Skip to main content
Top
Published in:
Cover of the book

2019 | OriginalPaper | Chapter

Application of Steel Shear Walls Toward More Resilient Structures

Authors : Abolhassan Astaneh-Asl, Xin Qian, Yongjiu Shi

Published in: Resilient Structures and Infrastructure

Publisher: Springer Singapore

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

search-config
loading …

Abstract

The steel shear walls are one of the most resilient lateral force resisting systems. In a typical steel shear wall, a steel panel is welded or bolted to columns and beams. The steel plate can be unstiffened or stiffened. The steel panel resists the bulk of the story shear force, and the entire shear wall system resists the overturning moment. In stiffened shear walls, the stiffeners are usually designed to prevent diagonal buckling of relatively thin steel plate until the plate yields in shear. In unstiffened shear walls, diagonal buckling occurs under relatively small story shear, and after buckling, the additional story shear is resisted by the diagonal tension field action in the steel panel similar to plate girders. The chapter introduces the reader to the mechanics, behavior, and design of various types and configurations of steel shear walls, and how actual steel plate shear wall buildings have performed during the earthquakes. Design considerations, modeling technics, and analytical approaches for analysis and design of steel shear walls are discussed. Two issues that somewhat reduces the cost-efficiency of the unstiffened steel shear walls are (1) the application of relatively large lateral forces to the boundary columns due to tension field action, and (2) the use of relatively expensive field welded moment connections in the boundary beams. A new steel shear wall system called High-Performance Steel Plate Shear Wall System resolves both of these issues by separating the steel plate from the column and by using an innovative gusset plate moment connection. Another innovative system resolves the problem of column subjected to large lateral loads by introducing vertical slits in the steel panel.

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!

Springer Professional "Wirtschaft"

Online-Abonnement

Mit Springer Professional "Wirtschaft" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 340 Zeitschriften

aus folgenden Fachgebieten:

  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Versicherung + Risiko




Jetzt Wissensvorsprung sichern!

