Performance-based engineering framework for assessing and enhancing seismic resi...
Performance-based engineering framework for assessing and enhancing seismic resilience of fire-exposed steel building structures
The reusability of steel structures after fire under seismic combinations of actions is particularly important within a variety of disciplines including ecology, sociology, and engineering. The best solution is to assess the repar...
ver más
¿Tienes un proyecto y buscas un partner? Gracias a nuestro motor inteligente podemos recomendarte los mejores socios y ponerte en contacto con ellos. Te lo explicamos en este video
Proyectos interesantes
ResFrameFireSeismic
Resilient steel frame against fire and seismic hazards
183K€
Cerrado
MulHazardRes
Resilience enhancement of fire-protected steel frames under...
169K€
Cerrado
BIA2008-00050
RESPUESTA SISMICA DE ESTRUCTURAS NUEVAS DE HORMIGON ARMADO C...
141K€
Cerrado
BIA2008-00050
RESPUESTA SISMICA DE ESTRUCTURAS NUEVAS DE HORMIGON ARMADO C...
141K€
Cerrado
BIA2014-60093-R
COMPORTAMIENTO SISMICO DE ESTRUCTURAS CON FORJADOS RETICULAR...
145K€
Cerrado
DampSpring
Affordable Adaptable and Self Centering Anti Seismic Device...
71K€
Cerrado
Información proyecto PBE-FireSeismicRes
Duración del proyecto: 39 meses
Fecha Inicio: 2023-05-05
Fecha Fin: 2026-08-31
Líder del proyecto
PANEPISTIMIO PATRON
No se ha especificado una descripción o un objeto social para esta compañía.
TRL
4-5
Presupuesto del proyecto
169K€
Fecha límite de participación
Sin fecha límite de participación.
Descripción del proyecto
The reusability of steel structures after fire under seismic combinations of actions is particularly important within a variety of disciplines including ecology, sociology, and engineering. The best solution is to assess the reparability and retrofit the fire-exposed steel structures for desired seismic performance on a scientific knowledge base. The proposed PBE-FireSeismicRes project will develop a performance-based engineering framework for assessing and enhancing the seismic resilience of fire-exposed steel structure that is expected to raise major international scientific and industrial interest. This framework will be sophisticated and practical. First, collaborative research efforts will be presented to develop high-fidelity computational models of fire-exposed steel structures to assess the seismic fragility of these structures with various fire and earthquake scenarios. Second, seismic protective technologies will be developed to promote the application of the technologies and design to restore and upgrade the seismic resilience of deficient fire-exposed steel structures. Following this, design criteria, design methodology, and risk-based assessment approach will be established within the performance-based engineering framework to promote the reusability of fire-exposed steel structures. Together, the research outcomes from this project bear the potential to significantly advance the state of art in better safeguarding the built environment against earthquake hazards.