Araştırma Makalesi
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Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames

Yıl 2026, Cilt: 37 Sayı: 3
https://doi.org/10.18400/tjce.1726766

Öz

This paper presents a numerical study investigating the effect of composite gravity frames (CGFs) on the seismic response of eccentrically braced frames (EBFs) subjected to a suite of earthquake ground motions. Two different modeling approaches were considered for each archetype with 4, 8, and 16 stories. While the first model included only the bare steel EBF, the second model considered the EBF together with tributary gravity frames (GFs) and included the effects of a composite floor slab both on the response of the gravity frame connections and on the response of EBF links. A total of 1056 nonlinear time-history analyses were performed using the Opensees software by subjecting the archetypes to 44 scaled and unscaled far-field ground motions defined in FEMA P695. Interstory drift ratios, residual drift ratios, link rotation angles and residual link rotation angles were considered as the response indicators. In addition, a process of removing damaged links was simulated to evaluate the amount of residual drift after this process. The analyses show that the CGFs have a significant beneficial effect on the performance of EBF in terms of link rotation angles and residual drift ratios. Further, the process of removing links for replacement may provide additional benefits in allowing further reductions in residual drift ratio obtained as less than 0.5% even under ground motions scaled to the maximum considered earthquake when the CGFs were included in the model.

Destekleyen Kurum

TÜBİTAK

Proje Numarası

TÜBİTAK 2219-1059B191700103

Teşekkür

The study was supported by the Scientific and Technological Research Council of Turkey (TÜBİTAK) under the grant number TÜBİTAK 2219-1059B191700103. The authors thank to TÜBİTAK for their supports. The opinions expressed in this paper are those of the authors and do not reflect the views of the sponsor.

