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Article

Seismic Response of Star-Type Grid Concrete Wall Structure by Numerical Modeling

1
Key Laboratory of Earthquake Engineering and Engineering Vibration, Institute of Engineering Mechanics, China Earthquake Administration, Harbin 150086, China
2
Key Laboratory of Earthquake Disaster Mitigation, Ministry of Emergency Management, Harbin 150086, China
3
State Key Laboratory of Performance Monitoring and Protecting of Rail Transit Infrastructure, East China Jiaotong University, Nanchang 330013, China
4
Institute of Geotechnical Engineering, Nanjing Tech University, Nanjing 210009, China
*
Author to whom correspondence should be addressed.
Materials 2022, 15(23), 8519; https://doi.org/10.3390/ma15238519
Submission received: 13 October 2022 / Revised: 14 November 2022 / Accepted: 20 November 2022 / Published: 29 November 2022
(This article belongs to the Special Issue Seismic Design and Structures Analysis of Construction Materials)

Abstract

Cement polystyrene shell mold (CPSM) grid concrete walls have been widely applied in the construction of low and mid-rise buildings with higher load-bearing and insulation properties. A star-type grid concrete wall was constructed based on the infill wall simplified to an equivalent diagonal bracing model. To investigate the seismic responses and behavior of a star-type grid concrete wall structure, an overall time-history numerical simulation was carried out in this paper. Typical results, including acceleration, deformation, hysteresis curve and failure pattern of this novel construction system, were interpreted. Results indicate that the star-type grid concrete wall structure has satisfactory seismic performance, including energy dissipation capacity. The structure has higher lateral stiffness and can work in an elastic state under major earthquakes. Accordingly, it is more sensitive to near-fault ground motion with higher frequency components. Meanwhile, the structural inter-story drift angle is less than the limit value of lighter damage when subjected to a super-major earthquake, and the structure presents shear deformation. The openings significantly affect the failure mode, the star-type grid concrete wall with a window (a small aspect ratio less than 1.11) conforms to shear failure, and the wall with a door (aspect ratio of 2.5) conforms to bending-shear failure. The diagonal bracing can distribute the stress in the wall, especially the concrete lattice beam, and effectively resist the lateral forces via the concrete lattice column, improving the ductility and integrity of the structural system.
Keywords: star-type grid concrete wall; seismic response; numerical simulation; deformation star-type grid concrete wall; seismic response; numerical simulation; deformation

Share and Cite

MDPI and ACS Style

Tang, B.; Dong, Y.; Bai, W.; Chen, H.-P.; Zhuang, H.; Deng, W. Seismic Response of Star-Type Grid Concrete Wall Structure by Numerical Modeling. Materials 2022, 15, 8519. https://doi.org/10.3390/ma15238519

AMA Style

Tang B, Dong Y, Bai W, Chen H-P, Zhuang H, Deng W. Seismic Response of Star-Type Grid Concrete Wall Structure by Numerical Modeling. Materials. 2022; 15(23):8519. https://doi.org/10.3390/ma15238519

Chicago/Turabian Style

Tang, Baizan, Yuying Dong, Wen Bai, Hua-Peng Chen, Haiyang Zhuang, and Wenchao Deng. 2022. "Seismic Response of Star-Type Grid Concrete Wall Structure by Numerical Modeling" Materials 15, no. 23: 8519. https://doi.org/10.3390/ma15238519

APA Style

Tang, B., Dong, Y., Bai, W., Chen, H.-P., Zhuang, H., & Deng, W. (2022). Seismic Response of Star-Type Grid Concrete Wall Structure by Numerical Modeling. Materials, 15(23), 8519. https://doi.org/10.3390/ma15238519

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