Literature
go back to reference AISC. (2007). Steel design guide 20: Steel plate shear walls. American Institute of Steel Construction, Chicago, IL. AISC. (2007). Steel design guide 20: Steel plate shear walls. American Institute of Steel Construction, Chicago, IL.
go back to reference AISC. (2016a). Seismic provisions for structural steel buildings. ANSI/AISC 341-16, American Institute of Steel Construction, Chicago, IL. AISC. (2016a). Seismic provisions for structural steel buildings. ANSI/AISC 341-16, American Institute of Steel Construction, Chicago, IL.
go back to reference AISC. (2016b). Specification for structural steel buildings. ANSI/AISC 360-16, American Institute of Steel Construction, Chicago, IL. AISC. (2016b). Specification for structural steel buildings. ANSI/AISC 360-16, American Institute of Steel Construction, Chicago, IL.
go back to reference ASCE. (2016). Minimum design loads and associated criteria for buildings and other structures. Reston (VA): American Society of Civil Engineers. ASCE. (2016). Minimum design loads and associated criteria for buildings and other structures. Reston (VA): American Society of Civil Engineers.
go back to reference Astaneh-Asl, A. (2002a). Seismic behavior and design of composite steel plate shear walls. Steel Technical Information and Product Services (Steel TIPS) Report. Structural Steel Educational Council (www.steeltips.org), CA. Astaneh-Asl, A. (2002a). Seismic behavior and design of composite steel plate shear walls. Steel Technical Information and Product Services (Steel TIPS) Report. Structural Steel Educational Council (www.​steeltips.​org), CA.
go back to reference Astaneh-Asl, A. (2002b). Seismic behavior and design of steel shear walls. Steel Technical Information and Product Services (Steel TIPS) Report. Structural Steel Educational Council (www.steeltips.org), CA. Astaneh-Asl, A. (2002b). Seismic behavior and design of steel shear walls. Steel Technical Information and Product Services (Steel TIPS) Report. Structural Steel Educational Council (www.​steeltips.​org), CA.
go back to reference Astaneh-Asl, A. (2008). Seismic behavior and design of base plates in braced frames. Steel Technical Information and Product Services (Steel TIPS) Report. Structural Steel Educational Council (www.steeltips.org), CA. Astaneh-Asl, A. (2008). Seismic behavior and design of base plates in braced frames. Steel Technical Information and Product Services (Steel TIPS) Report. Structural Steel Educational Council (www.​steeltips.​org), CA.
go back to reference Astaneh-Asl, A., & Zhao, Q. H. (2000). Seismic studies of an innovative and traditional composite shear walls. In 6th ASCCS International Conference on Steel-Concrete Composite Structures, Los Angeles, CA. Astaneh-Asl, A., & Zhao, Q. H. (2000). Seismic studies of an innovative and traditional composite shear walls. In 6th ASCCS International Conference on Steel-Concrete Composite Structures, Los Angeles, CA.
go back to reference Baldelli, J. A. (1983). Steel shear walls for existing buildings. AISC Engineering Journal, Second Quarter, 70–77. Baldelli, J. A. (1983). Steel shear walls for existing buildings. AISC Engineering Journal, Second Quarter, 70–77.
go back to reference Baldvins, N. M., Berman, J. W., Lowes, L. N., Janes, T. M., & Low, N. A. (2012). Fragility functions for steel plate shear walls. Earthquake Spectra, 28, 405–426.CrossRef Baldvins, N. M., Berman, J. W., Lowes, L. N., Janes, T. M., & Low, N. A. (2012). Fragility functions for steel plate shear walls. Earthquake Spectra, 28, 405–426.CrossRef
go back to reference Basler, K., & Thuerlimann, A. (1961). Strength of plate girders in bending. Journal of the Structural Division, 87, 153–184. Basler, K., & Thuerlimann, A. (1961). Strength of plate girders in bending. Journal of the Structural Division, 87, 153–184.
