Comparative Shear Performance of Concrete Shear Walls vs. Cross Bracing in Steel Structures

Authors

  • Mostafa Emamvirdi * Department of Civil Engineering-Structural Engineering, Member of the Building Engineering System Organization, Mazandaran, Iran.
  • Morteza Biklaryan Department of Civil Engineering, Faculty of Engineering and Technology, Chalus Branch, Islamic Azad University, Mazandaran, Iran. https://orcid.org/0000-0001-6665-5550

https://doi.org/10.48314/jcase.v3i1.75

Abstract

Lateral load-resisting systems play a decisive role in the seismic behavior of steel structures. This study compares the shear performance of reinforced concrete shear walls and cross-bracing systems in steel frames. Two types of analyses were conducted: 1) micro-modeling of a single-story steel frame using Abaqus finite element software, and 2) macro-modeling of 4-, 8-, and 12-story steel buildings using Etabs Software. Nonlinear static (pushover) analysis was performed for all models. Results indicate that concrete shear walls significantly increase lateral stiffness, base shear capacity, and energy dissipation compared to cross-braced frames, albeit with slightly lower ductility. The concrete shear wall system provides a higher safety margin, especially in low- to mid-rise buildings.

Keywords:

Concrete shear wall, Steel structure, Shear performance, Cross bracing, Pushover analysis, Abaqus

References

  1. [1] Sun, L., Guo, H., & Liu, Y. (2019). Experimental study on seismic behavior of steel frames with infilled recycled aggregate concrete shear walls. Applied sciences, 9(21), 4723. https://doi.org/10.3390/app9214723

  2. [2] Wang, X., Zhang, H., & Hu, X. (2023). Experimental analysis on the structural seismic behavior of steel frame-precast steel reinforced concrete (SRC) infill wall with lateral force resisting. Journal of vibroengineering, 25(6), 1166–1180. https://doi.org/10.21595/jve.2023.23092

  3. [3] Abedi Ayuriq, E., Bagheri Pourasil, M., & Saidifar, N. (2012). Comparative study of the performance of steel frames with concrete shear walls and concentrated bracing. National conference on civil engineering and sustainable development. Mashhad, Iran. Civilica. (In Persian). https://civilica.com/doc/206624

  4. [4] Sharafi, P., Mortazavi, M., Usefi, N., Kildashti, K., Ronagh, H., & Samali, B. (2018). Lateral force resisting systems in lightweight steel frames: Recent research advances. Thin-walled structures, 130, 231–253. https://doi.org/10.1016/j.tws.2018.04.019

  5. [5] Building and Housing Research Center (BHRC). (2014). ranian code of practice for seismic resistant design of buildings (Standard No. 2800). https://www.scribd.com/document/692641378/Iranian-Code-Standard2800?utm_source

  6. [6] Sabori, S. (2004). Lateral load resisting systems: An introduction to steel shear walls. The publication of Angizeh. https://www.simayedanesh.ir/book/2846

  7. [7] Sadr Nafisi, S. (2002). The role of various bracing systems in strengthening steel structures. The first conference on structural safety and improvement. Tehran, Iran. Civilica. (In Persian). https://civilica.com/doc/574

  8. [8] Berman, J. W., & Bruneau, M. (2005). Experimental investigation of light-gauge steel plate shear walls. Journal of structural engineering, 131(2), 259–267. https://doi.org/10.1061/(ASCE)0733-9445(2005)131:2(259)

  9. [9] Kheyroddin, A., & Esmaeili, H. (2024). Evaluation of RC shear wall and steel bracing frame interaction in mid-rise steel moment frame systems. Scientific journal of structures and steel, 3(6), 31-42. (In Persian). 10.22034/jss.2025.238225

  10. [10] Alashkar, Y., Nazar, S., & Ahmed, M. (2015). A comparative study of seismic strengthening of RC building by steel bracings and concrete shear walls. International journal of civil and structural engineering research, 2(2), 24–34. https://d1wqtxts1xzle7.cloudfront.net/36679059

  11. [11] Ghalehnovi, M., Miri, M., & Hemati, H. (2008). Comparison of perfomance of thin steel shear walls and concentric braces by capacity spectrum method. 14th world conference on earthquake engineering-14WCEE. International association for earthquake engineering. https://www.iitk.ac.in/nicee/wcee/article/14_05-05-0003.PDF

  12. [12] Chegeni, V., & Baradaran, M. R. (2014). Comparison of average strength steel moment frame with a thin plate steel shear wall and diverging braced design method based on performance levels. Ournal of civil engineering and urbanism, 4(5), 534–539. https://www.ojceu.ir/main/attachments/article/34/

  13. [13] Piri, M., & Massumi, A. (2022). Seismic performance of steel moment and hinged frames with rocking shear walls. Journal of building engineering, 50, 104121. https://doi.org/10.1016/j.jobe.2022.104121

  14. [14] Guo, L., Li, R., Zhang, S., & Yan, G. (2012). Hysteretic analysis of steel plate shear walls (SPSWs) and a modified strip model for SPSWs. Advances in structural engineering, 15(10), 1751–1764. https://doi.org/10.1260/1369-4332.15.10.1751

  15. [15] Shon, S., Yoo, M., & Lee, S. (2017). An experimental study on the shear hysteresis and energy dissipation of the steel frame with a trapezoidal-corrugated steel plate. Materials, 10(3), 261. https://doi.org/10.3390/ma10030261?urlappend=%3Futm_source%3Dresearchgate.net%26utm_medium%3Darticle

  16. [16] Building and Housing Research Center (BHRC). (2013). Instruction for seismic retrofitting of existing buildings (No. 360). https://www.researchgate.net/publication/349929195

  17. [17] Federal Emergency Management Agency. (2000). Prestandard and commentary for the seismic rehabilitation of buildings. https://www.nehrp.gov/pdf/fema356.pdf

  18. [18] Freeman, S. A. (1975). Evaluations of existing buildings for seismic risk-a case study of puget sound naval shipyard. Earthquake engineering research institute (EERI). https://cir.nii.ac.jp/crid/1572543024960346496

  19. [19] Lubliner, J., Oliver, J., Oller, S., & Onate, Ejij. (1989). A plastic-damage model for concrete. International journal of solids and structures, 25(3), 299–326. https://doi.org/10.1016/0020-7683(89)90050-4

Published

2026-02-05

How to Cite

Emamvirdi, M., & Biklaryan, M. (2026). Comparative Shear Performance of Concrete Shear Walls vs. Cross Bracing in Steel Structures. Journal of Civil Aspects and Structural Engineering, 3(1), 28-37. https://doi.org/10.48314/jcase.v3i1.75

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