Optimization of Structural Design in Steel Buildings Based on the Site-Specific Design Spectra of the Mexico Seismic Regulations

Author:

Ramos-Sánchez Juan Antonio12,Díaz Sergio A.1ORCID,Mora-Ortiz René Sebastián1ORCID,Polanco-Sotomayor Gabriel2,Magaña-Hernández Francisco1ORCID

Affiliation:

1. División Académica de Ingeniería y Arquitectura, Universidad Juárez Autónoma de Tabasco, Villahermosa 86040, Tabasco, Mexico

2. Facultad de Ingeniería Anáhuac Mayab, Campus Mérida, Merida 97308, Yucatán, Mexico

Abstract

Seismic risk management in urban areas requires accurate prediction of the expected seismic hazard. The seismic design standards in the world provide the seismic design spectra (DS). These are crucial for estimating seismic forces on a structure, are typically derived from theoretical models in deterministic or probabilistic seismic hazard studies, especially for bedrock soils. Characterizing soil dynamic amplification frequencies or periods is necessary to establish site-specific design spectra (DSsite). Geotechnical and geophysical studies, along with environmental vibration records, determine soil stratigraphy characteristic features and their dominant frequency or period. These parameters improve our understanding of seismic wave behavior from bedrock to surface soil during earthquakes. This article details the utilization of geotechnical, geophysical studies, and environmental vibration records to estimate DSsite in accordance with Mexican seismic regulation and examines the cost–benefit aspects of using the Dssite in optimizing the structural design of a medium-rise steel building in southeastern Mexico, characterized by soft soil and a moderate seismic hazard. The case study demonstrates an 18% cost savings in the structural elements of the building by employing the DSsite with more rational spectral ordinates for study site.

Funder

Consejo de Ciencia y Tecnología del Estado de Tabasco (CCYTET) of the Tabasco State Government

Publisher

MDPI AG

Reference34 articles.

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2. Baker, J.W., Bradley, B.A., and Stafford, P.J. (2021). Seismic Hazard and Risk Analysis, Cambridge University Press.

3. McGuire, R.K. (2004). Seismic Hazard and Risk Analysis, Institute Earthquake Engineering Research.

4. Seismic vulnerability and risk evaluation methods for urban areas. A review with application to a pilot area;Barbat;Struct. Infrastruct. Eng.,2010

5. MDOC-CFE (2015). Manual of Civil Structures Design. Earthquake Design, Federal Electricity Commission (CFE). (In Spanish).

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