Kaynakça

  • AISC, "Seismic Provisions for Structural Steel Buildings – ANSI/AISC 341-22," American Institute of Steel Construction, Chicago, ‎Illinois, 2022.
  • Kazemzadeh Azad, S.and Topkaya, C. (2017). A review of research on steel eccentrically braced frame. Journal of Constructional Steel Research, vol. 2017, no. 128, pp. 53-73.
  • Clifton, C.C., Bruneau, M., MacRae, G., Leon R. and Fussell, A. (2011). Steel structures damage from the Christchurch earthquake series of 2010 and 2011. Bulletin of the New Zealand Society for Earthquake Engineering, vol. 44, no. 4, pp. 297-318.
  • Clifton, C.C., Nashid, H., Ferguson, G., Hodgson, M., Seal, K. S., MacRae, G. A. and Gardiner, S. (2012). Performance of Eccentrically Braced Framed Buildings In The Cristchurch Earthquake Series of 2010/2011. 15th World Conference on Earthquake Engineering 2012 (15WCEE) , Lisbon, Portugal.
  • Ramsay, J. J., Fussell, A. and Wilkinson, R. G. (2013). Design of replaceable-link eccentric braced frames in postearthquake Christchurch. Proceedings of the Steel Innovations Conference 2013, Christchurch, New Zealand.
  • Gardiner, G., Clifton C.C. and MacRae, G. A. (2013). Performance, damage assessment and repair of a multistorey eccentrically braced frame building following the Christchurch earthquake series, steel innovations conference 2013. Proceedings of the Steel Innovations Conference 2013, Christchurch, New Zealand.
  • Stratan, A., Dubina D. and Dinu, F. (2003). Control of global performance of seismic resistant EBF with removable link. Proceedings of the 4th International Conference on Behaviour of Steel Structures in Seismic Areas (STESSA 2003), Naples, Italy, 2003, PP. 174-180.
  • Stratan A. and Dubina, D. (2004). Bolted links for eccentrically braced steel frames. Proceedings of the 5th AISC/ECCS International Workshop: Connections in Steel Structures V. Behaviour, Strength and Design, Delft, The Netherlands, 2004, PP. 223-332.
  • Ioan, A., Stratan, A., Dubina, D., Poljansek, M., Molina, F.J., Taucer, F., Pegon, P. and Sabau, G. (2016). Experimental validation of re-centring capability of eccentrically braced frames with removable links. Engineering Structures, vol. 113, pp. 335-346.
  • Balut N. and Gioncu V. (2003). Suggestion for an improved ‘dog-bone’ solution. Proceedings of the 4th International Conference on Behaviour of Steel Structures in Seismic Areas (STESSA 2003), Naples, Italy.
  • Mansour, N. (2010). Eccentrically braced frames with replaceable shear links, Toronto, Ontario, Canada: Ph.D. Thesis, Department of Civil Engineering.
  • Mansour, N., Christopoulos, C. and Tremblay, R. (2011). Experimental validation of replaceable shear links for eccentrically braced steel frames. Journal of Structural Engineering, ASCE, vol. 137, no. 10, pp. 1141-1152.
  • Ji, X., Wang, Y., Ma, Q. and Okazaki, T. (2015). Cyclic behavior of very short steel shear links. Journal of Structural Engineering, ASCE, vol. 142, no. 2, p. 04015114.
  • Bozkurt, M.B. (2017). Developing replaceable members for steel lateral load resisting systems, Ankara, Turkey: Doctoral Dissertation, Middle East Technical Univeresity.
  • Bozkurt, M.B. and Topkaya, C. (2017). Replaceable links with direct brace attachments for eccentrically braced frames. Earthquake Engineering & Structural Dynamics, vol. 46, pp. 2121-2139.
  • Bozkurt, M.B. and Topkaya, C. (2018) Replaceable links with gusseted brace joints for eccentrically braced frames," Soil Dynamics & Earthquake Engineering, vol. 151, pp. 305-318.
  • McCormick, J., Aburano, H., Ikenaga, M. and Nakashima, M. (2008). Permissible Residual Deformation Levels For Building Structures Considering Both Safety And Human Elements. The 14th World Conference on Earthquake Engineering, Beijing, China.
  • Bozkurt, M.B., Kazemzadeh Azad S. and Topkaya, C. (2019). Development of detachable replaceable links for eccentrically braced frames. Earthquake Engineering & Structural Dynamics, pp. 1-22.
  • Özkılıç, Y.O., Bozkurt M. B. and Topkaya, C. (2021). Mid-Spliced end-plated replaceable links for eccentrically braced frames. Engineering Structures, vol. 237, no. 2021, p. 112225.
  • Elkady, A. and Lignos, D. G. (2014). Effect of gravity framing on the overstrength and collapse capacity of steel frame buildings with perimeter special moment frames. Earthquake Engineering & Structural Dynamics, vol. 44, pp. 1289-1307.
  • Ji, X., Kato, M., Wang, T., Hitaka, T. and Nakashima, M. (2009). Effect of gravity columns on mitigation of drift concentration for braced frames. Journal of Constructional Steel Research, vol. 65, pp. 2148-2156.
