the New San Francisco–Oakland Bay Bridge. Journal of Bridge Engineer, 11(2), 140–150.CrossRef Chou, C. C., Uang, C. M., & Seible, F. (2006). Experimental evaluation of compressive behavior of orthotropic steel plates for the New San Francisco–Oakland Bay Bridge. Journal of Bridge Engineer, 11(2), 140–150.CrossRef
go back to reference Department of Transportation Federal Highway Administration (FHWA). (2012). Manual for Design, Construction, and Maintenance of Orthotropic Steel Deck Bridges. No. FHWA-IF-12-027. Department of Transportation Federal Highway Administration (FHWA). (2012). Manual for Design, Construction, and Maintenance of Orthotropic Steel Deck Bridges. No. FHWA-IF-12-027.
go back to reference Di Sarno, L., & Elnashai, A. S. (2005). Innovative strategies for seismic retrofitting of steel and composite structures. Progress in Structural Engineering and Materials, 7(3), 115–135.CrossRef Di Sarno, L., & Elnashai, A. S. (2005). Innovative strategies for seismic retrofitting of steel and composite structures. Progress in Structural Engineering and Materials, 7(3), 115–135.CrossRef
go back to reference Dorenen, A., & Trittler, G. (1958). Kombinierte Eisenbaha-und Strassenbrucke uber den loppeseiten-kanal. Der Stahlbau, 27, 7–20. (In Germany). Dorenen, A., & Trittler, G. (1958). Kombinierte Eisenbaha-und Strassenbrucke uber den loppeseiten-kanal. Der Stahlbau, 27, 7–20. (In Germany).
go back to reference Dowing, P. J. (1975). Strength of steel box girders. ASCE, Journal of the structural division, 101(9), 1929–1945. Dowing, P. J. (1975). Strength of steel box girders. ASCE, Journal of the structural division, 101(9), 1929–1945.
go back to reference Duc, D. V., Okui, Y., Hagiwara, K., & Nagai, M. (2013). Probabilistic distributions of plate buckling strength for normal and bridge high-performance steels. International Journal of Steel structures, 13(3), 557–567.CrossRef Duc, D. V., Okui, Y., Hagiwara, K., & Nagai, M. (2013). Probabilistic distributions of plate buckling strength for normal and bridge high-performance steels. International Journal of Steel structures, 13(3), 557–567.CrossRef
go back to reference Dwight, J. B., & Little, G. H. (1976). Stiffened steel compression flanges—A simpler approach. The Structural Engineer, 54, 501–505. Dwight, J. B., & Little, G. H. (1976). Stiffened steel compression flanges—A simpler approach. The Structural Engineer, 54, 501–505.
go back to reference European Committee for Standardization. (2005). Eurocode 3: Design of steel structure–Part 1–5: Plated structural elements. Brussels, EN 1993-1-5. European Committee for Standardization. (2005). Eurocode 3: Design of steel structurePart 15: Plated structural elements. Brussels, EN 1993-1-5.
go back to reference Farkas, J., & Jármai, K. (2013). Optimum Design of Steel Structures. Berlin: Springer.CrossRef Farkas, J., & Jármai, K. (2013). Optimum Design of Steel Structures. Berlin: Springer.CrossRef
go back to reference Frieze, P. A. (1978). Elasto-plastic buckling in thin-walled beams and columns. Proceedings of the Institution of Civil Engineers, 9, 301–310. Frieze, P. A. (1978). Elasto-plastic buckling in thin-walled beams and columns. Proceedings of the Institution of Civil Engineers, 9, 301–310.
go back to reference Giencke, E. (1964). Uber die BereChnung regelmassiger Konstruktionen als Kontinuum. Germany: Stuhlbau. Giencke, E. (1964). Uber die BereChnung regelmassiger Konstruktionen als Kontinuum. Germany: Stuhlbau.
go back to reference Grondin, G. Y., Chen, Q., Elwi, A. E., & Cheng, J. J. R. (1998). Stiffened steel plates under compression and bending. Journal of Constructional Steel Research, 45(2), 125–148.CrossRef Grondin, G. Y., Chen, Q., Elwi, A. E., & Cheng, J. J. R. (1998). Stiffened steel plates under compression and bending. Journal of Constructional Steel Research, 45(2), 125–148.CrossRef
go back to reference Grondin, G. Y., Elwi, A. E., & Cheng, J. J. R. (1999). Buckling of stiffened steel plates—a parametric study. Journal of Constructional Steel Research, 50, 151–175.CrossRef Grondin, G. Y., Elwi, A. E., & Cheng, J. J. R. (1999). Buckling of stiffened steel plates—a parametric study. Journal of Constructional Steel Research, 50, 151–175.CrossRef
go back to reference Horne, M. R., & Narayanan, R. (1975). An approximate method for the design of stiffened steel compression panels. Proceedings of the Institution of Civil Engineers Part II, 59, 501–514.CrossRef Horne, M. R., & Narayanan, R. (1975). An approximate method for the design of stiffened steel compression panels. Proceedings of the Institution of Civil Engineers Part II, 59, 501–514.CrossRef
go back to reference Horne, M. R., & Narayanan, R. (1976). Strength of axially loaded stiffened panels. IABSE, 36, 125–157. Horne, M. R., & Narayanan, R. (1976). Strength of axially loaded stiffened panels. IABSE, 36, 125–157.
