Nonlinear Dynamic Analysis of Pilotis Structures Supported by Drift-Hardening Concrete Columns
Abstract
:1. Introduction
2. Outline of the Sample Pilotis Buildings
3. Method of Nonlinear Dynamic Analysis
4. Analytical Results and Discussions
4.1. Static Analysis
4.2. Dynamic Response Analysis
4.2.1. Analysis Method and Input Ground Motions
4.2.2. Maximum and Residual Inter-Story Drift Ratios
4.2.3. Influence of Dynamic Loading on Residual Drift Ratio
4.2.4. Maximum Inter-Story Shear Force
5. Conclusions
- The use of DHC columns to support the upper bearing-wall could ensure pilotis buildings sufficient robustness and significantly enhance their resilience. Even subjected to extremely strong earthquakes scaled up by PGV = 100 cm/s, the residual drift ratio of the DHCP story remained close to zero, implying the high recoverability and re-occupancy of the DHCP buildings;
- Not only the inherent self-centering ability but also the shake-down effect contributed to the reduction in residual drift ratio in the DHCP story. On the other hand, the reduction in drift ratio in the DCP story by the shake-down effect varies with earthquake records and should not be expected for the pilotis buildings supported by conventional DC columns;
- To make the most of the high resilience of the DHCP story, the upper bearing-wall should have a larger lateral resistance than the sum of the DHC columns. In other words, if the upper bearing-wall does not have sufficient ultimate lateral resistance, the DHCP story will no longer be the weak point of a pilotis building; careful structural design of the upper bearing-wall is needed to ensure high recoverability of the whole building;
- Because the hysteresis energy dissipation capacity of the DHC columns was poorer than that of the DC columns, the DHCP story generally exhibited larger lateral deformation (larger maximum inter-story drift response) than the DCP story. When subjected to the JMA Kobe earthquake, which is a pulse-like earthquake, however, the maximum inter-story drift ratio of the DHCP story was smaller than that of the DCP story as PGV became larger than 50 cm/s.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Mahin, S.A.; Bertero, V.V.; Chopra, A.K.; Collins, R.G. Response of the Olive View Hospital Main Building during the San Fernando Earthquake; Report No. EERC-76/22; Earthquake Engineering Research Center, University of California: Berkeley, CA, USA, 1976. [Google Scholar]
- Architectural Institute of Japan (AIJ). Data for Ultimate Strength Design of Reinforced Concrete Structures; AIJ: Tokyo, Japan, 1987. (In Japanese) [Google Scholar]
- Building Research Institute of Japan (BRI). Report of the 1995 Hyogoken-Nanbu Earthquake; BRI: Tsukuba, Japan, 1996. (In Japanese) [Google Scholar]
- Nakamura, S. Damage of Reinforced Concrete Structures in the 2016 Kumamoto Earthquake; Text of BRI Conference; BRI: Tsukuba, Japan, 2018; pp. 73–74. (In Japanese) [Google Scholar]
- Yoshimura, M. Nonlinear Analysis of a Reinforced Concrete Building with a Soft First Story Collapsed by the 1995 Hyogoken-Nanbu Earthquake. Cem. Concr. Compos. 1997, 19, 213–221. [Google Scholar] [CrossRef]
- Komuro, T.; Kawabata, I.; Kotani, S. Dynamic Response of Bearing Wall Structures Supported by Pilotis Story. Proc. Jpn. Concr. Inst. 1996, 18, 755–760. (In Japanese) [Google Scholar]
- Abimanyu, R.D.; Ichinose, T.; Yamada, Y.; Yamazoe, T. Study on the Collapse Mechanism of Concrete Structures with Pilotis Story. Proc. Jpn. Concr. Inst. 1997, 19, 501–506. (In Japanese) [Google Scholar]
- Gu, J.H.; Kuramoto, H.; Matsumoto, K. Dynamic Response Characteristics of Concrete Pilotis Structures. Proc. Jpn. Concr. Inst. 2000, 22, 25–30. (In Japanese) [Google Scholar]
