SEISMIC RESILIENCE THROUGH DIAPHRAGM WALL CONSTRUCTION
Keywords:
Seismic resilience, diaphragm walls, reinforced concrete frames, earthquake resistance, structural integrity.Abstract
In a world where the stability of built environments faces relentless tests from seismic forces, the integration of diaphragm walls within reinforced concrete frames emerges as a formidable strategy to enhance earthquake resistance. This article embarks on an exploration of this innovative approach, delving into the intricate interplay between diaphragm walls and seismic resilience. We unravel the essence of diaphragm walls as stalwart elements that distribute lateral forces, mitigate torsional effects, and uphold a building‘s integrity during seismic events. Our journey navigates through the construction nuances of diaphragm walls, explores their seismic advantages, and celebrates the monumental achievements of structures that epitomize their potential. Through this exploration, we unlock a world where architectural marvels rise to defy both the forces of nature and the limits of conventional design, heralding an era where structures stand unshaken, resilient, and unwavering.
References
S.A.Yusupkhodjaev, J.I.Makhmudov (2023). Seismic-resistant structures in South Korea: design and construction practices. Me’morchilik va qurilish muammolari (Ilmiy-texnik jurnal), 2023 (2), 77-79.
R.R.Yusupov, J.I.Makhmudov (2023). Seismic design codes and standards: learning from foreign expertise to enhance seismic performance of multi-story frame buildings. GOLDEN BRAIN Multidisciplinary Scientific Journal, 1 (15), 320-327.
R.Mavlonov, J.Makhmudov (2021). Seismic Load Receiver Reinforced Concrete Frames Infilled With Masonry. International journal of academic engineering research (IJAER), Vol. 5 Issue 4, 78-80.
Saidiy S.A., Sobirov O.Kh. (2023). Seysmik hududlarda bikrlik diafragmali temirbeton binolarning ishlashini tadqiq qilish. Innovative technologies in construction, May 25, 2023, Tashkent, 382-285
Bažant, Z. P., & Cedolin, L. (2010). Stability of Structures: Elastic, Inelastic, Fracture, and Damage Theories. Oxford University Press.
Chopra, A. K. (2005). Dynamics of Structures: Theory and Applications to Earthquake Engineering. Pearson Education.
Kramer, S. L. (1996). Geotechnical Earthquake Engineering. Prentice Hall.
Lotte World Tower Official Website. (https://www.lwt.co.kr/eng/).
Park, S., Kim, Y., & Lee, K. (2005). Design of Diaphragm-Wall-Type Deep Excavation for Lotte Super High-Rise Building. Structural Engineering International, 15(1), 53-58.
Reitherman, R. (1994). The World Trade Center Bomb: Who is the Weakest Link? Earthquake Spectra, 10(2), 357-395.
Sabnis, G. M. (2011). Structural Health Monitoring of Civil Infrastructure Systems. Woodhead Publishing.
Taranath, B. S. (2009). Reinforced Concrete Design of Tall Buildings. CRC Press.
United States Geological Survey (USGS) Earthquake Hazards Program. (https://earthquake.usgs.gov/).
Downloads
Published
How to Cite
Issue
Section
License
This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.