Maddalena Marchelli

[email protected]


Curriculum vitae


Department of Environment, Land and Infrastructure Engineering (DIATI)

Polytechnic of Turin



Numerical Simulation of Rockfall Protection Embankments in Natural Soil


Journal article


Stefano Vigna, M. Marchelli, V. De Biagi, Daniele Peila
Géosciences, 2023

Semantic Scholar DOI
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APA   Click to copy
Vigna, S., Marchelli, M., Biagi, V. D., & Peila, D. (2023). Numerical Simulation of Rockfall Protection Embankments in Natural Soil. Géosciences.


Chicago/Turabian   Click to copy
Vigna, Stefano, M. Marchelli, V. De Biagi, and Daniele Peila. “Numerical Simulation of Rockfall Protection Embankments in Natural Soil.” Géosciences (2023).


MLA   Click to copy
Vigna, Stefano, et al. “Numerical Simulation of Rockfall Protection Embankments in Natural Soil.” Géosciences, 2023.


BibTeX   Click to copy

@article{stefano2023a,
  title = {Numerical Simulation of Rockfall Protection Embankments in Natural Soil},
  year = {2023},
  journal = {Géosciences},
  author = {Vigna, Stefano and Marchelli, M. and Biagi, V. De and Peila, Daniele}
}

Abstract

Rockfall events represent a significant hazard in mountainous regions, putting human safety and critical infrastructure at risk. Various mitigation devices are available, among which, Rockfall protection embankments (RPEs) located in natural soil are passive defense work suitable for high-energy and high-frequency events. Currently, limited research has been conducted in this area, with the Austrian standard ONR 24810 providing the sole codified design method. A parametrical analysis involving both the RPE geometry and the impact features was developed by Abaqus/Explicit FEM code, with 2270 cases overall. The research aims to identify conditions under which RPEs effectively stop falling blocks, focusing on two failure mechanisms: the block pass over the RPE after impacting the upstream side bank and the RPE structural collapse. Additionally, the interaction between RPEs and their foundations during the impact is explored. The results provide valuable insights into the dynamic behavior of these structures. In terms of design considerations, this study offers analytical equations to quantify crater depth and foundation stress induced by the impact. Furthermore, design charts are developed to assess the block passing over verification and the structural collapse verification.


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