- Samaneh, A.; Kuramoto, Y.; Matsumoto, K. Effect of Variation of Axial Load on the Seismic Response of RC Pilotis Structures. Proc. Jpn. Concr. Inst. 2003, 25, 1309–1314. (In Japanese) [Google Scholar]
- Nagae, T.; Hayashi, S.; Krawvinkler, H.; Nakashima, M. Probabilistic Evaluation of Seismic Response of Pilotis Story. Proc. Jpn. Concr. Inst. 2005, 27, 43–48. (In Japanese) [Google Scholar]
- Suzuki, K.; Yoshimura, M.; Inoue, N.; Kuramoio, H.; Tanimura, Y.; Mukai, T. Report on Seismic Resistance of Pilotis Structures and Rigid Frame Viaducts and the Seismic Design (Soft-Story Design); Committee Report JCI-TC072A; Japan Concrete Institute: Tokyo, Japan, 2009. [Google Scholar]
- Karayannis, C.G.; Favvata, M.J.; Kakaletsis, D.J. Seismic Behaviour of Infilled and Pilotis RC Frame Structures with Beam-column Joint Degradation Effect. Eng. Struct. 2011, 33, 2821–2831. [Google Scholar] [CrossRef]
- Uchida, K.; Hanai, N.; Shirakawa, T. Analytical Study on Elastic-Plastic Properties of Pilotis Structures. Proc. Jpn. Concr. Inst. 2015, 37, 31–36. (In Japanese) [Google Scholar]
- Uno, K.; Suzuki, T.; Miyake, M.; Takahashi, S.; Ichinose, T.; Hoshi, T.; Yagi, S. Pushover Model for Beam-column Joint in RC Soft-First-Story Frame with Column Extended Toward inside (Study on joint subjected to opening load). J. Struct. Constr. Eng. (Trans. AIJ) 2016, 81, 607–617. (In Japanese) [Google Scholar] [CrossRef]
- Gong, M.; Zou, Z.; Wang, X.; Lu, X.; Xie, L. Comparison Seismic Performance of Pilotis and Bare RC Frame Structures by Shaking Table Tests. Eng. Struct. 2019, 199, 109442. [Google Scholar] [CrossRef]
- Tohoku Branch of AIJ. Report on the damage of buildings in the 2011 Eastern Japan Earthquake; Tohoku Branch of AIJ: Sendai, Japan, 2011. (In Japanese) [Google Scholar]
- Civil and Structural Groups of Tsinghua University; Xinan Jiaotong University; Beijing Jiaotong University. Analysis on Sesmic Damage of Buildings in the Wenchuan Earthquake. J. Build. Struct. 2008, 29, 1–9. (In Chinese) [Google Scholar]
- Sun, Y.P.; Takeuchi, T.; Okuda, S.; Oda, Y. Fundamental Study on Seismic Behavior of Resilient Concrete Columns. Proc. Jpn. Concr. Inst. 2013, 35, 145–150. (In Japanese) [Google Scholar]
- Takeuchi, T.; Sun, Y.P.; Tani, M.; Shing, P.S.B. Seismic Performance of Concrete Columns Reinforced with Weakly Bonded Ultrahigh-Strength Longitudinal Bars. J. Struct. Eng. (ASCE) 2021, 147, 04020290. [Google Scholar] [CrossRef]
- Sun, Y.P.; Cai, G.C. Seismic Behavior of Circular Concrete Columns Reinforced by Low Bond Ultrahigh Strength Rebars. J. Struct. Eng. (ASCE) 2023, 149, 04023126. [Google Scholar] [CrossRef]
- Iemura, H.; Takahashi, Y.; Sogabe, N. Innovation of high-performance RC structure with unbonded bars for strong earthquakes. Jpn. J. JSCE 2002, 710, 283–296. (In Japanese) [Google Scholar] [CrossRef] [PubMed]
- Iemura, H.; Takahashi, Y.; Sogabe, N. Two-level seismic design method using post-yield stiffness and its application to unbonded bar reinforced concrete piers. Struct. Eng. Earthq. Eng. (JSCE) 2006, 23, 109–116. [Google Scholar] [CrossRef]
- The Japan Building Disaster Prevention Association (JBDPA). Standard for Seismic Evaluation of Existing Reinforced Concrete Building; JBDPA: Tokyo, Japan, 2017. (In Japanese) [Google Scholar]
- Funato, Y.; Takeuchi, T.; Sun, Y.P.; Cai, G.C. Modeling and Application of the Bond-Slip Relation of Low Bond Ultrahigh Strength Bars. Proc. Jpn. Concr. Inst. 2012, 34, 45–50. (In Japanese) [Google Scholar]
- OpenSees Development Team. OpenSees: Open System for Earthquake Engineering Simulation; Pacific Earthquake Engineering Research Center, University of California: Berkeley, CA, USA, 2000; Available online: http://opensees.berkeley.edu (accessed on 29 August 2023).
