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Push-out test on the one end welded corrugated-strip connectors in steel-concrete-steel sandwich structure

  • Yousefi, Mehdi (Civil Engineering Department, Faculty of Engineering, Ferdowsi University of Mashhad) ;
  • Ghalehnovi, Mansour (Civil Engineering Department, Faculty of Engineering, Ferdowsi University of Mashhad)
  • Received : 2016.10.25
  • Accepted : 2017.02.26
  • Published : 2017.05.20

Abstract

Current form of Corrugated-strip connectors are not popular due to the fact that the two ends of this form need to be welded to steel face plates. To overcome this difficulty, a new system is proposed in this work. In this system, bi-directional corrugated-strip connectors are used in pairs, and only one of their ends is welded to the steel face plates on each side. The other end is embedded in the concrete core. To assemble the system, common welding devices are required, and welding process can be performed in the construction sites. By performing the Push-out test under static loading, the authors experimentally assess the effects of geometric parameters on ductility, failure modes and the ultimate shear strength of the aforesaid connectors. For this purpose, sixteen experimental samples are prepared and investigated. For fifteen of these samples, one end of the shear connectors is welded to steel face plates, and the other end is embedded in the concrete. Another experimental sample is prepared in which both ends are welded to the steel face plates. According to the achieved results, several relations are proposed for predicting the ultimate shear strength and load vs. interlayer slip (load-slip) behavior of corrugated-strip connectors. Moreover, these formulas are compared with those of the well-known codes and standards. Accordingly, it is concluded that the authors' relations are more reliable.