go back to reference Basler, K., Yen, B., Mueller, J., & Thurlimann, B. (1960). Web buckling tests on welded plate girders. Fritz Engineering Laboratory, Lehigh University. Basler, K., Yen, B., Mueller, J., & Thurlimann, B. (1960). Web buckling tests on welded plate girders. Fritz Engineering Laboratory, Lehigh University.
go back to reference Berman, J., & Bruneau, M. (2003). Plastic analysis and design of steel plate shear walls. Journal of Structural Engineering, 129, 1448–1456.CrossRef Berman, J., & Bruneau, M. (2003). Plastic analysis and design of steel plate shear walls. Journal of Structural Engineering, 129, 1448–1456.CrossRef
go back to reference Bhowmick, A. K., Driver, R. G., & Grondin, G. Y. (2009). Seismic analysis of steel plate shear walls considering strain rate and—Delta effects. Journal of Constructional Steel Research, 65, 1149–1159.CrossRef Bhowmick, A. K., Driver, R. G., & Grondin, G. Y. (2009). Seismic analysis of steel plate shear walls considering strain rate and—Delta effects. Journal of Constructional Steel Research, 65, 1149–1159.CrossRef
go back to reference Caccese, V., Elgaaly, M., & Chen, R. (1993). Experimental study of thin steel-plate shear walls under cyclic load. Journal of Structural Engineering, 119, 573–587.CrossRef Caccese, V., Elgaaly, M., & Chen, R. (1993). Experimental study of thin steel-plate shear walls under cyclic load. Journal of Structural Engineering, 119, 573–587.CrossRef
go back to reference Celebi, M. (1997). Response of olive view hospital to Northridge and Whittier earthquake. Journal of Structural Engineering, ASCE, 123, 389–396.CrossRef Celebi, M. (1997). Response of olive view hospital to Northridge and Whittier earthquake. Journal of Structural Engineering, ASCE, 123, 389–396.CrossRef
go back to reference Chen, S.-J., & Jhang, C. (2011). Experimental study of low-yield-point steel plate shear wall under in-plane load. Journal of Constructional Steel Research, 67, 977–985.CrossRef Chen, S.-J., & Jhang, C. (2011). Experimental study of low-yield-point steel plate shear wall under in-plane load. Journal of Constructional Steel Research, 67, 977–985.CrossRef
go back to reference Choi, I.-R., & Park, H.-G. (2008). Ductility and energy dissipation capacity of shear-dominated steel plate walls. Journal of Structural Engineering, 134, 1495–1507.CrossRef Choi, I.-R., & Park, H.-G. (2008). Ductility and energy dissipation capacity of shear-dominated steel plate walls. Journal of Structural Engineering, 134, 1495–1507.CrossRef
go back to reference Choi, I.-R., & Park, H.-G. (2009). Steel plate shear walls with various infill plate designs. Journal of Structural Engineering, 135, 785–796.CrossRef Choi, I.-R., & Park, H.-G. (2009). Steel plate shear walls with various infill plate designs. Journal of Structural Engineering, 135, 785–796.CrossRef
go back to reference Cortes, G., & Liu, J. (2011a). Analysis and design of steel slit panel frames (SSPFs) for seismic areas. Engineering Journal-Chicago, 48, 1. Cortes, G., & Liu, J. (2011a). Analysis and design of steel slit panel frames (SSPFs) for seismic areas. Engineering Journal-Chicago, 48, 1.
go back to reference Cortes, G., & Liu, J. (2011b). Experimental evaluation of steel slit panel–frames for seismic resistance. Journal of Constructional Steel Research, 67, 181–191.CrossRef Cortes, G., & Liu, J. (2011b). Experimental evaluation of steel slit panel–frames for seismic resistance. Journal of Constructional Steel Research, 67, 181–191.CrossRef
go back to reference CSA. (1994). Limit state design of steel structures, CAN/CSA-S16.2-M94. Canadian Standard Association, Toronto, Ontario. CSA. (1994). Limit state design of steel structures, CAN/CSA-S16.2-M94. Canadian Standard Association, Toronto, Ontario.
go back to reference CSA. (2014). Limit state design of steel structures, CAN/CSA-S16-14. Canadian Standard Association, Toronto, Ontario. CSA. (2014). Limit state design of steel structures, CAN/CSA-S16-14. Canadian Standard Association, Toronto, Ontario.