  • Astaneh-Asl, A., Nader, M. N. and Malik, L. (1989). Cyclic behavior of double angle connections. Journal of Structural Engineering, ASCE, vol. 115, no. 5, pp. 1101-1116.
  • Shen, J. and Astaneh-Asl, A. (1999). Hysteretic behavior of bolted-angle connections. Journal of Constructional Steel Research, vol. 51, pp. 201-218.
  • Lui, J. and Astaneh-Asl, A. (2000). Cyclic testing of simple connections including effects of slab," Journal of Structural Engineering, ASCE, vol. 126, pp. 32-39.
  • Abolmaali, A., Kukreti, A. R. and Razavi, H. (2003). Hysteresis behavior of semi-rigid double web angle steel connections. Journal of Constructional Steel Research, vol. 59, pp. 1057-1082.
  • Boston, M. (2012). Reducing Residual Drift in Buckling-Restrained Braced Frames by Using Gravity Columns as Part of a Dual System, Provo, Utah: Brigham Young University BYU ScholarsArchive.
  • Flores F.X. and Charney, F.A. (2014). The influence of the gravity system framing on the seismic performance of special steel moment frames. 10th U.S. National Conference on Earthquake Engineering, Anchorage, Alaska.
  • Dubina, D., Stratan A. and Dinu, F. (2008). Dual high-strength steel eccentrically braced frames with removable links. Earthquake Engineering & Structural Dynamics, vol. 37, no. 15, pp. 1703-1720.
  • Dubina, D., Stratan, A. and Dinu, F. (2011). Re-centring capacity of dual-steel frames. Steel Construction, vol. 4, no. 2, pp. 73-84.
  • Ioan, A., Stratan, A., Dubina, D. and Taucer F. (2013). Dual-Steel Eccentrically Braced Frames with Bolted Links – Simulation of Safe Removal Proces. Acta Technica Napocensis: Civil Engineering & Architecture, vol. 56, no. 2, pp. 111-118.
  • Sabau, G., Poljansek, M., Taucer, F., Pegon, P., Molina, F., Tirelli, D., Viaccoz, B., Stratan, A., Chesoan, A. and Dubina, D. (2014). Seismic Engineering Research Infrastructures For European Synergies: Full-Scale Experimental Validation of a Dual Eccentrically Braced Frame with Removable Links (DUAREM). Report EUR 27030, Luxembourg.
  • Erochko, J., Christopoulos, C., Tremblay, R. and Choi, H. (2011). Residual Drift Response of SMRFs and BRB Frames in Steel Buildings Designed according to ASCE 7-05. Journal of Structural Engineering, vol. 137, no. 5, pp. 589-599.
  • Harris, J.L. and Speicher, M.S. (2015). NIST Technical Note 1863-3, Assessment of First Generation Performance-Based Seismic Design Methods for New Steel Buildings, Volume 3: Eccentrically Braced Frames. National Institute of Standards and Technology, Gaithersburg, Maryland.
  • OPENSEES, Version 2.0 User Command-Language Manual, 2009.
  • FEMA P695, Quantification of building seismic performance factors, Washington, DC: Building Seismic Safety Council for the Federal Emergency Management Agency, 2009.
  • ASCE/SEI-7-10, "Minimum Design Loads for Buildings and Other Structures," Structural Engineering Institute of the American Society of Civil Engineers, Reston,Virginia, 2010.
  • AISC, "Specification for Structural Steel Buildings – ANSI/AISC 360-10", American Institute of Steel Construction, Chicago, ‎Illinois, 2010.
  • Ramadan, T. and Ghobarah, A. (1995). Analytical Model For Shear-Link Behavior. Journal of Structural Engineering, ASCE, vol. 121, pp. 1574-1580.
  • Richards, P.W. and Uang, C.M. (2006). Testing Protocol for Short Links in Eccentrically. Journal of Structural Engineering, ASCE, vol. 132, no. 8, pp. 1183-1191.
  • Okazaki, T., Arce, G., Ryu, H.C. and Engelhardt, M.D. (2005). Experimental study of local buckling, overstrength, and fracture of links in eccentrically. Journal of Structural Engineering, ASCE, vol. 131, no. 10, pp. 1526-1535.
  • AISC, "Seismic Provisions for Structural Steel Buildings – ANSI/AISC 341-02," American Institute of Steel Construction, Chicago, ‎Illinois, 2002.
  • AISC, "Seismic Provisions for Structural Steel Buildings – ANSI/AISC 341-05," American Institute of Steel Construction, Chicago, ‎Illinois, 2005.
  • Lignos, D.G. and Krawinkler, H. (2011). Deterioration Modeling of Steel Components in Support of Collapse Prediction of Steel Moment Frames under Earthquake Loading. Journal of Structural Engineering, ASCE, vol. 137, no. 11, pp. 1291-1302.
  • Ricles, J.M. and Popov, E.P. (1989). Composite Action in Eccentrically Braced Frames. Journal of Structural Engineering, ASCE, vol. 115, no. 8, pp. 2046-2065.
  • Mahdavipour, M.A. and Deylami, A. (2014). Probabilistic assessment of strain hardening ratio effect on residual deformation demands of Buckling-Restrained Braced Frames. Engineering Structures, vol. 81, pp. 302-308.
  • Ozkilic, Y.O., Bozkurt, M.B. and Topkaya, C. (2021). Mid-spliced end-plated replaceable links for eccentrically braced frames. Engineering Structures, vol. 237, no. 112225.

Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames

Yıl 2026, Cilt: 37 Sayı: 3
https://doi.org/10.18400/tjce.1726766

Öz

This paper presents a numerical study investigating the effect of composite gravity frames (CGFs) on the seismic response of eccentrically braced frames (EBFs) subjected to a suite of earthquake ground motions. Two different modeling approaches were considered for each archetype with 4, 8, and 16 stories. While the first model included only the bare steel EBF, the second model considered the EBF together with tributary gravity frames (GFs) and included the effects of a composite floor slab both on the response of the gravity frame connections and on the response of EBF links. A total of 1056 nonlinear time-history analyses were performed using the Opensees software by subjecting the archetypes to 44 scaled and unscaled far-field ground motions defined in FEMA P695. Interstory drift ratios, residual drift ratios, link rotation angles and residual link rotation angles were considered as the response indicators. In addition, a process of removing damaged links was simulated to evaluate the amount of residual drift after this process. The analyses show that the CGFs have a significant beneficial effect on the performance of EBF in terms of link rotation angles and residual drift ratios. Further, the process of removing links for replacement may provide additional benefits in allowing further reductions in residual drift ratio obtained as less than 0.5% even under ground motions scaled to the maximum considered earthquake when the CGFs were included in the model.

Proje Numarası

TÜBİTAK 2219-1059B191700103

Kaynakça

  • AISC, "Seismic Provisions for Structural Steel Buildings – ANSI/AISC 341-22," American Institute of Steel Construction, Chicago, ‎Illinois, 2022.
  • Kazemzadeh Azad, S.and Topkaya, C. (2017). A review of research on steel eccentrically braced frame. Journal of Constructional Steel Research, vol. 2017, no. 128, pp. 53-73.
  • Clifton, C.C., Bruneau, M., MacRae, G., Leon R. and Fussell, A. (2011). Steel structures damage from the Christchurch earthquake series of 2010 and 2011. Bulletin of the New Zealand Society for Earthquake Engineering, vol. 44, no. 4, pp. 297-318.
  • Clifton, C.C., Nashid, H., Ferguson, G., Hodgson, M., Seal, K. S., MacRae, G. A. and Gardiner, S. (2012). Performance of Eccentrically Braced Framed Buildings In The Cristchurch Earthquake Series of 2010/2011. 15th World Conference on Earthquake Engineering 2012 (15WCEE) , Lisbon, Portugal.
  • Ramsay, J. J., Fussell, A. and Wilkinson, R. G. (2013). Design of replaceable-link eccentric braced frames in postearthquake Christchurch. Proceedings of the Steel Innovations Conference 2013, Christchurch, New Zealand.
  • Gardiner, G., Clifton C.C. and MacRae, G. A. (2013). Performance, damage assessment and repair of a multistorey eccentrically braced frame building following the Christchurch earthquake series, steel innovations conference 2013. Proceedings of the Steel Innovations Conference 2013, Christchurch, New Zealand.
  • Stratan, A., Dubina D. and Dinu, F. (2003). Control of global performance of seismic resistant EBF with removable link. Proceedings of the 4th International Conference on Behaviour of Steel Structures in Seismic Areas (STESSA 2003), Naples, Italy, 2003, PP. 174-180.
  • Stratan A. and Dubina, D. (2004). Bolted links for eccentrically braced steel frames. Proceedings of the 5th AISC/ECCS International Workshop: Connections in Steel Structures V. Behaviour, Strength and Design, Delft, The Netherlands, 2004, PP. 223-332.
  • Ioan, A., Stratan, A., Dubina, D., Poljansek, M., Molina, F.J., Taucer, F., Pegon, P. and Sabau, G. (2016). Experimental validation of re-centring capability of eccentrically braced frames with removable links. Engineering Structures, vol. 113, pp. 335-346.
  • Balut N. and Gioncu V. (2003). Suggestion for an improved ‘dog-bone’ solution. Proceedings of the 4th International Conference on Behaviour of Steel Structures in Seismic Areas (STESSA 2003), Naples, Italy.
  • Mansour, N. (2010). Eccentrically braced frames with replaceable shear links, Toronto, Ontario, Canada: Ph.D. Thesis, Department of Civil Engineering.
  • Mansour, N., Christopoulos, C. and Tremblay, R. (2011). Experimental validation of replaceable shear links for eccentrically braced steel frames. Journal of Structural Engineering, ASCE, vol. 137, no. 10, pp. 1141-1152.
  • Ji, X., Wang, Y., Ma, Q. and Okazaki, T. (2015). Cyclic behavior of very short steel shear links. Journal of Structural Engineering, ASCE, vol. 142, no. 2, p. 04015114.
  • Bozkurt, M.B. (2017). Developing replaceable members for steel lateral load resisting systems, Ankara, Turkey: Doctoral Dissertation, Middle East Technical Univeresity.
  • Bozkurt, M.B. and Topkaya, C. (2017). Replaceable links with direct brace attachments for eccentrically braced frames. Earthquake Engineering & Structural Dynamics, vol. 46, pp. 2121-2139.
  • Bozkurt, M.B. and Topkaya, C. (2018) Replaceable links with gusseted brace joints for eccentrically braced frames," Soil Dynamics & Earthquake Engineering, vol. 151, pp. 305-318.
  • McCormick, J., Aburano, H., Ikenaga, M. and Nakashima, M. (2008). Permissible Residual Deformation Levels For Building Structures Considering Both Safety And Human Elements. The 14th World Conference on Earthquake Engineering, Beijing, China.
  • Bozkurt, M.B., Kazemzadeh Azad S. and Topkaya, C. (2019). Development of detachable replaceable links for eccentrically braced frames. Earthquake Engineering & Structural Dynamics, pp. 1-22.