go back to reference Japan Road Association (JRA). (2002). Specification for highway bridges: Part I, Tokyo. Japan Road Association (JRA). (2002). Specification for highway bridges: Part I, Tokyo.
go back to reference Jen, W.C. & Yen, B.T. (2006). Load carrying capacity of steel orthotropic deck panel with trapezoidal shaped longitudinal stiffeners. ATLSS report no. 06-15. Jen, W.C. & Yen, B.T. (2006). Load carrying capacity of steel orthotropic deck panel with trapezoidal shaped longitudinal stiffeners. ATLSS report no. 06-15.
go back to reference Kanno, R. (2016). Advances in steel materials for innovative and elegant steel structures in Japan—a review. Structural Engineering International, 26(3), 242–253.CrossRef Kanno, R. (2016). Advances in steel materials for innovative and elegant steel structures in Japan—a review. Structural Engineering International, 26(3), 242–253.CrossRef
go back to reference Kenno, S. Y., Das, S., & Kennedy, J. (2010). Distributions of residual stresses in stiffened plates with one and two stiffeners. Ships and Offshore Structures, 5(3), 211–225.CrossRef Kenno, S. Y., Das, S., & Kennedy, J. (2010). Distributions of residual stresses in stiffened plates with one and two stiffeners. Ships and Offshore Structures, 5(3), 211–225.CrossRef
go back to reference Kim, D. K., Lee, C. H., & Han, K. H. (2014). Strength and residual stress evaluation of stub columns fabricated from 800 MPa high–strength steel. Journal of Constructional Steel Research, 102, 111–120.CrossRef Kim, D. K., Lee, C. H., & Han, K. H. (2014). Strength and residual stress evaluation of stub columns fabricated from 800 MPa high–strength steel. Journal of Constructional Steel Research, 102, 111–120.CrossRef
go back to reference Lee, C. K., Chiew, S. P., & Jiang, J. (2012a). Residual stress study of welded high strength steel thin-walled plate-to-plate joints, Part 1: Experimental study. Thin-Walled Structures, 56, 103–112.CrossRef Lee, C. K., Chiew, S. P., & Jiang, J. (2012a). Residual stress study of welded high strength steel thin-walled plate-to-plate joints, Part 1: Experimental study. Thin-Walled Structures, 56, 103–112.CrossRef
go back to reference Lee, C. K., Chiew, S. P., & Jiang, J. (2012b). Residual stress study of welded high strength steel thin-walled plate-to-plate joints, Part 2: Numerical modeling. Thin-Walled Structures, 59, 120–131.CrossRef Lee, C. K., Chiew, S. P., & Jiang, J. (2012b). Residual stress study of welded high strength steel thin-walled plate-to-plate joints, Part 2: Numerical modeling. Thin-Walled Structures, 59, 120–131.CrossRef
go back to reference Maddox, S. J. (1991). Fatigue strength of welded structures. Cambridge, England: Abington Publishing. Maddox, S. J. (1991). Fatigue strength of welded structures. Cambridge, England: Abington Publishing.
go back to reference Mansour, A. E. (1971). On the nonlinear–theory of orthotropic plates. Journal of Ship Research, 15(4), 266–277. Mansour, A. E. (1971). On the nonlinear–theory of orthotropic plates. Journal of Ship Research, 15(4), 266–277.
go back to reference Mikami, I., & Niwa, K. (1996). Ultimate compressive strength of orthogonally stiffened steel plates. Journal of Structural Engineering, 122(6), 674–682.CrossRef Mikami, I., & Niwa, K. (1996). Ultimate compressive strength of orthogonally stiffened steel plates. Journal of Structural Engineering, 122(6), 674–682.CrossRef
go back to reference Miki, C., Homma, K., & Tominaga, T. (2002). High strength and high performance steels and their use in bridge structures. Journal of Constructional Steel Research, 58, 3–20.CrossRef Miki, C., Homma, K., & Tominaga, T. (2002). High strength and high performance steels and their use in bridge structures. Journal of Constructional Steel Research, 58, 3–20.CrossRef
go back to reference Ministry of Transport of People’s Republic of China. (2015). Specifications for design of highway steel bridge. Beijing, JTGD64-2015. Ministry of Transport of People’s Republic of China. (2015). Specifications for design of highway steel bridge. Beijing, JTGD64-2015.
