Publicado

2023-05-26

Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions

Comportamiento estructural de una tribuna de estadio con aislamiento sísmico, teniendo en cuenta condición de suelo duro y blando

DOI:

https://doi.org/10.15446/dyna.v90n226.105469

Palabras clave:

aislamiento sísmico; tribuna de estadio; mitigación del riesgo; Colombia (es)
seismic isolation; stadium grandstand; risk mitigation; Colombia (en)

Autores/as

La principal aplicación del aislamiento sísmico a nivel mundial está en edificaciones y puentes, sin embargo, puede ser aplicada a cualquier estructura. La técnica, teóricamente, tiene limitaciones de uso por eficiencia, como en edificaciones altas y suelos blandos. En este artículo se estudia una estructura aislada no convencional, para evaluar los beneficios del aislamiento sobre esta. Específicamente se analiza una tribuna de estadio localizada en Colombia, con condiciones de suelo duro y blando. La estructura es importante, debido a su necesidad de mitigación del riesgo por sismo. Esta considerará un alto número de personas que deben evacuar de forma segura durante terremotos y después de estos, la estructura podría ser destinada a refugio humanitario. Los resultados a) muestran beneficio estructural principalmente en condiciones de suelo duro, b) corroboran y cuantifican las limitaciones de los suelos blandos y c) permiten generar algunas recomendaciones para aislar estructuras bajo las condiciones aquí estudiadas.

The primary application of base isolation around the world is in buildings and bridges; however, it could be applied in any structure. The technique has some limitations that, theoretically, reduce its efficiency, such as in tall buildings and soft soil conditions. In this paper, a non-conventional seismic isolated structure is studied to evaluate the benefits of the technique on it. Specifically, a stadium grandstand located in Colombia with hard and soft soil conditions beneath the isolated base is analyzed. The considered structure is important due to its necessity for seismic risk mitigation. It will have a high number of people to evacuate safely during earthquakes, and after them, it could be designated as a humanitarian shelter. The results a) show structural benefits principally in hard soil conditions, b) corroborate and quantify the limitations in soft soil, and c) make recommendations to isolate structures under the conditions studied here.

Referencias

Almazán, J., Comportamiento de estructuras antisísmicas durante el terremoto del Maule y su posible efecto en las normas de diseño sísmico en Chile. Revista Sul-americana de Engenharia Estrutural, 7 (2-3), pp. 4-28, 2012.

EERI, EERI, Earthquake engineering research institute. The Mw 6,6 Earthquake of April 20, 2013, in Lushan, China. Special Earthquake Report, 2013. [date of reference: August 27th of 2020]. [online]. Available at: chrome-extension://efaidnbmnnnibpcajpcglclefindmkaj/https://www.eeri.org/images/archived/wp-content/uploads/Lushan-China-Earthquake-Report.pdf

EERI, Performance of Engineered Structures in the Mw 9.0 Tohoku, Japan. Special Earthquake Report, 2012. [date of reference: 27 de agosto de 2020. [online]. Available at: chrome-extension://efaidnbmnnnibpcajpcglclefindmkaj/https://www.eeri.org/images/archived/wp-content/uploads/Tohoku_Japan_March_11_2011_EERI_LFE_Engineered_Structures.pdf

Nagarajaiah, S. and Sun, X., Seismic performance of base isolated buildings in the 1994 Northridge earthquake, in: Proceedings of the 11th World Conference on Earthquake Engineering, Acapulco, Mexico, 1996, pp. 23-28.

Martelli, A., Forni, M., and Clemente, P., Recent worldwide application of seismic isolation and energy dissipation and conditions for their correct use, in: Proceedings on electronic key of the 15th World conference on earthquake engineering (15th WCEE), Lisbon, Conference Programme, vol. 52, 2012, pp. 24-28.

AIS, Generalidades, estado actual y perspectivas del aislamiento sísmico de base en Colombia, 2020.

X Congreso Nacional de Ingeniería Sísmica, junio de 2022. Universidad Javeriana, Bogotá, Colombia, 2022.