go back to reference Dastfan, M., & Driver, R. G. (2008). Flexural stiffness limits for frame members of steel plate shear wall systems. In Annual Stability Conference (pp. 321–334). Nashville, TN: Structural Stability Research Council. Dastfan, M., & Driver, R. G. (2008). Flexural stiffness limits for frame members of steel plate shear wall systems. In Annual Stability Conference (pp. 321–334). Nashville, TN: Structural Stability Research Council.
go back to reference Driver, R. G. (1997). Seismic behaviour of steel plate shear walls. Department of Civil and Environmental Engineering, University of Alberta. Driver, R. G. (1997). Seismic behaviour of steel plate shear walls. Department of Civil and Environmental Engineering, University of Alberta.
go back to reference Driver, R. G., & Moghimi, H. (2011). Modular construction of steel plate shear walls for low and moderate seismic regions. In Structures Congress. Structural Engineering Institute, American Society of Civil Engineers, Las Vegas, NV. Driver, R. G., & Moghimi, H. (2011). Modular construction of steel plate shear walls for low and moderate seismic regions. In Structures Congress. Structural Engineering Institute, American Society of Civil Engineers, Las Vegas, NV.
go back to reference Eatherton, M. (2006). Design and construction of steel plate shear walls. In Proceedings of the Eighth US National Conference on Earthquake Engineering, San Francisco, California, USA. Eatherton, M. (2006). Design and construction of steel plate shear walls. In Proceedings of the Eighth US National Conference on Earthquake Engineering, San Francisco, California, USA.
go back to reference Eatherton, M., & Johnson, K. (2004). High-end residence using steel plate shear walls in Woodside, California. In SEAOC 2004 Convention: 75th Anniversary Celebration, Monterey, CA. Eatherton, M., & Johnson, K. (2004). High-end residence using steel plate shear walls in Woodside, California. In SEAOC 2004 Convention: 75th Anniversary Celebration, Monterey, CA.
go back to reference Elgaaly, M., Caccese, V., & Du, C. (1993). Postbuckling behavior of steel-plate shear walls under cyclic loads. Journal of Structural Engineering, 119, 588–605.CrossRef Elgaaly, M., Caccese, V., & Du, C. (1993). Postbuckling behavior of steel-plate shear walls under cyclic loads. Journal of Structural Engineering, 119, 588–605.CrossRef
go back to reference Fujitani, H., Yamanouchi, H., Okawa, I., Sawai, N., Uchida, N., & Matsutani, T. (1996). Damage and performance of tall buildings in the 1995 Hyogoken Nanbu earthquake. In 67th Regional Conference (in conjunction with ASCE Structures Congress XIV). Chicago: Council on Tall Buildings and Urban Habitat. Fujitani, H., Yamanouchi, H., Okawa, I., Sawai, N., Uchida, N., & Matsutani, T. (1996). Damage and performance of tall buildings in the 1995 Hyogoken Nanbu earthquake. In 67th Regional Conference (in conjunction with ASCE Structures Congress XIV). Chicago: Council on Tall Buildings and Urban Habitat.
go back to reference Ghosh, S., Adam, F., & Das, A. (2009). Design of steel plate shear walls considering inelastic drift demand. Journal of Constructional Steel Research, 65, 1431–1437.CrossRef Ghosh, S., Adam, F., & Das, A. (2009). Design of steel plate shear walls considering inelastic drift demand. Journal of Constructional Steel Research, 65, 1431–1437.CrossRef
go back to reference Guo, Y., Dong, Q., & Zhou, M. (2009). Tests and analysis on hysteretic behavior of buckling restrained steel plate shear wall. Journal of Building Structures, 30, 10. Guo, Y., Dong, Q., & Zhou, M. (2009). Tests and analysis on hysteretic behavior of buckling restrained steel plate shear wall. Journal of Building Structures, 30, 10.
go back to reference Habashi, H. R., & Alinia, M. M. (2010). Characteristics of the wall–frame interaction in steel plate shear walls. Journal of Constructional Steel Research, 66, 150–158.CrossRef Habashi, H. R., & Alinia, M. M. (2010). Characteristics of the wall–frame interaction in steel plate shear walls. Journal of Constructional Steel Research, 66, 150–158.CrossRef