  • Özkılıç, Y.O., Bozkurt M. B. and Topkaya, C. (2021). Mid-Spliced end-plated replaceable links for eccentrically braced frames. Engineering Structures, vol. 237, no. 2021, p. 112225.
  • Elkady, A. and Lignos, D. G. (2014). Effect of gravity framing on the overstrength and collapse capacity of steel frame buildings with perimeter special moment frames. Earthquake Engineering & Structural Dynamics, vol. 44, pp. 1289-1307.
  • Ji, X., Kato, M., Wang, T., Hitaka, T. and Nakashima, M. (2009). Effect of gravity columns on mitigation of drift concentration for braced frames. Journal of Constructional Steel Research, vol. 65, pp. 2148-2156.
  • Astaneh-Asl, A., Nader, M. N. and Malik, L. (1989). Cyclic behavior of double angle connections. Journal of Structural Engineering, ASCE, vol. 115, no. 5, pp. 1101-1116.
  • Shen, J. and Astaneh-Asl, A. (1999). Hysteretic behavior of bolted-angle connections. Journal of Constructional Steel Research, vol. 51, pp. 201-218.
  • Lui, J. and Astaneh-Asl, A. (2000). Cyclic testing of simple connections including effects of slab," Journal of Structural Engineering, ASCE, vol. 126, pp. 32-39.
  • Abolmaali, A., Kukreti, A. R. and Razavi, H. (2003). Hysteresis behavior of semi-rigid double web angle steel connections. Journal of Constructional Steel Research, vol. 59, pp. 1057-1082.
  • Boston, M. (2012). Reducing Residual Drift in Buckling-Restrained Braced Frames by Using Gravity Columns as Part of a Dual System, Provo, Utah: Brigham Young University BYU ScholarsArchive.
  • Flores F.X. and Charney, F.A. (2014). The influence of the gravity system framing on the seismic performance of special steel moment frames. 10th U.S. National Conference on Earthquake Engineering, Anchorage, Alaska.
  • Dubina, D., Stratan A. and Dinu, F. (2008). Dual high-strength steel eccentrically braced frames with removable links. Earthquake Engineering & Structural Dynamics, vol. 37, no. 15, pp. 1703-1720.
  • Dubina, D., Stratan, A. and Dinu, F. (2011). Re-centring capacity of dual-steel frames. Steel Construction, vol. 4, no. 2, pp. 73-84.
  • Ioan, A., Stratan, A., Dubina, D. and Taucer F. (2013). Dual-Steel Eccentrically Braced Frames with Bolted Links – Simulation of Safe Removal Proces. Acta Technica Napocensis: Civil Engineering & Architecture, vol. 56, no. 2, pp. 111-118.
  • Sabau, G., Poljansek, M., Taucer, F., Pegon, P., Molina, F., Tirelli, D., Viaccoz, B., Stratan, A., Chesoan, A. and Dubina, D. (2014). Seismic Engineering Research Infrastructures For European Synergies: Full-Scale Experimental Validation of a Dual Eccentrically Braced Frame with Removable Links (DUAREM). Report EUR 27030, Luxembourg.
  • Erochko, J., Christopoulos, C., Tremblay, R. and Choi, H. (2011). Residual Drift Response of SMRFs and BRB Frames in Steel Buildings Designed according to ASCE 7-05. Journal of Structural Engineering, vol. 137, no. 5, pp. 589-599.
  • Harris, J.L. and Speicher, M.S. (2015). NIST Technical Note 1863-3, Assessment of First Generation Performance-Based Seismic Design Methods for New Steel Buildings, Volume 3: Eccentrically Braced Frames. National Institute of Standards and Technology, Gaithersburg, Maryland.
  • OPENSEES, Version 2.0 User Command-Language Manual, 2009.
  • FEMA P695, Quantification of building seismic performance factors, Washington, DC: Building Seismic Safety Council for the Federal Emergency Management Agency, 2009.
  • ASCE/SEI-7-10, "Minimum Design Loads for Buildings and Other Structures," Structural Engineering Institute of the American Society of Civil Engineers, Reston,Virginia, 2010.
  • AISC, "Specification for Structural Steel Buildings – ANSI/AISC 360-10", American Institute of Steel Construction, Chicago, ‎Illinois, 2010.
  • Ramadan, T. and Ghobarah, A. (1995). Analytical Model For Shear-Link Behavior. Journal of Structural Engineering, ASCE, vol. 121, pp. 1574-1580.
  • Richards, P.W. and Uang, C.M. (2006). Testing Protocol for Short Links in Eccentrically. Journal of Structural Engineering, ASCE, vol. 132, no. 8, pp. 1183-1191.
  • Okazaki, T., Arce, G., Ryu, H.C. and Engelhardt, M.D. (2005). Experimental study of local buckling, overstrength, and fracture of links in eccentrically. Journal of Structural Engineering, ASCE, vol. 131, no. 10, pp. 1526-1535.
  • AISC, "Seismic Provisions for Structural Steel Buildings – ANSI/AISC 341-02," American Institute of Steel Construction, Chicago, ‎Illinois, 2002.
  • AISC, "Seismic Provisions for Structural Steel Buildings – ANSI/AISC 341-05," American Institute of Steel Construction, Chicago, ‎Illinois, 2005.
  • Lignos, D.G. and Krawinkler, H. (2011). Deterioration Modeling of Steel Components in Support of Collapse Prediction of Steel Moment Frames under Earthquake Loading. Journal of Structural Engineering, ASCE, vol. 137, no. 11, pp. 1291-1302.
  • Ricles, J.M. and Popov, E.P. (1989). Composite Action in Eccentrically Braced Frames. Journal of Structural Engineering, ASCE, vol. 115, no. 8, pp. 2046-2065.
  • Mahdavipour, M.A. and Deylami, A. (2014). Probabilistic assessment of strain hardening ratio effect on residual deformation demands of Buckling-Restrained Braced Frames. Engineering Structures, vol. 81, pp. 302-308.
  • Ozkilic, Y.O., Bozkurt, M.B. and Topkaya, C. (2021). Mid-spliced end-plated replaceable links for eccentrically braced frames. Engineering Structures, vol. 237, no. 112225.
Toplam 46 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Çelik Yapılar
Bölüm Araştırma Makaleleri
Yazarlar