Martínez, F., Crespo, M.J. y Martí, J., El aislamiento sísmico en tanques de GNL, en: 3er Congreso Nacional de Ingeniería Sísmica, Gerona, España, 2007.

Christovasilis, I.P., Seismic analysis of liquefied natural gas tanks. Thesis MSc., Department of Civil, Structural and Environmental Engineering, State University of New York at Buffalo, USA, 2006.

Chrysostomou, C.Z., Kyriakides, N., Roussis, P.C., and Asteris,P.G., Emerging technologies and materials for the seismic protection of cultural heritage, Handbook of research on seismic assessment and rehabilitation of historic structures, IGI Global, 2015, pp. 576-606. DOI: https://doi.org/10.4018/978-1-4666-8286-3.ch019

Castiglioni C.A. and Kanyilmaz, A., Seismic isolation methods for ancient statues on display, in: International Conference on New Trends in Statics and Dynamics of Buildings, Bratislava, Slovakia, 2010.

Forcellini, D., Facchini, L., Betti, M., Morandini, C., Clyde, D., and Segas, P., Seismic protection systems for artifacts: a base isolation proposal for Michelangelo’s David, in: 14th World Conference on Seismic Isolation, Energy Dissipation and Active Vibration Control of Structures (14th WCSI), San Diego, Ca, USA, 2015, 12 P.

Mason, W., Seismic isolation–The gold standard of seismic protection. Structure Magazine,Julu, pp. 11-14, 2015.

Forni, M., Poggiantu, A. and Dusi, A., Seismic isolation of nuclear power plants, in: 15th World Conference on Earthquake Engineering, 2012, Lisboa, Portugal, 2012.

Monir, H.S. and Nomani, H., Application of lead rubber isolation systems in the offshore structures, Proceeding of the International Multi Conference of Engineers and Computer Scientists, 2011, Hong Kong, China, 2011.

Friedman, D.A., Vignos, R., Walters, M.T., Petteys, C., and Bomba, G., The seismic retrofit of UC Berkeley’s California Memorial Stadium, The Structural Design of Tall and Special Buildings, 21(S1), pp. 66-80, 2012. DOI: https://doi.org/10.1002/tal.1053

Shun, W.L. and Lin, Z.F., Vibration and seismic isolation design for buildings on subway platform, 14th World Conference on Earthquake Engineering, 2008, Beijing, China, 2008.

Pirizadeh, M., Saber-Nikoopasand, F. and Badarloo, B., Seismic performance evaluation of code-designed grandstand structure of a roofless sport stadium, 8th International Conference on Seismology & Earthquake Engineering, SD-01210144, 2019, Theran, Iran.

Gobernación de Santander (Colombia). Construcción del nuevo estadio Daniel Villa Zapata del municipio de Barrancabermeja, Departamento de Santander. [Consultado: 19 de agosto de 2013]. [online]. Disponible en: https://bit.ly/2HXuH69.

Asociacion Colombiana de Ingeniería Sísmica. Reglamento Colombiano de Construcción Sismo Resistente NSR-10, Colombia, 2010.

American Society of Civil Engineers. Minimum Design Loads and Associated Criteria for Buildings and Other Structures ASCE/SEI 7-16, USA, 2016.

Piscal-Arévalo, C.M., New design considerations for seismic isolated buildings in Colombia, PhD Dissertation, Deparment of Civil and Enviromental Engineering, Polytechnic University of Catalonia, Spain, 2018.

Piscal-Arévalo, C.M. y López-Almansa, F., Propuesta para la futura norma de aislamiento sísmico de edificaciones en Colombia. DYNA (Colombia), 85(207), pp. 306-315, 2018. DOI: https://doi.org/10.15446/dyna.v85n207.72296.

Cómo citar

IEEE

[1]
C. M. Piscal-Arévalo, J. D. Villalba-Morales, X. Hurtado, D. C. Ángel-Giraldo, y C. A. Rincón-Chuscano, «Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions », DYNA, vol. 90, n.º 226, pp. 58–65, may 2023.

