H2020Individual fellowship2021–2024

ENSURE · Experimental and Numerical insight into Scale effects in granUlaR slides in the mountainous Environment

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2021-08-01 → 2024-07-08
EU contribution
€224,934
Participants
1
Scheme
MSCA-IF

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Results in brief

Experimental and Numerical insight into Scale effects in granUlaR slides in the mountainous Environment

The European Environment Agency listed 212 fatalities from catastrophic landslides in 1998-2009, which directly resulted in total costs of €551 million. European mountainous regions will face an increased rate of landslide activity due to climate change. Landslides incorporate a wide spectrum of sediment-fluid mixtures between hyper-concentrated flows and dry rockfalls. Landslides are often modelled as granular slides, representing rock avalanches, rockslides and cliff collapses. A granular slide can be defined as a gravity-driven rapid movement of discrete particles assembly consisting of sediment and air, and sometimes also water, relative to its surroundings. This ENSURE project focuses on these granular slides which may cause devastation and human losses in their run-out path. Well defined and controlled laboratory experiments are often used by researchers to investigate granular slides. However, such experiments have limitations: small-scale laboratory experimental results cannot currently be extrapolated to reliably predict larger-scale natural events. This is due to so-called scale effects resulting in different granular slide characteristics at different geometric scales (sizes). For example, the slide runout distance changes if the slide size is reduced, resulting in a dangerous underestimation. The physical reasons behind scale effects are currently not well understood. A better understanding and quantification of scale effects would enable (i) laboratory experiments to be conducted under conditions where scale effects are negligible or (ii) the removal of scale effects from laboratory experiments in the upscaling process to reliable predict real granular slides in nature. The detailed analysis in a cost-effective manner of the relevance of scale effects in granular slides with a better understanding of the physical processes is therefore a central requirement on the route towards safer mountainous urbanisation and more efficient landslide disaster mitigation strategies in the future. This project aimed to address these scale effects challenges with the following research objectives (RO): RO1: To develop a large experimental data base by conducting laboratory granular slide scale series experiments under relevant conditions to understand and quantify scale effects. RO2: Complementing the work carried out under RO1, develop a fully calibrated and validated numerical simulation model by using CFDEM Coupling to ensure that scale effects are captured and complement the data base with additional slide scenarios. RO3: Utilising the database compiled in RO1 and RO2, perform an application-based feasibility evaluation to establish a correct upscaling method accounting for scale effects by linking and validating laboratory-scale properties with real field-scale events to ensure the predictive capability of laboratory experiments.

Data: CORDIS, © European Union

Project objective

As a result of climate change, growing population and development, mountainous regions are facing increasing frequency of landslides resulting in destructive impacts on infrastructure, human and natural resources. Thus, reliable methods for predicting landslides and their runout distances are required. Landslides are often modelled as granular slides. Currently, the runout distance of such granular slides cannot be reliably predicted from laboratory-based studies due to so-called scale effects (i.e. differences in slide characteristics when the size/scale is reduced in the laboratory compared to the event in nature). This results in a dangerous underprediction of the runout distance or requires expensive large-scale or numerical investigations. A talented female researcher is addressing this challenge in this ENSURE project in collaboration with an internationally recognised pioneer researcher in this research topic. The primary goal of ENSURE is to provide a full physical understanding and quantification of scale effects in granular slides through economically efficient laboratory experiments and numerical simulations. A secondary goal is to develop a reliable upscaling method accounting for scale effects in granular slides that links laboratory-scale properties with field-scale events to ensure the predictive capability of laboratory experiments. ENSURE is an integrated implementation platform of an “innovation-justification-application from lab-to-field” approach to elucidate the critical phenomenon of granular slides by fully understanding the physical reasons for scale effects for the first time, which is essential for landslide hazard assessment. Further, the researcher will undergo a training-through-research program, a special career development agenda is designed to achieve core scientific skills and advancements, complementary skills as well as transferable skills. The outcome will ultimately contribute to the future mountainous urbanisation planning.

Original text from CORDIS.

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Data: CORDIS, © European Union