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| DOI | 10.1007/S10518-021-01204-Y | ||||
| Año | 2021 | ||||
| Tipo | artículo de investigación |
Citas Totales
Autores Afiliación Chile
Instituciones Chile
% Participación
Internacional
Autores
Afiliación Extranjera
Instituciones
Extranjeras
This paper examines the seismic behavior of CLT-steel hybrid walls at 6- and 10-story heights to increase seismic force resistance compared to conventional wooden walls. The ultra-strong shear walls proposed in this paper are called Framing Panel Shear Walls (FPSW), which are based on a robust articulated steel frame braced with CLT board panels and steel tendons. Timber structures are well-known for their ecological benefits, as well as their excellent seismic performance, mainly due to the high strength-to-weight ratio compared to steel and concrete ones, flexibility, and redundancy. However, in order to meet the requirements regarding the maximum inter-story drifts prescribed in seismic design codes, a challenging engineering problem emerges, because sufficiently resistant, rigid and ductile connections and lateral assemblies are not available for timber to meet both the technical and economical restrictions. Therefore, it is necessary to develop strong and cost-effective timber-based lateral systems, in order to become a real alternative to mid- and high-rises, especially in seismic countries. In this investigation, the dynamic response of cross-laminated timber (CLT) combined with hollow steel profiles has been investigated in shear wall configuration. After experimental work, research was also carried out into numerical modelling for simulating the cyclic behavior of a hybrid FPSW wall and the spectral modal analysis of buildings of 6- and a 10-stories with FPSW. A FPSW shear wall can double the capacity and stiffness.
| Ord. | Autor | Género | Institución - País |
|---|---|---|---|
| 1 | Carrero, Tulio | Hombre |
Pontificia Universidad Católica de Chile - Chile
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| 2 | Montano, Jairo | Hombre |
Pontificia Universidad Católica de Chile - Chile
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| 3 | Berwart, Sebastian | Hombre |
Pontificia Universidad Católica de Chile - Chile
|
| 4 | SANTA MARIA-OYANEDEL, RAUL HERNAN | Hombre |
Pontificia Universidad Católica de Chile - Chile
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| 5 | Guindos Bretones, Pablo | Hombre |
Pontificia Universidad Católica de Chile - Chile
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| Fuente |
|---|
| CONICYT |
| Fondo Nacional de Desarrollo Científico y Tecnológico |
| Comisión Nacional de Investigación Científica y Tecnológica |
| Conicyt Chile |
| Fondecyt Project |
| Laboratory of Structural Engineering of UC |
| Agradecimiento |
|---|
| This research has been funded by CONICYT Chile, FONDECYT PROJECT 11170863, and the APC was also funded by FONDECYT PROJECT 11170863. The authors thank Conicyty for the financial support, as well as the structural lab team of the Laboratory of Structural Engineering of UC and the team of the Timber Innovation Center CIM-UC. It is important to mention that an abstract was presented at the Proceedings of the 2020 Society of Wood Science and Technology International Convention on July 12-15, 2020, Slovenia. An abstract was also presented at the Proceedings of the 2021 World Conference on Timber Engineering on August 9-12, 2021, Chile. |
| This research has been funded by CONICYT Chile, FONDECYT PROJECT 11170863, and the APC was also funded by FONDECYT PROJECT 11170863. The authors thank Conicyt for the financial support, as well as the structural lab team of the Laboratory of Structural Engineering of UC and the team of the Timber Innovation Center CIM-UC. It is important to mention that an abstract was presented at the Proceedings of the 2020 Society of Wood Science and Technology International Convention on July 12–15, 2020, Slovenia. An abstract was also presented at the Proceedings of the 2021 World Conference on Timber Engineering on August 9–12, 2021, Chile. |