Keywords

References

  1. AASHTO (2004), Washington DC, USA.
  2. An, L. and Cederwall, K. (1996), "Push-out tests on studs in high strength and normal strength concrete", J. Constr. Steel Res., 36(1), 15-29. https://doi.org/10.1016/0143-974X(94)00036-H
  3. ANSI/AISC 360-10 (2010), Specification for Structural Steel Buildings; American Institute of Steel Construction, Chicago, IL, USA.
  4. Bergan, P. and Bakken, K. (2005). "Sandwich design: A solution for marine structures", Proceedings of the International Conference on Computational Methods in Marine Engineering, Eccomas Marine.
  5. Bowerman, H. and Chapman, J. (2000), "Bi-steel concrete steel sandwich construction", Proceedings of the 4th US Engineering Foundation Conference on Composite Construction, Banff, Alberta, Canada, May-June.
  6. Dogan, O. and Roberts, T. (2010), "Comparing experimental deformations of steel-concrete-steel sandwich beams with full and partial interaction theories", Int. J. Phys. Sci., 5(10), 1544-1557.
  7. Dogan, O. and Roberts, T. (2012), "Fatigue performance and stiffness variation of stud connectors in steel-concrete-steel sandwich systems", J. Constr. Steel Res., 70, 86-92. https://doi.org/10.1016/j.jcsr.2011.08.013
  8. Eurocode 4 (2004), Design of Composite Steel and Concrete Structures. Part 1.1: General Rules and Rules for Buildings; BS EN 1994-1-1.
  9. Gattesco, N. and Giuriani, E. (1996), "Experimental study on stud shear connectors subjected to cyclic loading", J. Constr. Steel Res., 38(1), 1-21. https://doi.org/10.1016/0143-974X(96)00007-7
  10. GB 50017-2003 (2003), Code for design of steel structures; Beijing, China.
  11. Huang, Z. and Liew, J. (2016), "Numerical studies of steelconcrete-steel sandwich walls with J-hook connectors subjected to axial loads", Steel Compos. Struct., Int. J., 21(3), 461-477. https://doi.org/10.12989/scs.2016.21.3.461
  12. Leekitwattana, M. (2011), Analysis of an Alternative Topology for Steel-Concrete-Steel Sandwich Beams incorporating Inclined Shear Connectors, University of Southampton.
  13. Liew, J.R. and Sohel, K. (2009), "Lightweight steel-concrete-steel sandwich system with J-hook connectors", Eng. Struct., 31(5), 1166-1178. https://doi.org/10.1016/j.engstruct.2009.01.013
  14. Liew, J.R., Sohel, K. and Koh, C. (2009), "Impact tests on steel-concrete-steel sandwich beams with lightweight concrete core", Eng. Structres. 31(9), 2045-2059. https://doi.org/10.1016/j.engstruct.2009.03.007
  15. Lorenc, W. and Kubica, E. (2006), "Behavior of composite beams prestressed with external tendons: Experimental study", J. Constr. Steel Res., 62(12), 1353-1366. https://doi.org/10.1016/j.jcsr.2006.01.007
  16. Oduyemi, T. and Wright, H. (1989), "An experimental investigation into the behaviour of double-skin sandwich beams", J. Constr. Steel Res., 14(3), 197-220. https://doi.org/10.1016/0143-974X(89)90073-4
  17. Ollgaard, J.G., Slutter, R.G. and Fisher, J.W. (1971), "Shear strength of stud connectors in lightweight and normal weight concrete", AISC Eng. J., 8(2), 55-64.
  18. Roberts, T. and Dogan, O. (1998), "Fatigue of welded stud shear connectors in steel-concrete-steel sandwich beams", J. Constr. Steel Res., 45(3), 301-320. https://doi.org/10.1016/S0143-974X(97)00070-9
  19. Sohel, K. and Liew, J.R. (2011), "Steel-concrete-steel sandwich slabs with lightweight core-Static performance", Eng. Struct., 33(3), 981-992. https://doi.org/10.1016/j.engstruct.2010.12.019
  20. Sohel, K., Richard, L., Alwis, W. and Paramasivam, P. (2003), "Experimental investigation of low-velocity impact characteristics of steel-concrete-steel sandwich beams", Steel Compos. Struct., Int. J., 3(4), 289-306. https://doi.org/10.12989/scs.2003.3.4.289
  21. Solomon, S., Smith, D. and Cusens, A. (1976), "Flexural tests of steel-concrete-steel sandwiches", Magazine of Concrete Research, 28(94), 13-20. https://doi.org/10.1680/macr.1976.28.94.13
  22. Tomlinson, M., Tomlinson, A., Li Chapman, M., Jefferson, A. and Wright, H. (1989), "Shell composite construction for shallow draft immersed tube tunnels", Immersed Tunnel Techniques: Proceedings of the Conference, Manchester, UK, April.
  23. Valente, I. and Cruz, P.J. (2010), "Experimental analysis on steel and lightweight concrete composite beams", Steel Compos. Struct., Int. J., 10(2), 169-185. https://doi.org/10.12989/scs.2010.10.2.169
  24. Xie, M., Foundoukos, N. and Chapman, J. (2005), "Experimental and numerical investigation on the shear behaviour of frictionwelded bar-plate connections embedded in concrete", J. Constr. Steel Res., 61(5), 625-649. https://doi.org/10.1016/j.jcsr.2004.10.005
  25. Xue, W., Ding, M., Wang, H. and Luo, Z. (2008), "Static behavior and theoretical model of stud shear connectors", J. Bridge Eng., 13(6), 623-634. https://doi.org/10.1061/(ASCE)1084-0702(2008)13:6(623)
  26. Yan, J.-B., Liew, J.R., Zhang, M.-H. and Wang, J. (2014), "Ultimate strength behavior of steel-concrete-steel sandwich beams with ultra-lightweight cement composite, Part 1: Experimental and analytical Study", Steel Compos. Struct., Int. J., 17(6), 907-927. https://doi.org/10.12989/scs.2014.17.6.907
  27. Yan, J.-B., Liew, J. and Zhang, M.-H. (2015), "Ultimate strength behavior of steel-concrete-steel sandwich beams with ultralightweight cement composite, Part 2: finite element analysis", Steel Compos. Struct., Int. J., 18(4), 1001-1021. https://doi.org/10.12989/scs.2015.18.4.1001
  28. Zou, G.P., Xia, P.X., Shen, X.H. and Wang, P. (2016), "Investigation on the failure mechanism of steel-concrete steel composite beam", Steel Compos. Struct., Int. J., 20(6), 1183-1191. https://doi.org/10.12989/scs.2016.20.6.1183
  29. Zuk, W. (1974), "Prefabricated sandwich panels for bridge decks", Transportation Research Board Special Report; 148.

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