Technical Papers
Jul 4, 2024

Noncasing Brace for Seismic Retrofit Using Low Yield Point Steel: Seismic Performance, Feasibility, and Design Procedure

Publication: Journal of Structural Engineering
Volume 150, Issue 9

Abstract

This study explores the possibility of using low yield point steel (LYPS) as the material for seismic retrofitting braces without casing. While buckling restrained brace has commonly been considered for LYPS applications, it is demonstrated that a more effective usage of LYPS can be achieved without the casing, which not only provides economic advantages but also facilitate a more complete utilization of the excellent ductility of LYPS. In developing design procedures for noncasing LYPS braces, calculations for stability, such as those related to compactness requirements and buckling strength, become a major concern, as seemingly too optimistic values are obtained for them when using LYPS with a particularly low yield stress. Therefore, both monotonic and cyclic loading tests were first conducted to extend the current stability-related provisions to LYPS. Cyclic test results confirmed the outstanding hysteretic performance of noncasing LYPS braces compared to those fabricated from ordinary steels. Using the results from the cyclic tests and additional test-validated numerical analyses, a nonlinear static procedure was developed for the seismic evaluation of noncasing LYPS braces. This procedure includes guides for performing a pushover analysis for the retrofitted structure and setting the acceptance criteria. The developed seismic evaluation procedure is demonstrated through a case study, in which a steel moment-resisting frame is retrofitted with noncasing bracing. Noncasing braces made of LYPS are shown to be effective in improving seismic performance, whereas those made of ordinary steel are shown to be inferior for seismic retrofit.

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Data Availability Statement

Some or all the data, models, or codes that support the findings of this study are available from the corresponding author upon reasonable request.

Acknowledgments

The authors are grateful for and acknowledge the support of the POSCO Affiliated Research Professor Program for this study.

