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Assessing fragility of a reinforced concrete element to snow avalanches using a non-linear dynamic mass-spring model
- Source :
- Natural Hazards and Earth System Sciences, Natural Hazards and Earth System Sciences, European Geosciences Union, 2018, 18 (9), pp.2507-2524. ⟨10.5194/nhess-18-2507-2018⟩, Natural Hazards and Earth System Sciences, Copernicus Publ. / European Geosciences Union, 2018, 18 (9), pp.2507-2524. ⟨10.5194/nhess-18-2507-2018⟩, Natural Hazards and Earth System Sciences, Vol 18, Pp 2507-2524 (2018)
- Publication Year :
- 2018
- Publisher :
- HAL CCSD, 2018.
-
Abstract
- This paper presents an assessment of the fragility of a reinforced concrete (RC) element subjected to avalanche loads, and more generally to dynamic pressure fields applied orthogonally to a wall, within a reliability framework. In order to obtain accurate numerical results with supportable computation times, a light and efficient Single-Degree-of-Freedom (SDOF) model describing the mechanical response of the RC element is proposed. The model represents its dynamic mechanical response up to failure. Material non-linearity is taken into account by a moment–curvature approach, which describes the overall bending response. The SDOF model is validated under quasi-static and dynamic loading conditions by comparing its results to alternative approaches based on finite element analysis and the yield line theory. Following this, the deterministic SDOF model is embedded within a reliability framework to evaluate the failure probability as a function of the maximal avalanche pressure reached during the loading. Several reliability methods are implemented and compared, suggesting that non-parametric methods provide significant results at a moderate level of computational burden. The sensitivity to material properties, such as tensile and compressive strengths, steel reinforcement ratio, and wall geometry is investigated. The effect of the avalanche loading rate is also underlined and discussed. Finally, the obtained fragility curves are compared with respect to the few proposals available in the snow avalanche engineering field. This approach is systematic and will prove useful in refining formal and practical risk assessments. It could be applied to other similar natural hazards, which induce dynamic pressure fields onto the element at risk (e.g., mudflows, floods) and where potential inertial effects are expected and for which fragility curves are also lacking.
- Subjects :
- Engineering
010504 meteorology & atmospheric sciences
0211 other engineering and technologies
02 engineering and technology
Bending
01 natural sciences
lcsh:TD1-1066
Fragility
Sensitivity (control systems)
lcsh:Environmental technology. Sanitary engineering
lcsh:Environmental sciences
Reliability (statistics)
0105 earth and related environmental sciences
lcsh:GE1-350
021110 strategic, defence & security studies
business.industry
[SDE.IE]Environmental Sciences/Environmental Engineering
lcsh:QE1-996.5
lcsh:Geography. Anthropology. Recreation
Structural engineering
Finite element method
lcsh:Geology
lcsh:G
Dynamic loading
General Earth and Planetary Sciences
Dynamic pressure
Material properties
business
Subjects
Details
- Language :
- English
- ISSN :
- 15618633 and 16849981
- Database :
- OpenAIRE
- Journal :
- Natural Hazards and Earth System Sciences, Natural Hazards and Earth System Sciences, European Geosciences Union, 2018, 18 (9), pp.2507-2524. ⟨10.5194/nhess-18-2507-2018⟩, Natural Hazards and Earth System Sciences, Copernicus Publ. / European Geosciences Union, 2018, 18 (9), pp.2507-2524. ⟨10.5194/nhess-18-2507-2018⟩, Natural Hazards and Earth System Sciences, Vol 18, Pp 2507-2524 (2018)
- Accession number :
- edsair.doi.dedup.....318abffc05378d11c55fc09a629cdfaf
- Full Text :
- https://doi.org/10.5194/nhess-18-2507-2018⟩