- Scott, M.H.; Fenves, G.L. Plastic Hinge Integration Methods for Force-Based Beam-Column Elements. J. Struct. Eng. (ASCE) 2006, 132, 244–252. [Google Scholar] [CrossRef]
- Palanci, M.; Kalkan, A.; Senel, S.M. Investigation of shear effects on the capacity and demand estimation of RC buildings. Struct. Eng. Mech. 2016, 60, 1021–1038. [Google Scholar] [CrossRef]
- Sun, Y.P.; Fukuhara, T.; Kitajima, T. Analytical Study of Cyclic Response of Concrete Members Made of High-Strength Materials. In Proceedings of the 8-th U.S. National Conference on Earthquake Engineering, San Francisco, CA, USA, 18–22 April 2006. [Google Scholar]
- Federal Emergence Management Agency (FEMA). Seismic Performance Assessment of Buildings, Volume 1—Methodology, 2nd ed.; FEMA P-58-1; FEMA: Washington, DC, USA, 2018. [Google Scholar]
- MacRae, G.A.; Kawashima, K. Post-Earthquake residual displacement of bilinear oscillators. Earthq. Eng. Struct. Dyn. 1997, 26, 701–716. [Google Scholar] [CrossRef]
- Kayhan, A.H.; Demir, A.; Palanci, M. Statistical evaluation of maximum displacement demands of SDOF systems by code-compatible nonlinear time history analysis. Soil Dyn. Earthq. Eng. 2018, 115, 513–530. [Google Scholar] [CrossRef]
- Demir, A.; Palanci, M.; Kayhan, A.H. Evaluation of Supplementary Constraints on Dispersion of EDPs Using Real Ground Motion Record Sets. Arab. J. Sci. Eng. 2020, 45, 8379–8401. [Google Scholar] [CrossRef]
Column Model | MA (kN∙m) | ϕA (rad/mm) | MB (kN∙m) | ϕB (rad/mm) | MC (kN∙m) | ϕC (rad/mm) | α | γ |
---|---|---|---|---|---|---|---|---|
DHC | 1970 | 0.33 × 10−5 | 3690 | 1.40 × 10−5 | 6410 | 5.60 × 10−5 | 0.110 | 0.5 |
DC | 2400 | 2730 | 2720 | −0.002 | 0.4 |
Record | PGA (cm/s2) | PGV (cm/s) | Sa (T1) (cm/s2) | Sv (T1) (cm/s) | ||
---|---|---|---|---|---|---|
DHCP | DCP | DHCP | DCP | |||
El Centro 1 | 341.7 | 33.5 | 577.3 | 665.0 | 37.8 | 39.9 |
Taft 1 | 152.7 | 15.7 | 422.4 | 353.9 | 25.3 | 23.1 |
JMA Kobe 2 | 818.0 | 90.7 | 2128.2 | 2406.9 | 139.2 | 144.4 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Yuan, S.; Takeuchi, T.; Sun, Y. Nonlinear Dynamic Analysis of Pilotis Structures Supported by Drift-Hardening Concrete Columns. Materials 2023, 16, 6345. https://doi.org/10.3390/ma16196345
Yuan S, Takeuchi T, Sun Y. Nonlinear Dynamic Analysis of Pilotis Structures Supported by Drift-Hardening Concrete Columns. Materials. 2023; 16(19):6345. https://doi.org/10.3390/ma16196345
Chicago/Turabian StyleYuan, Shiyu, Takashi Takeuchi, and Yuping Sun. 2023. "Nonlinear Dynamic Analysis of Pilotis Structures Supported by Drift-Hardening Concrete Columns" Materials 16, no. 19: 6345. https://doi.org/10.3390/ma16196345
APA StyleYuan, S., Takeuchi, T., & Sun, Y. (2023). Nonlinear Dynamic Analysis of Pilotis Structures Supported by Drift-Hardening Concrete Columns. Materials, 16(19), 6345. https://doi.org/10.3390/ma16196345