go back to reference Hitaka, T., & Matsui, C. (2003). Experimental study on steel shear wall with slits. Journal of Structural Engineering, 129, 586–595.CrossRef Hitaka, T., & Matsui, C. (2003). Experimental study on steel shear wall with slits. Journal of Structural Engineering, 129, 586–595.CrossRef
go back to reference Hosseinzadeh, S. A. A., & Tehranizadeh, M. (2014). Behavioral characteristics of code designed steel plate shear wall systems. Journal of Constructional Steel Research, 99, 72–84.CrossRef Hosseinzadeh, S. A. A., & Tehranizadeh, M. (2014). Behavioral characteristics of code designed steel plate shear wall systems. Journal of Constructional Steel Research, 99, 72–84.CrossRef
go back to reference Kharmale, S. B., & Ghosh, S. (2013). Performance-based plastic design of steel plate shear walls. Journal of Constructional Steel Research, 90, 85–97.CrossRef Kharmale, S. B., & Ghosh, S. (2013). Performance-based plastic design of steel plate shear walls. Journal of Constructional Steel Research, 90, 85–97.CrossRef
go back to reference Lee, S., Wang, D., Liao, Y., & Mathias, N. (2010). Performance based seismic design of a 75 story buckling restrained slender steel plate shear wall tower. In Structures Congress. ASCE, Orlando, Florida. Lee, S., Wang, D., Liao, Y., & Mathias, N. (2010). Performance based seismic design of a 75 story buckling restrained slender steel plate shear wall tower. In Structures Congress. ASCE, Orlando, Florida.
go back to reference Li, C. H., Tsai, K. C., Lin, C. H., & Chen, P. C. (2010). Cyclic tests of four two-story narrow steel plate shear walls. Part 2: Experimental results and design implications. Earthquake Engineering and Structural Dynamics, 39, 801–826.CrossRef Li, C. H., Tsai, K. C., Lin, C. H., & Chen, P. C. (2010). Cyclic tests of four two-story narrow steel plate shear walls. Part 2: Experimental results and design implications. Earthquake Engineering and Structural Dynamics, 39, 801–826.CrossRef
go back to reference Lin, C.-H., Tsai, K.-C., Qu, B., & Bruneau, M. (2010). Sub-structural pseudo-dynamic performance of two full-scale two-story steel plate shear walls. Journal of Constructional Steel Research, 66, 1467–1482.CrossRef Lin, C.-H., Tsai, K.-C., Qu, B., & Bruneau, M. (2010). Sub-structural pseudo-dynamic performance of two full-scale two-story steel plate shear walls. Journal of Constructional Steel Research, 66, 1467–1482.CrossRef
go back to reference Lubell, A. S. (1997). Performance of unstiffened steel plate shear walls under cyclic quasi-static loading. University of British Columbia. Lubell, A. S. (1997). Performance of unstiffened steel plate shear walls under cyclic quasi-static loading. University of British Columbia.
go back to reference Lubell, A. S., Prion, H. G., Ventura, C. E., & Rezai, M. (2000). Unstiffened steel plate shear wall performance under cyclic loading. Journal of Structural Engineering, 126, 453–460.CrossRef Lubell, A. S., Prion, H. G., Ventura, C. E., & Rezai, M. (2000). Unstiffened steel plate shear wall performance under cyclic loading. Journal of Structural Engineering, 126, 453–460.CrossRef
go back to reference Nie, J., Fan, J., Liu, X., & Huang, Y. (2012). Comparative study on steel plate shear walls used in a high-rise building. Journal of Structural Engineering, 139, 85–97.CrossRef Nie, J., Fan, J., Liu, X., & Huang, Y. (2012). Comparative study on steel plate shear walls used in a high-rise building. Journal of Structural Engineering, 139, 85–97.CrossRef
go back to reference Park, H.-G., Kwack, J.-H., Jeon, S.-W., Kim, W.-K., & Choi, I.-R. (2007). Framed steel plate wall behavior under cyclic lateral loading. Journal of Structural Engineering, 133, 378–388.CrossRef Park, H.-G., Kwack, J.-H., Jeon, S.-W., Kim, W.-K., & Choi, I.-R. (2007). Framed steel plate wall behavior under cyclic lateral loading. Journal of Structural Engineering, 133, 378–388.CrossRef