ACM

[1]
Piscal-Arévalo, C.M., Villalba-Morales, J.D., Hurtado, X., Ángel-Giraldo, D.C. y Rincón-Chuscano, C.A. 2023. Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions . DYNA. 90, 226 (may 2023), 58–65. DOI:https://doi.org/10.15446/dyna.v90n226.105469.

ACS

(1)
Piscal-Arévalo, C. M.; Villalba-Morales, J. D.; Hurtado, X.; Ángel-Giraldo, D. C.; Rincón-Chuscano, C. A. Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions . DYNA 2023, 90, 58-65.

APA

Piscal-Arévalo, C. M., Villalba-Morales, J. D., Hurtado, X., Ángel-Giraldo, D. C. & Rincón-Chuscano, C. A. (2023). Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions . DYNA, 90(226), 58–65. https://doi.org/10.15446/dyna.v90n226.105469

ABNT

PISCAL-ARÉVALO, C. M.; VILLALBA-MORALES, J. D.; HURTADO, X.; ÁNGEL-GIRALDO, D. C.; RINCÓN-CHUSCANO, C. A. Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions . DYNA, [S. l.], v. 90, n. 226, p. 58–65, 2023. DOI: 10.15446/dyna.v90n226.105469. Disponível em: https://revistas.unal.edu.co/index.php/dyna/article/view/105469. Acesso em: 20 mar. 2026.

Chicago

Piscal-Arévalo, Carlos Mario, Jesús D. Villalba-Morales, Xavier Hurtado, Diego Camilo Ángel-Giraldo, y Camilo Andrés Rincón-Chuscano. 2023. «Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions ». DYNA 90 (226):58-65. https://doi.org/10.15446/dyna.v90n226.105469.

Harvard

Piscal-Arévalo, C. M., Villalba-Morales, J. D., Hurtado, X., Ángel-Giraldo, D. C. y Rincón-Chuscano, C. A. (2023) «Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions », DYNA, 90(226), pp. 58–65. doi: 10.15446/dyna.v90n226.105469.

MLA

Piscal-Arévalo, C. M., J. D. Villalba-Morales, X. Hurtado, D. C. Ángel-Giraldo, y C. A. Rincón-Chuscano. «Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions ». DYNA, vol. 90, n.º 226, mayo de 2023, pp. 58-65, doi:10.15446/dyna.v90n226.105469.

Turabian

Piscal-Arévalo, Carlos Mario, Jesús D. Villalba-Morales, Xavier Hurtado, Diego Camilo Ángel-Giraldo, y Camilo Andrés Rincón-Chuscano. «Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions ». DYNA 90, no. 226 (mayo 25, 2023): 58–65. Accedido marzo 20, 2026. https://revistas.unal.edu.co/index.php/dyna/article/view/105469.

Vancouver

1.
Piscal-Arévalo CM, Villalba-Morales JD, Hurtado X, Ángel-Giraldo DC, Rincón-Chuscano CA. Structural behavior of a seismic-isolated stadium grandstand considering hard and soft soil conditions . DYNA [Internet]. 25 de mayo de 2023 [citado 20 de marzo de 2026];90(226):58-65. Disponible en: https://revistas.unal.edu.co/index.php/dyna/article/view/105469

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CrossRef citations2

1. Seunghye Lee, Jun-Young Seong, Jaehong Lee. (2025). A Case Study and Review of Trends in Stadium Design and Construction. Journal of The korean Association For Spatial Structures, 25(2), p.17. https://doi.org/10.9712/KASS.2025.25.2.17.

2. 智品 李. (2025). Research on Structural Safety Inspection, Seismic Performance Evaluation Technology and Structural Renewal Strategies for Large-Scale Sports Buildings. Hans Journal of Civil Engineering, 14(12), p.2969. https://doi.org/10.12677/hjce.2025.1412319.

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