References

AISC. 2022a. Seismic provisions for structural steel buildings. ANSI/AISC 341-22. Chicago: AISC.
AISC. 2022b. Specification for structural steel buildings. ANSI/AISC 360-22. Chicago: AISC.
Akcelyan, S., and D. G. Lignos. 2021. “Rate-dependent model for simulating the hysteretic behavior of low-yield stress buckling-restrained braces under dynamic excitations.” Eng. Struct. 230 (Apr): 111659. https://doi.org/10.1016/j.engstruct.2020.111659.
Archambault, M.-H., R. Tremblay, and A. Filiatrault. 1995. Étude du comportement séismique des contreventements ductiles en X avec profilés tubulaires en acier. [In French.]. Montreal: Département de Génie Civil, École Polytechnique.
ASCE. 2017. Seismic evaluation and retrofit of existing buildings. ASCE/SEI 41-17. Reston, VA: ASCE.
ASCE. 2022. Minimum design loads and associated criteria for buildings and other structures. ASCE/SEI 7-22. Reston, VA: ASCE.
Azandariani, M. G., M. Gholhaki, and M. A. Kafi. 2020. “Experimental and numerical investigation of low-yield-strength (LYS) steel plate shear walls under cyclic loading.” Eng. Struct. 203 (Apr): 109866. https://doi.org/10.1016/j.engstruct.2019.109866.
Black, R. G., W. A. B. Wenger, and E. P. Popov. 1980. Inelastic buckling of steel struts under cyclic load reversals. Berkeley, CA: Univ. of California.
Chen, S. J., and C. Jhang. 2006. “Cyclic behavior of low yield point steel shear walls.” Thin-Walled Struct. 44 (7): 730–738. https://doi.org/10.1016/j.tws.2006.08.002.
Chen, S. J., and C. Jhang. 2011. “Experimental study of low-yield-point steel plate shear wall under in-plane load.” J. Constr. Steel Res. 67 (6): 977–985. https://doi.org/10.1016/j.jcsr.2011.01.011.
CSA (Canadian Standards Association). 2001. Limit states design of steel structures. CAN/CSA-S16-01. Mississauga, ON: CSA Group.
De Matteis, G., R. Landolfo, and F. M. Mazzolani. 2003. “Seismic response of MR steel frames with low-yield steel shear panels.” Eng. Struct. 25 (2): 155–168. https://doi.org/10.1016/S0141-0296(02)00124-4.
Dusicka, P., A. M. Itani, and I. G. Buckle. 2009. “Cyclic behavior of shear links of various grades of plate steel.” J. Struct. Eng. 136 (4): 370–378. https://doi.org/10.1061/(ASCE)ST.1943-541X.0000131.
ECCS (European Convention for Constructional Steelwork). 1986. Recommended testing procedure for assessing the behaviour of structural steel elements under cyclic loads. Brussels, Belgium: ECCS General Secretariat.
ETABS. 2017. CSI analysis reference manual for SAP2000, ETABS, SAFE and CSiBridge. Berkeley, CA: Computers and Structures.
Galambos, T. V. 1998. Guide to stability design criteria for metal structures. 5th ed. New York: Wiley.
Ghadami, A., G. Pourmoosavi, and A. Ghamari. 2021. “Seismic design of elements outside of the short low-yield-point steel shear links.” J. Constr. Steel Res. 178 (Apr): 106489. https://doi.org/10.1016/j.jcsr.2020.106489.
Ghamari, A., C. Thongchom, R. Putra Jaya, and T. Sithole. 2023. “Utilizing low yield point steel to improve the behavior of the I-shaped shear links as dampers.” Buildings 13 (2): 554. https://doi.org/10.3390/buildings13020554.
Gugerli, H. 1982. “Inelastic cyclic behavior of steel members.” Ph.D. thesis, Dept. of Civil Engineering, Univ. of Michigan.
Guo, Y., and M. Wang. 2022. “Experimental study on mechanical behavior and resilient performance of steel frame connection with low-yield-point steel fuses.” Eng. Struct. 266 (Aug): 114599. https://doi.org/10.1016/j.engstruct.2022.114599.
Gupta, A., and H. Krawinkler. 1999. Seismic demands for performance evaluation of steel moment resisting frame structures. Stanford, CA: Stanford Univ.
Huang, F., H. Duan, B. Cheng, and N. Teng. 2021. “Hysteretic performance of all-steel assembled double-cores buckling-restrained braces using Q195 low-yield core.” J. Constr. Steel Res. 187 (Aug): 106925. https://doi.org/10.1016/j.jcsr.2021.106925.
Kim, D.-K., C.-H. Lee, K.-H. Han, J.-H. Kim, S.-E. Lee, and H.-B. Sim. 2014. “Strength and residual stress evaluation of stub columns fabricated from 800 MPa high-strength steel.” J. Constr. Steel Res. 102 (Mar): 111–120. https://doi.org/10.1016/j.jcsr.2014.07.007.