go back to reference Purba, R., & Bruneau, M. (2014). Seismic performance of steel plate shear walls considering various design approaches. Technical Report MCEER-14-0005. Buffalo, New York: Multidisciplinary Center for Earthquake Engineering Research, State Univ. of New York at Buffalo. Purba, R., & Bruneau, M. (2014). Seismic performance of steel plate shear walls considering various design approaches. Technical Report MCEER-14-0005. Buffalo, New York: Multidisciplinary Center for Earthquake Engineering Research, State Univ. of New York at Buffalo.
go back to reference Qian, X. (2017). Development of a high-performance steel plate shear wall system with an innovative gusset plate moment connection (Ph.D. dissertation, University of California Berkeley). Qian, X. (2017). Development of a high-performance steel plate shear wall system with an innovative gusset plate moment connection (Ph.D. dissertation, University of California Berkeley).
go back to reference Qian, X., & Astaneh-Asl, A. (2016a). Development of a high-performance steel plate shear wall system. International Journal of Earthquake and Impact Engineering, 1, 57–80 (Inderscience Publishers). Qian, X., & Astaneh-Asl, A. (2016a). Development of a high-performance steel plate shear wall system. International Journal of Earthquake and Impact Engineering, 1, 57–80 (Inderscience Publishers).
go back to reference Qian, X., & Astaneh-Asl, A. (2016b). Introducing a new ductile and economical steel moment connection. In 2016 SEAOC Convention, October 12–15, Maui, Hawaii. Qian, X., & Astaneh-Asl, A. (2016b). Introducing a new ductile and economical steel moment connection. In 2016 SEAOC Convention, October 12–15, Maui, Hawaii.
go back to reference Qian, X., & Astaneh-Asl, A. (2017). Development of a high-performance steel shear wall and a new moment connection. Final Report, Report Number UCB/CEE-STEEL-12/2017. Department of Civil and Environmental Engineering, University of California, Berkeley. Qian, X., & Astaneh-Asl, A. (2017). Development of a high-performance steel shear wall and a new moment connection. Final Report, Report Number UCB/CEE-STEEL-12/2017. Department of Civil and Environmental Engineering, University of California, Berkeley.
go back to reference Qu, B., & Bruneau, M. (2009). Capacity design of intermediate horizontal boundary elements of steel plate shear walls. Journal of Structural Engineering, 136, 665–675.CrossRef Qu, B., & Bruneau, M. (2009). Capacity design of intermediate horizontal boundary elements of steel plate shear walls. Journal of Structural Engineering, 136, 665–675.CrossRef
go back to reference Qu, B., & Bruneau, M. (2010). Behavior of vertical boundary elements in steel plate shear walls. Engineering Journal (Chicago), 47, 109–122. Qu, B., & Bruneau, M. (2010). Behavior of vertical boundary elements in steel plate shear walls. Engineering Journal (Chicago), 47, 109–122.
go back to reference Qu, B., Bruneau, M., Lin, C.-H., & Tsai, K.-C. (2008). Testing of full-scale two-story steel plate shear wall with reduced beam section connections and composite floors. Journal of Structural Engineering, 134, 364–373.CrossRef Qu, B., Bruneau, M., Lin, C.-H., & Tsai, K.-C. (2008). Testing of full-scale two-story steel plate shear wall with reduced beam section connections and composite floors. Journal of Structural Engineering, 134, 364–373.CrossRef
go back to reference Robinson, K., & Ames, D. (2000). Steel plate shear walls: Library seismic upgrade. In Modern steel construction. Chicago, IL: AISC. Robinson, K., & Ames, D. (2000). Steel plate shear walls: Library seismic upgrade. In Modern steel construction. Chicago, IL: AISC.
go back to reference Sabouri-Ghomi, S., & Gholhaki, M. (2008). Tests of two three-story ductile steel plate shear walls. In ASCE Structures Congress 2008: Crossing Borders. Vancouver, British Columbia, Canada. Sabouri-Ghomi, S., & Gholhaki, M. (2008). Tests of two three-story ductile steel plate shear walls. In ASCE Structures Congress 2008: Crossing Borders. Vancouver, British Columbia, Canada.