go back to reference Rahman, M., Okui, Y., & Anwer, M. A. (2018). Probabilistic strength at serviceability limit state for normal and SBHS slender stiffened plates under uniaxial compression. International Journal of Steel Structures, 18(4), 1397–1409.CrossRef Rahman, M., Okui, Y., & Anwer, M. A. (2018). Probabilistic strength at serviceability limit state for normal and SBHS slender stiffened plates under uniaxial compression. International Journal of Steel Structures, 18(4), 1397–1409.CrossRef
go back to reference Rahman, M., Okui, Y., Shoji, T., & Komuro, M. (2017). Probabilistic ultimate buckling strength of stiffened plates, considering thick and high-performance steel. Journal of Constructional Steel Research, 138, 184–195.CrossRef Rahman, M., Okui, Y., Shoji, T., & Komuro, M. (2017). Probabilistic ultimate buckling strength of stiffened plates, considering thick and high-performance steel. Journal of Constructional Steel Research, 138, 184–195.CrossRef
go back to reference Shin, D. K., Le, V. A., & Kim, K. (2013). In-plane ultimate compressive strengths of HPS deck panel system stiffened with U-shaped ribs. Thin-Walled Structures, 63, 70–81.CrossRef Shin, D. K., Le, V. A., & Kim, K. (2013). In-plane ultimate compressive strengths of HPS deck panel system stiffened with U-shaped ribs. Thin-Walled Structures, 63, 70–81.CrossRef
go back to reference Xiao, L., Ye, W. H., Wei, X., & Qiang, S. Z. (2014). Mechanic behavior and load transferring research of hybrid joint in cable—stayed bridge tower. China Civil Engineering Journal, 47(3), 88–96. (In Chinese). Xiao, L., Ye, W. H., Wei, X., & Qiang, S. Z. (2014). Mechanic behavior and load transferring research of hybrid joint in cable—stayed bridge tower. China Civil Engineering Journal, 47(3), 88–96. (In Chinese).
go back to reference Xin, H. H., Liu, Y. Q., He, J., & Zhang, Y. Y. (2014). Experimental and analytical study on stiffened steel segment of hybrid structure. Journal of Constructional Steel Research, 100, 237–258.CrossRef Xin, H. H., Liu, Y. Q., He, J., & Zhang, Y. Y. (2014). Experimental and analytical study on stiffened steel segment of hybrid structure. Journal of Constructional Steel Research, 100, 237–258.CrossRef
go back to reference Yarnold, M. T., Wilson, J. L., Jen, W. C., & Yen, B. T. (2006). Local buckling analysis of trapezoidal rib orthotropic bridge deck systems. ATLSS report no. 06–27. Yarnold, M. T., Wilson, J. L., Jen, W. C., & Yen, B. T. (2006). Local buckling analysis of trapezoidal rib orthotropic bridge deck systems. ATLSS report no. 06–27.
go back to reference Yoon, T. Y. (2010). Development of high performance construction material. Construction & Transportation R&D Report, Ministry of Land, Transport and Maritime Affairs. Yoon, T. Y. (2010). Development of high performance construction material. Construction & Transportation R&D Report, Ministry of Land, Transport and Maritime Affairs.
go back to reference Zhang, X. G., & Chen, A. R. (2010). Sutong bridge design and structural performance. Beijing: China Communication Press. (In Chinese). Zhang, X. G., & Chen, A. R. (2010). Sutong bridge design and structural performance. Beijing: China Communication Press. (In Chinese).
go back to reference Zhang, S., & Khan, I. (2009). Buckling and ultimate strength of plates and stiffened panels. Marine Structure, 22(4), 791–808.CrossRef Zhang, S., & Khan, I. (2009). Buckling and ultimate strength of plates and stiffened panels. Marine Structure, 22(4), 791–808.CrossRef
go back to reference Zhang, S., Kumar, P., & Rutherford, S. E. (2008). Ultimate shear strength of plates and stiffened panels. Ships Offshore Structure, 3(2), 105–112.CrossRef Zhang, S., Kumar, P., & Rutherford, S. E. (2008). Ultimate shear strength of plates and stiffened panels. Ships Offshore Structure, 3(2), 105–112.CrossRef
Metadata
Title
Finite Element Analysis on Axial Compressive Behaviors of High-Performance Steel Stiffened Plates in Bridge Application
Authors
Yongxuan Li
Yuqing Liu
Rong Liu
Publication date
26-04-2019
Publisher
Korean Society of Steel Construction
Published in
International Journal of Steel Structures / Issue 5/2019
Print ISSN: 1598-2351
Electronic ISSN: 2093-6311
DOI
https://doi.org/10.1007/s13296-019-00238-y

Other articles of this Issue 5/2019

International Journal of Steel Structures 5/2019 Go to the issue

Premium Partners