Lee, S., and S. C. Goel. 1987. Seismic behavior of hollow and concrete-filled square tubular bracing members. Ann Arbor, MI: Univ. of Michigan.
Leowardi, L. S., and W. R. Walpole. 1996. Performance of steel brace members. Christchurch, New Zealand: Univ. of Canterbury.
Liu, Z. 1987. “Investigation of concrete-filled steel tubes under cyclic bending and buckling.” Ph.D. thesis, Dept. of Civil Engineering, Univ. of Michigan.
Ma, N., J. P. Ou, and H. Li. 2012. “Experimental study of low-yield strength steel buckling restrained brace.” In Proc., 15th World Conf. Earthquake Engineering. Lisbon, Portugal: Sociedade Portuguesa de Engenharia Sismica.
Ma, Z. Y., J. P. Hao, and H. S. Yu. 2018. “Shaking-table test of a novel buckling-restrained multi-stiffened low-yield-point steel plate shear wall.” J. Constr. Steel Res. 145 (Apr): 128–136. https://doi.org/10.1016/j.jcsr.2018.02.009.
Nakashima, M. 1995. “Strain-hardening behavior of shear panels made of low-yield steel. I: Test.” J. Struct. Eng. 121 (12): 1742–1749. https://doi.org/10.1061/(ASCE)0733-9445(1995)121:12(1742).
Nakashima, M., T. Akazawa, and B. Tsuji. 1995. “Strain-hardening behavior of shear panels made of low-yield steel. II: Model.” J. Struct. Eng. 121 (12): 1750–1757. https://doi.org/10.1061/(ASCE)0733-9445(1995)121:12(1750).
Nakashima, M., S. Iwai, M. Iwata, T. Takeuchi, S. Konomi, T. Akazawa, and K. Saburi. 1994. “Energy dissipation behaviour of shear panels made of low yield steel.” Earthquake Eng. Struct. Dynam. 23 (12): 1299–1313. https://doi.org/10.1002/eqe.4290231203.
Papavasileiou, G. S., D. C. Charmpis, and N. D. Lagaros. 2020. “Optimized seismic retrofit of steel-concrete composite buildings.” Eng. Struct. 213 (Mar): 110573. https://doi.org/10.1016/j.engstruct.2020.110573.
Ryu, H.-S., K.-Y. Choi, Y.-J. Kim, H.-J. Kim, and S.-H. Oh. 2021. “The characteristics and application technology of low yield point steel HSA80.” [In Korean.] Mag. Korean Soc. Steel Constr. 33 (1): 8–14.
Shaback, J. B. 2001. “Behaviour of square HSS braces with end connections under reversed cyclic axial loading.” Master’s thesis, Dept. of Civil Engineering, Univ. of Calgary.
Shi, G., Y. Gao, X. Wang, and Y. Zhang. 2018a. “Mechanical properties and constitutive models of low yield point steels.” Constr. Build. Mater. 175 (Aug): 570–587. https://doi.org/10.1016/j.conbuildmat.2018.04.219.
Shi, Q. X., F. Wang, P. Wang, and K. Chen. 2018b. “Experimental and numerical study of the seismic performance of an all-steel assembled Q195 low-yield buckling-restrained brace.” Eng. Struct. 176 (Jun): 481–499. https://doi.org/10.1016/j.engstruct.2018.09.039.
Shih, M. H., and W. P. Sung. 2005. “A model for hysteretic behavior of rhombic low yield strength steel added damping and stiffness.” Comput. Struct. 83 (12–13): 895–908. https://doi.org/10.1016/j.compstruc.2004.11.012.
Simulia. 2014. Abaqus 6.14: Abaqus/CAE user’s guide. Providence, RI: Simulia.
Sitler, B., T. Takeuchi, R. Matsui, M. Terashima, and Y. Terazawa. 2020. “Experimental investigation of a multistage buckling-restrained brace.” Eng. Struct. 213 (Apr): 110482. https://doi.org/10.1016/j.engstruct.2020.110482.
Susantha, K. A. S., T. Aoki, T. Kumano, and K. Yamamoto. 2005. “Applicability of low-yield-strength steel for ductility improvement of steel bridge piers.” Eng. Struct. 27 (7): 1064–1073. https://doi.org/10.1016/j.engstruct.2005.02.005.
Tahamouli-Roudsari, M., A. Entezari, M. Hadidi, and O. Gandomian. 2017. “Experimental assessment of retrofitted RC frames with different steel braces.” Structures 11 (Apr): 206–217. https://doi.org/10.1016/j.istruc.2017.06.003.
Tanaka, K., and Y. Sasaki. 2000. “Hysteretic performance of shear panel dampers of ultra low yield-strength steel for seismic response control of buildings.” In Proc., 12th World Conf. Earthquake Engineering. Upper Hutt, New Zealand: New Zealand Society for Earthquake Engineering.
Tremblay, R. 2002. “Inelastic seismic response of steel bracing members.” J. Constr. Steel Res. 58 (5–8): 665–701. https://doi.org/10.1016/S0143-974X(01)00104-3.