Mehmet Bakır Bozkurt 0000-0002-1213-3092

Michael D. Engelhardt Bu kişi benim 0000-0001-5868-196X

Proje Numarası TÜBİTAK 2219-1059B191700103
Erken Görünüm Tarihi 14 Kasım 2025
Yayımlanma Tarihi 14 Kasım 2025
Gönderilme Tarihi 25 Haziran 2025
Kabul Tarihi 7 Kasım 2025
Yayımlandığı Sayı Yıl 2026 Cilt: 37 Sayı: 3

Kaynak Göster

APA Bozkurt, M. B., & Engelhardt, M. D. (2025). Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames. Turkish Journal of Civil Engineering, 37(3). https://doi.org/10.18400/tjce.1726766
AMA Bozkurt MB, Engelhardt MD. Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames. tjce. Kasım 2025;37(3). doi:10.18400/tjce.1726766
Chicago Bozkurt, Mehmet Bakır, ve Michael D. Engelhardt. “Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames”. Turkish Journal of Civil Engineering 37, sy. 3 (Kasım 2025). https://doi.org/10.18400/tjce.1726766.
EndNote Bozkurt MB, Engelhardt MD (01 Kasım 2025) Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames. Turkish Journal of Civil Engineering 37 3
IEEE M. B. Bozkurt ve M. D. Engelhardt, “Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames”, tjce, c. 37, sy. 3, 2025, doi: 10.18400/tjce.1726766.
ISNAD Bozkurt, Mehmet Bakır - Engelhardt, Michael D. “Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames”. Turkish Journal of Civil Engineering 37/3 (Kasım2025). https://doi.org/10.18400/tjce.1726766.
JAMA Bozkurt MB, Engelhardt MD. Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames. tjce. 2025;37. doi:10.18400/tjce.1726766.
MLA Bozkurt, Mehmet Bakır ve Michael D. Engelhardt. “Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames”. Turkish Journal of Civil Engineering, c. 37, sy. 3, 2025, doi:10.18400/tjce.1726766.
Vancouver Bozkurt MB, Engelhardt MD. Effect of Composite Gravity Framing on Seismic Response of Eccentrically Braced Frames. tjce. 2025;37(3).