Journal of Structural and Construction Engineering

Journal of Structural and Construction Engineering

Comprehensive study of the performance of the beam-to-column connection with reduced section and cylindrical web

Document Type : Original Article

Authors
1 Master of Structural Engineering, Department of Civil Engineering, Tehran University, Tehran,, Iran
2 Master of Structural Engineering, Department of Civil Engineering, Sharif University of Technology, Tehran,, Iran
3 Professor, Department of Civil Engineering, Tehran University, Tehran,, Iran
Abstract
To ensure sufficient ductility and prevent brittle failure in moment-resisting frames, RBS (Reduced Beam Section) connections have become widely used in steel structures. However, a primary drawback of conventional RBS connections is the potential for lateral instability and a significant increase in the structure's lateral deformation. To address this issue, new forms of RBS connections, such as the cylindrical web RBS, have been proposed in recent years and have demonstrated effective performance under various loading conditions in past studies. In this study, an analytical evaluation of the cylindrical web RBS connection under seismic loading is conducted. Initially, the analytical equations pertinent to the structural properties and stability of the beam with the cylindrical web are introduced. Using these equations, a comprehensive design procedure for the cylindrical web RBS connection is formulated. Subsequently, a numerical model of the cylindrical web RBS connection is created and analyzed under cyclic loading using the finite element method. The results from this analysis indicate that the proposed connection meets the criteria set by valid international standards, making it suitable for use in special moment-resisting frames. The findings reveal that the relative displacement due to the use of cylindrical web RBS connections can be decreased compared to the conventional RBS connections.
Keywords

Subjects


[1] Venture, S. J. (2000). State of the art report on systems performance of steel moment frames subject to earthquake ground shaking. FEMA 355C
[2] Mansouri, I., Rafiei, J. (2017). The Effect of Reduced Section of RBS Connection on the Intact Section. Modares Civil Engineering journal, 16(20), 53-64.
[3] Plumier, A. (1997). The dogbone-Back to the future. AISC Engineering Journal, 34(2), 61-67
[4] Engelhardt, M. D. (1999). Experimental Investigation of dogbone monent connections. Engineering Journal, 35(4), 128-139
[5] Moore, K. S., Malley, J. O., & Engelhardt, M. D. (1999). Design of reduced beam section (RBS) moment frame connections. Los Angeles: Steel Committee of California.
 
[6] Federal Emergency Management Agency (FEMA). (2000). FEMA 355D State of the Art Report on Connection Performance FEMA.
[7] Shen, J., Kitjasateanphun, T., & Srivanich, W. (2000). Seismic performance of steel moment frames with reduced beam sections. Engineering Structures, 22(8), 968-983
[8] Kitjasateanphun, T., Shen, J., Srivanich, W., & Hao, H. (2001). Inelastic analysis of steel frames with reduced beam sections. The Structural Design of Tall Buildings, 10(4), 231-244..
[9] Iwankiw, N. (2004). Seismic design enhancements and the reduced beam section detail for steel moment frames. Practice Periodical on Structural Design and Construction, 9(2), 87-92.
[10] Jin, J., & El-Tawil, S. (2005). Seismic performance of steel frames with reduced beam section connections. Journal of Constructional Steel Research, 61(4), 453-471.
[11] Kim, K. D., & Engelhardt, M. D. (2007). Nonprismatic beam element for beams with RBS connections in steel moment frames. Journal of Structural Engineering, 133(2), 176-184.
[12] Pachoumis, D. T., Galoussis, E. G., Kalfas, C. N., & Christitsas, A. D. (2009). Reduced beam section moment connections subjected to cyclic loading: Experimental analysis and FEM simulation. Engineering Structures, 31(1), 216-223.
[13] Saleh, A., Mirghaderi, S. R., & Zahrai, S. M. (2016). Cyclic testing of tubular web RBS connections in deep beams. Journal of Constructional Steel Research, 117, 214-226.
[14] Wilkinson, S., Hurdman, G., & Crowther, A. (2006). A moment resisting connection for earthquake resistant structures. Journal of Constructional Steel Research, 62(3), 295-302.
[15] Venture, S. J., & Guidelines Development Committee. (2000). Recommended seismic design criteria for new steel moment-frame buildings (Vol. 350). Washington, DC, USA: Federal Emergency Management Agency.
[16] Grigorian, C. E., Yang, T. S., & Popov, E. P. (1993). Slotted bolted connection energy dissipators. Earthquake Spectra, 9(3), 491-504.
[17] Sobhan, M. S. (2006). On the application of the steel corrugated sheets for the improving the seismic behavior of the structures, M.Sc. Thesis, Tehran university.
[18] Mirghaderi, S. R., Sobhan, M. S. (2008). Introduction and study of seismic performance of tihn-walled hollow steel column fabricated of corrugated plates. University College of Engineering, 42(4).
[19] Mirghaderi, R., Sobhan, S., & Torabian, S. (2008). Reducing beam section by corrugated webs for developing a connection of specially moment resisting frame. In Structures Congress 2008: Crossing Borders (pp. 1-10).
 
