H2020Doctoral network2017–2021

MANTEL · Management of Climatic Extreme Events in Lakes Reservoirs for the Protection of Ecosystem Services

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2017-01-01 → 2021-06-30
EU contribution
€3,056,654
Participants
22
Scheme
MSCA-ITN-EJD

Lines connect the coordinator with its partners.

Results in brief

Management of Climatic Extreme Events in Lakes Reservoirs for the Protection of Ecosystem Services

Environmental perturbations to lakes and reservoirs occur largely in the form of climate-related episodic events. These range from relatively short mixing events to climate extremes such as storms and heat waves. A common characteristic is that the impacts are generally longer lasting than the duration of the event itself. Understanding these effects requires monitoring that captures the event itself (hours to days) as well as the ensuing impact, which can last for months or even years. Only recently have automated high frequency monitoring (HFM) systems, with suites of sensors that measure in hours and minutes, been widely adopted on lakes and reservoirs throughout Europe. Climate extremes in particular are now becoming more frequent, a trend that has been linked to global warming and is projected to continue in the coming decades. As near-real-time monitoring of lakes using HFM systems has become more common, the true importance of these events, and of even less extreme changes, is becoming clear. The new insights into lake ecosystem dynamics require new theoretical frameworks and approaches to increase our understanding of why some lakes appear to be more resilient in the face of such pressures, while others can be tipped into an alternative state from which they may not recover. MANTEL (Management of Climatic Extreme Events in Lakes & Reservoirs for the Protection of Ecosystem Services) European Joint Doctorate Innovative Training Network (ITN) investigated the effects of episodic climatic events on lake water quality, while at the same time providing training in state-of-the-art technology, data analysis and modelling, all with strong links to the management sector. The aim was to ensure that a new cohort of scientists gained expertise in the implications of episodic and extreme events for lakes and reservoirs, so that future management strategies in Europe could explicitly account for their effects. The following objectives were investigated in four science Work Packages (WPs): 1. To interrogate HFM data archives from lakes and reservoirs for the occurrence and intensity of climate-driven episodic events and to understand which conditions produce physical, chemical and biological responses in lakes [WP2]. 2. To inform adaptation to climate change by simulating the effects of episodic events in lakes, either using models or using an experimental approach [WP3]. 3. To assess to what extent climate-driven events affect the biological functioning of lake ecosystems, and to quantify if ecosystems approach critical transitions (tipping points) [WP4]. 4. To quantify the management implications of episodic events for two key challenges for the water sector: increases in dissolved organic matter (DOM) loading, and toxic algal blooms [WP5].

Data: CORDIS, © European Union

Project objective

Environmental perturbations to lakes and reservoirs occur largely as episodic climatic events. These range from relatively short mixing events to storms and heat waves. While the driving events occur along a continuum of frequency and magnitude, however, their effect is generally longer lasting than the events themselves. In addition, the more extreme weather events are now becoming increasingly frequent, a trend that has been linked to directional climate change and is projected to continue in the coming decades. Understanding the impact of these short-lived pressures requires monitoring that captures the event (hours–days) and the ensuing impact, that can last for months or even years. Only recently has automated high frequency monitoring (HFM) of lakes been adopted throughout Europe. This Training Network will investigate the effects of the most extreme events, and of cumulative lower magnitude events, using HFM, while at the same time training a cohort of doctoral students in state-of-the art technology, data analysis and modelling. The aim of the EJD is to change the way in which water quality monitoring is carried out so that the effects of episodic climatic events can be understood, thus ensuring that future water management strategies can explicitly account for their effects.

Original text from CORDIS.

Participants

  • DUNDALK INSTITUTE OF TECHNOLOGY · DundalkCoordinatorIreland
  • BARCELONA SUPERCOMPUTING CENTER CENTRO NACIONAL DE SUPERCOMPUTACION · BARCELONASpain
  • Centre for Ecology and Hydrology · WallingfordUnited Kingdom
  • DUBLIN CITY UNIVERSITY · DublinIreland
  • EESTI MAAULIKOOL · TartuEstonia
  • EIDGENOESSISCHE TECHNISCHE HOCHSCHULE ZUERICH · ZuerichSwitzerland
  • Ens D’Abastament D’Aigues del Ter i del Llobregat · Sant Joan DespíSpain
  • FACHHOCHSCHULE POTSDAM · PotsdamGermany
  • FORSCHUNGSVERBUND BERLIN EV · BerlinGermany
  • FUNDACIO INSTITUT CATALA DE RECERCA DE L'AIGUA · GironaSpain
  • Free university of Berlin · BerlinGermany
  • KONINKLIJKE NEDERLANDSE AKADEMIE VAN WETENSCHAPPEN - KNAW · AMSTERDAMNetherlands
  • L’Agència Catalana de l’Aigua · BarcelonaSpain
  • MARINE INSTITUTE · GALWAYIreland
  • NORSK INSTITUTT FOR VANNFORSKNING STI · OsloNorway
  • UNIVERSITAT DE BARCELONA · BarcelonaSpain
  • UNIVERSITE DE GENEVE · GeneveSwitzerland
  • UPPSALA UNIVERSITET · UppsalaSweden
  • University of Girona · GironaSpain
  • WAGENINGEN UNIVERSITY · WageningenNetherlands
  • WATERSCHAP BRABANTSE DELTA · BredaNetherlands
  • WITTEVEEN+BOS RAADGEVENDE INGENIEURS BV · DeventerNetherlands

Links

Data: CORDIS, © European Union