PO

P. Osinski

info

Please Note

2 records found

Journal article (2018) - A. M. Tang, P. N. Hughes, G. Grossi, C. Jommi, F. Kehagia, E. Koda, H. W. TerMaat, S. Lenart, S. Lourenco, M. Oliveira, P. Osinski, S. M. Springman, T. A. Dijkstra, R. Stirling, D. G. Toll, V. Van Beek, A. Askarinejad, M. Brenčič, Y. J. Cui, J. J. Diez, T. Firgi, B. Gajewska, F. Gentile
In assessing the impact of climate change on infrastructure, it is essential to consider the interactions between the atmosphere, vegetation and the near-surface soil. This paper presents an overview of these processes, focusing on recent advances from the literature and those made by members of COST Action TU1202 - Impacts of climate change on engineered slopes for infrastructure. Climate- and vegetation-driven processes (suction generation, erosion, desiccation cracking, freeze- thaw effects) are expected to change in incidence and severity, which will affect the stability of new and existing infrastructure slopes. This paper identifies the climate- and vegetation-driven processes that are of greatest concern, the suite of known unknowns that require further research, and lists key aspect that should be considered for the design of engineered transport infrastructure slopes in the context of climate change. ...
Journal article (2017) - Gaetano Elia, Federica Cotecchia, Josif Josifovski, Alessandra Nocilla, Amin Askarinejad, Ross Stirling, Peter Helm, Piernicola Lollino, Piotr Osinski, Giuseppe Pedone, Jean Vaunat, Phil Vardon, Carlos Pereira, Sarah M. Springman, Mohamed Rouainia, John Van Esch, Eugeniusz Koda
The behaviour of natural and artificial slopes is controlled by their thermo-hydro-mechanical conditions and by soil–vegetation–atmosphere interaction. Porewater pressure changes within a slope related to variable meteorological settings have been shown to be able to induce soil erosion, shrinkage–swelling and cracking, thus leading to an overall decrease of the available soil strength with depth and, ultimately, to a progressive slope collapse. In terms of numerical modelling, the stability analysis of partially saturated slopes is a complex problem and a wide range of approaches from simple limit equilibrium solutions to advanced numerical analyses have been proposed in the literature. The more advanced approaches, although more rigorous, require input data such as the soil water retention curve and the hydraulic conductivity function, which are difficult to obtain in some cases. The quantification of the effects of future climate scenarios represents an additional challenge in forecasting slope–atmosphere interaction processes. This paper presents a review of real and ideal case histories regarding the numerical analysis of natural and artificial slopes subjected to different types of climatic perturbations. The limits and benefits of the different numerical approaches adopted are discussed and some general modelling recommendations are addressed. ...