[20] Mirghaderi, S. R., Torabian, S., & Imanpour, A. (2009). Experimental and numerical investigation of a new reduced beam section moment connection. In Behaviour of Steel Structures in Seismic Areas (pp. 897-902). CRC Press.
[21] Mirghaderi, S. R., Torabian, S., & Imanpour, A. (2010). Seismic performance of the Accordion-Web RBS connection. Journal of Constructional Steel Research, 66(2), 277-288.
[22] Saleh, A., Mirghaderi, S. R., & Zahrai, S. M. (2016). Cyclic testing of tubular web RBS connections in deep beams. Journal of Constructional Steel Research, 117, 214-226.
[23] Saleh, A., Zahrai, S. M., & Mirghaderi, S. R. (2016). Experimental study on innovative tubular web RBS connections in steel MRFs with typical shallow beams. Structural Engineering and Mechanics, An Int'l Journal, 57(5), 785-808.
[24] Zahrai, S. M., Mirghader, S. R., & Saleh, A. (2017). Tubular web RBS connection to improve seismic behavior of moment resisting steel frames. Scientia Iranica, 24(6), 2726-2740.
[25] Zahrai, S. M., Mirghaderi, S. R., & Saleh, A. (2017). Tubular Web Reduced Beam Section (TW-RBS) connection, a numerical and experimental study and result comparison. Steel and Composite Structures, 23(5), 571-583.
[26] Zahrai, S. M., Mirghaderi, S. R., & Saleh, A. (2017). Increasing plastic hinge length using two pipes in a proposed web reduced beam section, an experimental and numerical study. Steel and Composite Structures, 23(4), 421-433.
[27] Imanpour, A., Torabian, S., & Mirghaderi, S. R. (2019). Seismic design of the double-cell accordion-web reduced beam section connection. Engineering Structures, 191, 23-38.
[28] Mansouri, A., Shakiba, M. R., & Fereshtehpour, E. (2021). Two novel corrugated web reduced beam section connections for steel moment frames. Journal of Building Engineering, 43, 103187.
[29] Elgaaly, M., & Dagher, H. (1990). Beams and girders with corrugated webs. Proceedings, SSRC Annual Technical Session, Bethlehem, PA, 37-53.
[30] Hamilton, R. W. (1993). Behavior of welded girders with corrugated webs. Ph.D. thesis The University of Maine., USA.
[31] Elgaaly, M., Hamilton, R. W., & Seshadri, A. (1996). Shear strength of beams with corrugated webs. Journal of Structural Engineering, 122(4), 390-398.
 
[32] Luo, R., & Edlund, B. (1996). Shear capacity of plate girders with trapezoidally corrugated webs. Thin-walled structures, 26(1), 19-44.
[33] Elgaaly, M., Seshadri, A., & Hamilton, R. W. (1997). Bending strength of steel beams with corrugated webs. Journal of Structural Engineering, 123(6), 772-782.
[34] Elgaaly, M., & Seshadri, A. (1997). Girders with corrugated webs under partial compressive edge loading. Journal of Structural Engineering, 123(6), 783-791.
[35] Chan, C. L., Khalid, Y. A., Sahari, B. B., & Hamouda, A. M. S. (2002). Finite element analysis of corrugated web beams under bending. Journal of constructional steel research, 58(11), 1391-1406.
[36] Khalid, Y. A., Chan, C. L., Sahari, B. B., & Hamouda, A. M. S. (2004). Bending behaviour of corrugated web beams. Journal of materials processing technology, 150(3), 242-254.
[37] Ibrahim, S. A., El-Dakhakhni, W. W., & Elgaaly, M. (2006). Behavior of bridge girders with corrugated webs under monotonic and cyclic loading. Engineering Structures, 28(14), 1941-1955.
[38] Mirghaderi, R., & Torabian, S. (2006). Behavior and application of corrugated steel plate shear walls. Journal of faculty of engineering.
[39] Eldib, M. H. (2009). Shear buckling strength and design of curved corrugated steel webs for bridges. Journal of Constructional Steel Research, 65(12), 2129-2139.
[40] El Metwally, A. S. (1998). Prestressed composite girders with corrugated steel webs. University of Calgary.
[41] Ekhveh, E. (2015). Numerical evaluation of the seismic behavior of the tubular RBS connection. M.Sc. Thesis. Tehran University.
[42] American Institute of Steel Construction. (1997). Seismic provisions for structural steel buildings. American Institute of Steel Construction.
[43] Venture, S. J., & Guidelines Development Committee. (2000). Recommended seismic design criteria for new steel moment-frame buildings (Vol. 350). Washington, DC, USA: Federal Emergency Management Agency.
[44] Ricles, J. M., Zhang, X., Lu, L. W., & Fisher, J. (2004). Development of seismic guidelines for deep-column steel moment connections. Rep. No. 04, 13.
[45] Chambers, J. J., Almudhafar, S., & Stenger, F. (2003). Effect of reduced beam section frame elements on stiffness of moment frames. Journal of Structural Engineering, 129(3), 383-393.

  • Receive Date 27 April 2024
  • Revise Date 28 May 2024
  • Accept Date 23 September 2024