Wakabayashi, M., T. Nakamura, and N. Yoshida. 1977. “Experimental studies on the elastic–plastic behavior of braced frames under repeated horizontal loading.” Bull. Disaster Prev. Res. Inst. 27 (3): 121–154.
Walpole, W. R. 1996. Behaviour of cold-formed steel RHS members under cyclic loading. Christchurch, New Zealand: Univ. of Canterbury.
Wang, C., J. Fan, L. Xu, and X. Nie. 2020. “Cyclic hardening and softening behavior of the low yield point steel: Implementation and validation.” Eng. Struct. 210 (Mar): 110220. https://doi.org/10.1016/j.engstruct.2020.110220.
Wang, J., Y. Shi, and Y. Wang. 2015. “Constitutive model of low-yield point steel and its application in numerical simulation of buckling-restrained braces.” J. Mater. Civ. Eng. 28 (3): 04015142. https://doi.org/10.1061/(ASCE)MT.1943-5533.0001416.
Wang, M., H. Duan, and G. Shi. 2023. “Experimental study on seismic performance of low-yield point steel plate shear walls.” Thin-Walled Struct. 191 (Sep): 111093. https://doi.org/10.1016/j.tws.2023.111093.
Wang, M., L. A. Fahnestock, F. Qian, and W. Yang. 2017. “Experimental cyclic behavior and constitutive modeling of low yield point steels.” Constr. Build. Mater. 131 (Feb): 696–712. https://doi.org/10.1016/j.conbuildmat.2016.11.035.
Wang, M., C. Zhang, Y. Sun, and K. Dong. 2022. “Seismic performance of steel frame with replaceable low yield point steel connection components and the effect of structural fuses.” J. Build. Eng. 47 (Jun): 103862. https://doi.org/10.1016/j.jobe.2021.103862.
Xu, L., X. Nie, J. Fan, and R. Ding. 2016a. “Cyclic hardening and softening behavior of the low yield point steel BLY160: Experimental response and constitutive modeling.” Int. J. Plast. 78 (Mar): 44–63. https://doi.org/10.1016/j.ijplas.2015.10.009.
Xu, L. Y., X. Nie, and J. S. Fan. 2016b. “Cyclic behaviour of low-yield-point steel shear panel dampers.” Eng. Struct. 126 (Aug): 391–404. https://doi.org/10.1016/j.engstruct.2016.08.002.
Yamaguchi, T., Y. Nakata, T. Takeuchi, T. Ikebe, T. Nagao, A. Minami, and T. Suzuki. 1998. Seismic control devices using low-yield-point steel. Tokyo: Nippon.
Yao, Z., W. Wang, and Y. Zhu. 2021. “Experimental evaluation and numerical simulation of low-yield-point steel shear panel dampers.” Eng. Struct. 245 (Feb): 112860. https://doi.org/10.1016/j.engstruct.2021.112860.
Zhang, C., T. Aoki, Q. Zhang, and M. Wu. 2013. “Experimental investigation on the low-yield-strength steel shear panel damper under different loading.” J. Constr. Steel Res. 84 (May): 105–113. https://doi.org/10.1016/j.jcsr.2013.01.014.
Zhang, C., Z. Zhang, and J. Shi. 2012. “Development of high deformation capacity low yield strength steel shear panel damper.” J. Constr. Steel Res. 75 (Aug): 116–130. https://doi.org/10.1016/j.jcsr.2012.03.014.
Zhu, Y., W. Wang, Y. Lu, and Z. Yao. 2023. “Finite element modeling and design recommendations for low-yield-point steel shear panel dampers.” J. Build. Eng. 72 (Apr): 106634. https://doi.org/10.1016/j.jobe.2023.106634.
Zirakian, T., and J. Zhang. 2015. “Structural performance of unstiffened low yield point steel plate shear walls.” J. Constr. Steel Res. 112 (Dec): 40–53. https://doi.org/10.1016/j.jcsr.2015.04.023.

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Go to Journal of Structural Engineering
Journal of Structural Engineering
Volume 150Issue 9September 2024

History

Received: Oct 10, 2023
Accepted: Feb 29, 2024
Published online: Jul 4, 2024
Published in print: Sep 1, 2024
Discussion open until: Dec 4, 2024

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Seon-Hu Kim
Assistant Professor, School of Architecture, Chonnam National Univ., Gwangju 61186, Republic of Korea.
Chang-Jun Bae
Graduate Student, Dept. of Architecture and Architectural Engineering, Seoul National Univ., Seoul 08826, Republic of Korea.
Professor, Dept. of Architecture and Architectural Engineering, Seoul National Univ., Seoul 08826, Republic of Korea (corresponding author). ORCID: https://orcid.org/0000-0002-1502-2531. Email: [email protected]

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