31 research outputs found
A multi-component flood risk assessment in the Maresme coast (NW Mediterranean)
Coastal regions are the areas most threatened by natural hazards, with floods being the most frequent and significant threat in terms of their induced impacts, and therefore, any management scheme requires their evaluation. In coastal areas, flooding is a hazard associated with various processes acting at different scales: coastal storms, flash floods, and sea level rise (SLR). In order to address the problem as a whole, this study presents a methodology to undertake a preliminary integrated risk assessment that determines the magnitude of the different flood processes (flash flood, marine storm, SLR) and their associated consequences, taking into account their temporal and spatial scales. The risk is quantified using specific indicators to assess the magnitude of the hazard (for each component) and the consequences in a common scale. This allows for a robust comparison of the spatial risk distribution along the coast in order to identify both the areas at greatest risk and the risk components that have the greatest impact. This methodology is applied on the Maresme coast (NW Mediterranean, Spain), which can be considered representative of developed areas of the Spanish Mediterranean coast. The results obtained characterise this coastline as an area of relatively low overall risk, although some hot spots have been identified with high-risk values, with flash flooding being the principal risk process
Fate of water pumped from underground and contributions to sea-level rise
The contributions from terrestrial water sources to sea-level rise, other than ice caps and glaciers, are highly uncertain and heavily debated.. Recent assessments indicate that groundwater depletion (GWD) may become the most important positive terrestrial contribution over the next 50 years, probably equal in magnitude to the current contributions from glaciers and ice caps6. However, the existing estimates assume that nearly 100% of groundwater extracted eventually ends up in the oceans. Owing to limited knowledge of the pathways and mechanisms governing the ultimate fate of pumped groundwater, the relative fraction of global GWD that contributes to sea-level rise remains unknown. Here, using a coupled climate–hydrological model simulation, we show that only 80% of GWD ends up in the ocean. An increase in runoff to the ocean accounts for roughly two-thirds, whereas the remainder results from the enhanced net flux of precipitation minus evaporation over the ocean, due to increased atmospheric vapour transport from the land to the ocean. The contribution of GWD to global sea-level rise amounted to 0.02 (±0.004) mm yr−1 in 1900 and increased to 0.27 (±0.04) mm yr−1 in 2000. This indicates that existing studies have substantially overestimated the contribution of GWD to global sea-level rise by a cumulative amount of at least 10 mm during the twentieth century and early twenty-first century. With other terrestrial water contributions included, we estimate the net terrestrial water contribution during the period 1993–2010 to be +0.12 (±0.04) mm yr−1, suggesting that the net terrestrial water contribution reported in the IPCC Fifth Assessment Report report is probably overestimated by a factor of three
Uniendo ingeniería y ecología: la protección costera basada en ecosistemas
En un contexto de crecientes impactos y riesgos socio-económicos en las costas del planeta, la
protección costera basada en ecosistemas surge como un nuevo paradigma que une los principios
de protección, sostenibilidad y resiliencia, a la vez que proporciona múltiples beneficios. Este
artículo ofrece una perspectiva sobre qué son y cómo se pueden utilizar las defensas naturales en
el diseño, planificación y gestión de costas. La política pública muestra un creciente interés por su
implementación general y el cuerpo de conocimiento y experiencia alrededor de la también
denominada infraestructura ?verde? es creciente, pero aún existen importantes barreras que
salvar. Una de ellas es estandarizar su diseño en términos ingenieriles, así como reconocer los
aspectos que los diferencian respecto a enfoques tradicionales. La adaptación climática y la
reducción de riesgos son áreas en las que su utilización puede ser más significativa, debido a
la variedad de servicios que ofrecen. Tanto desde el punto de vista técnico como económico,
existen argumentos sólidos para evitar la degradación de los ecosistemas, avanzando su
restauración y conservación, como también desde la perspectiva de la defensa de las costas.In a context of increasing socio-economic impacts and risks in the coastal areas of the planet,
coastal protection based on ecosystem features becomes a new paradigm that combines the
principles of conservation, sustainability and resilience, while providing multiple benefits. This
paper provides a perspective on what these are and how they can be used in the design,
planning and management of the coastal zones. Policy-makers are calling for further uptake
and implementation across the board and the body of knowledge and experience around the socalled
?green? infrastructure is growing, but there are still major barriers for a widespread uptake.
One of them is to standardize designs in engineering terms, recognizing the different characteristics
compared to traditional engineering solutions. Climate adaptation and risk reduction are
areas where its use may be more significant, for the variety of services they offer. Both technically
and economically, there are strong arguments to prevent degradation of ecosystems and to
advance in their restoration and conservation, as well as from a coastal defense perspective