go back to reference Sabouri-Ghomi, S., Ventura, C. E., & Kharrazi, M. H. (2005). Shear analysis and design of ductile steel plate walls. Journal of Structural Engineering, 131, 878–889.CrossRef Sabouri-Ghomi, S., Ventura, C. E., & Kharrazi, M. H. (2005). Shear analysis and design of ductile steel plate walls. Journal of Structural Engineering, 131, 878–889.CrossRef
go back to reference Sarkisian, M. P., & Mathias, N. J. (2012). Testing as a validation tool for tall, non-prescriptive buildings in China. In Structures Congress 2012, American Society of Civil Engineers. Sarkisian, M. P., & Mathias, N. J. (2012). Testing as a validation tool for tall, non-prescriptive buildings in China. In Structures Congress 2012, American Society of Civil Engineers.
go back to reference Schumacher, A., Grondin, G. Y., & Kulak, G. L. (1999). Connection of infill panels in steel plate shear walls. Canadian Journal of Civil Engineering, 26, 549–563.CrossRef Schumacher, A., Grondin, G. Y., & Kulak, G. L. (1999). Connection of infill panels in steel plate shear walls. Canadian Journal of Civil Engineering, 26, 549–563.CrossRef
go back to reference Seilie, I., & Hooper, J. D. (2005). Steel plate shear walls: practical design and construction. In Modern Steel Construction, American Institute of Steel Construction. Seilie, I., & Hooper, J. D. (2005). Steel plate shear walls: practical design and construction. In Modern Steel Construction, American Institute of Steel Construction.
go back to reference Shi, Y., & Astaneh-Asl, A. (2008). Lateral stiffness of steel shear wall systems. In Structures Congress. ASCE, April 24–26, Vancouver, Canada. Shi, Y., & Astaneh-Asl, A. (2008). Lateral stiffness of steel shear wall systems. In Structures Congress. ASCE, April 24–26, Vancouver, Canada.
go back to reference Thorburn, L. J., Kulak, G. L., & Montgomery, C. (1983). Analysis of steel plate shear walls. Thorburn, L. J., Kulak, G. L., & Montgomery, C. (1983). Analysis of steel plate shear walls.
go back to reference Timler, P., & Kulak, G. L. (1983). Experimental study of steel plate shear walls. Edmonton, Alberta: Department of Civil Engineering, University of Alberta. Timler, P., & Kulak, G. L. (1983). Experimental study of steel plate shear walls. Edmonton, Alberta: Department of Civil Engineering, University of Alberta.
go back to reference Topkaya, C., & Atasoy, M. (2009). Lateral stiffness of steel plate shear wall systems. Thin-Walled Structures, 47, 827–835.CrossRef Topkaya, C., & Atasoy, M. (2009). Lateral stiffness of steel plate shear wall systems. Thin-Walled Structures, 47, 827–835.CrossRef
go back to reference Tromposch, E., & Kulak, G. L. (1987). Cyclic and static behaviour of thin panel steel plate shear walls. Department of Civil Engineering, University of Alberta, Edmonton, Canada. Tromposch, E., & Kulak, G. L. (1987). Cyclic and static behaviour of thin panel steel plate shear walls. Department of Civil Engineering, University of Alberta, Edmonton, Canada.
go back to reference Troy, R. G., & Richard, R. M. (1979). Steel plate shear walls resist lateral load, cut costs. Civil Engineering, ASCE, 49, 3. Troy, R. G., & Richard, R. M. (1979). Steel plate shear walls resist lateral load, cut costs. Civil Engineering, ASCE, 49, 3.
go back to reference Tsai, K., Lin, Y., & Lin, C. (2007). Seismic responses and design of steel plate shear wall. Progress in Steel Building Structures, 9, 19–25. Tsai, K., Lin, Y., & Lin, C. (2007). Seismic responses and design of steel plate shear wall. Progress in Steel Building Structures, 9, 19–25.
