Bibliographic citations
Cristobal, J., Dioses, K. (2024). Optimización del Diseño en Concreto Armado de un centro educativo ubicado en una alta zona sísmica. Caso de estudio Centro Educativo - Pueblo Joven Mateo Pumacahua - San Juan de Miraflores [Trabajo de Suficiencia Profesional, Universidad Peruana de Ciencias Aplicadas (UPC)]. http://hdl.handle.net/10757/682863
Cristobal, J., Dioses, K. Optimización del Diseño en Concreto Armado de un centro educativo ubicado en una alta zona sísmica. Caso de estudio Centro Educativo - Pueblo Joven Mateo Pumacahua - San Juan de Miraflores [Trabajo de Suficiencia Profesional]. PE: Universidad Peruana de Ciencias Aplicadas (UPC); 2024. http://hdl.handle.net/10757/682863
@misc{renati/1032038,
title = "Optimización del Diseño en Concreto Armado de un centro educativo ubicado en una alta zona sísmica. Caso de estudio Centro Educativo - Pueblo Joven Mateo Pumacahua - San Juan de Miraflores",
author = "Dioses Yalles, Kathia Daniela",
publisher = "Universidad Peruana de Ciencias Aplicadas (UPC)",
year = "2024"
}
The research entitled “Optimization of the Reinforced Concrete Design of an Educational Center Located in a High Seismic Zone: Case Study of the Educational Center - Pueblo Joven Mateo Pumacahua - San Juan de Miraflores” aimed to optimize the structural design of an educational center in a high seismic zone through the use of nonlinear analysis. This method allowed to evaluate the structural behavior and determine the need for reinforcements to improve its performance during earthquakes, which incurred additional costs. The performance analysis indicated that the structure remained operational on the X axis, but the columns on the Y axis presented vulnerability, which could lead to a collapse if not reinforced. The maximum drifts were 0.000201 in X and 0.000734 in Y for pavilion 1, and 0.000236 and 0.00052 in pavilion 3, showing greater flexibility in Y for pavilion 1. The maximum shear in pavilion 1 was 293,797 kgf with small displacements, while in pavilion 3, the shears were 181,183 kgf and 90,438 kgf, with displacements of up to 0.58 cm in Y, reinforcing the need for structural reinforcement. The estimated budget for reinforcement was 5.14% higher than initially planned. In conclusion, the nonlinear analysis proved to be effective in optimizing the reinforced concrete design of the educational center, evidencing the need for reinforcements in the "y" axis to ensure stability and comply with the displacement and irregularity limits.
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