go back to reference Tsai, K. C., Li, C. H., Lin, C. H., Tsai, C. Y., & Yu, Y. J. (2010). Cyclic tests of four two-story narrow steel plate shear walls—Part 1: Analytical studies and specimen design. Earthquake Engineering and Structural Dynamics, 39, 775–799.CrossRef Tsai, K. C., Li, C. H., Lin, C. H., Tsai, C. Y., & Yu, Y. J. (2010). Cyclic tests of four two-story narrow steel plate shear walls—Part 1: Analytical studies and specimen design. Earthquake Engineering and Structural Dynamics, 39, 775–799.CrossRef
go back to reference Vatansever, C., & Yardimci, N. (2011). Experimental investigation of thin steel plate shear walls with different infill-to-boundary frame connections. Steel and Composite Structures, 11, 251–271.CrossRef Vatansever, C., & Yardimci, N. (2011). Experimental investigation of thin steel plate shear walls with different infill-to-boundary frame connections. Steel and Composite Structures, 11, 251–271.CrossRef
go back to reference Vian, D., Bruneau, M., Tsai, K., & Lin, Y.-C. (2009). Special perforated steel plate shear walls with reduced beam section anchor beams. I: Experimental investigation. Journal of Structural Engineering, 135, 211–220.CrossRef Vian, D., Bruneau, M., Tsai, K., & Lin, Y.-C. (2009). Special perforated steel plate shear walls with reduced beam section anchor beams. I: Experimental investigation. Journal of Structural Engineering, 135, 211–220.CrossRef
go back to reference Xue, M., & Lu, L.-W. (1994). Monotonic and cyclic behavior of infilled steel shear panels. In Proceedings of 17th Czech and Slovak International Conference on Steel Structures and Bridges (pp. 152–160). Xue, M., & Lu, L.-W. (1994). Monotonic and cyclic behavior of infilled steel shear panels. In Proceedings of 17th Czech and Slovak International Conference on Steel Structures and Bridges (pp. 152–160).
go back to reference Youssef, N., Wilkerson, R., Fischer, K., & Tunick, D. (2010). Seismic performance of a 55-storey steel plate shear wall. The Structural Design of Tall and Special Buildings, 19, 139–165.CrossRef Youssef, N., Wilkerson, R., Fischer, K., & Tunick, D. (2010). Seismic performance of a 55-storey steel plate shear wall. The Structural Design of Tall and Special Buildings, 19, 139–165.CrossRef
go back to reference Youssef, N., Wilkerson, R., & Tunick, D. (2011). Thin steel plate shear walls: Performance based design. Steel Tips. Youssef, N., Wilkerson, R., & Tunick, D. (2011). Thin steel plate shear walls: Performance based design. Steel Tips.
go back to reference Zhang, X., & Guo, Y. (2014). Behavior of steel plate shear walls with pre-compression from adjacent frame columns. Thin-Walled Structures, 77, 17–25.CrossRef Zhang, X., & Guo, Y. (2014). Behavior of steel plate shear walls with pre-compression from adjacent frame columns. Thin-Walled Structures, 77, 17–25.CrossRef
go back to reference Zhao, Q., & Astaneh-Asl, A. (2004a). Cyclic behavior of traditional and innovative composite shear walls. Journal of Structural Engineering, 130, 271–284.CrossRef Zhao, Q., & Astaneh-Asl, A. (2004a). Cyclic behavior of traditional and innovative composite shear walls. Journal of Structural Engineering, 130, 271–284.CrossRef
go back to reference Zhao, Q. H., & Astaneh-Asl, A. (2004b). Cyclic behavior of an innovative steel shear wall system. In 13th World Conference on Earthquake Engineering, August 1–6, Vancouver, Canada. Zhao, Q. H., & Astaneh-Asl, A. (2004b). Cyclic behavior of an innovative steel shear wall system. In 13th World Conference on Earthquake Engineering, August 1–6, Vancouver, Canada.
go back to reference Zhao, Q. H., & Astaneh-Asl, A. (2008). Experimental and analytical studies of a steel plate shear wall system. In Structures Congress. ASCE, April 24–26, Vancouver, Canada. Zhao, Q. H., & Astaneh-Asl, A. (2008). Experimental and analytical studies of a steel plate shear wall system. In Structures Congress. ASCE, April 24–26, Vancouver, Canada.
Metadata
Title
Application of Steel Shear Walls Toward More Resilient Structures
Authors
Abolhassan Astaneh-Asl
Xin Qian
Yongjiu Shi
Copyright Year
2019
Publisher
Springer Singapore
DOI
https://doi.org/10.1007/978-981-13-7446-3_1