Zusammenfassung

This deliverable presents the implementation progress and results of the innovative technologies
demonstrated across the IMPETUS demo sites during the period M1-M49 of the project (01/10/2021–
30/09/2025). It covers the full set of activities carried out under WP4 Tasks 4.5.1 to 4.12, which together
form Bundle 2: Innovative Technologies Implementation.
Bundle 2 aims to demonstrate a suite of advanced technical solutions that increase climate resilience
across diverse geographic, hydrological, and socio-economic contexts. The bundle includes
decentralised water reuse systems, digital modelling tools, pathogen monitoring technologies, sediment
transport modelling, multi-agent water balance models, decision-support systems for heat and flood risk,
and early-warning technologies for geological hazards. These solutions collectively reinforce the
broader WP4 objective of testing and validating multi-benefit adaptation innovations that can be scaled
across Europe.
The 15 tasks reported in this deliverable demonstrate substantial progress toward climate-resilient water
management, environmental protection, and risk reduction. Task 4.5.1 deployed a hybrid decentralised
fit-for-use water reclamation system in the Coastal demo site (Catalonia), producing high-quality
reclaimed water for irrigation and cleaning within a touristic complex and validating decentralised reuse
under highly variable seasonal demand. Task 4.5.2 implemented a Sewer Mining unit in East Attica
(Mediterranean demo site), integrating real-time data, energy-autonomous operation, and co-created
adaptation services. Task 4.5.3 developed a water-energy simulation and optimisation model, enabling
the operator of the East Attica system to explore climate-proof operation strategies and circulareconomy pathways.
Across several additional tasks, advanced modelling and monitoring capabilities were demonstrated.
Tasks 4.6 and 4.7.1 developed computational tools for sediment transport and regional water balance
simulation, supporting adaptation measures under hydrological and demographic pressures. Tasks
4.7.2 and 4.10.1 - 4.10.3 delivered decision-support systems that integrate multi-layer data for WEFEnexus planning, heat stress management, and flood risk visualisation, many of which are connected to
digital twin environments. Tasks 4.8.1 and 4.8.2 tackled climate-exacerbated water quality risks by
improving bathing water management during storm events and assessing drinking water resilience to
pathogens. Finally, Tasks 4.11 and 4.12 implemented technologies for urban climate proofing in coastal
settings facing sea-level rise and for geological and avalanche early-warning systems in the Arctic and
mountainous demo sites.
Together, the technologies demonstrated under Bundle 2 provide actionable, scalable, and evidencebased adaptation options. The solutions directly support regional water resilience, enable cross-sectoral
decision-making, and reduce exposure to climate-related risks. Their integration into the Resilience
Knowledge Boosters, digital twins, and participatory processes strengthens the IMPETUS vision of
empowering local stakeholders and decision-makers with robust, technology-driven adaptation
pathways.

Zusammenfassung

This document describes the implementation of adaptation solutions based on Governance Models,
Awareness and Behavioural Change in the demo sites (Bundle 4), undertaken or completed in
period M6-M50 of the IMPETUS project (01/03/2022 to 31/12/2025), and in particular, those carried out
under WP4 Tasks 4.17, 4.18, 4.19, 4.20, 4.21, 4.22, 4.23, 4.24, and 4.25.
This deliverable presents the results of a suite of adaptation solutions implemented across the IMPETUS
DSs, each addressing climate challenges through participatory governance, data-driven tools, and
context-specific approaches. The solutions span multiple sectors (water management, agriculture,
tourism, cultural heritage, marine planning, risk governance, industrial decarbonisation, and greenhouse
agriculture) illustrating how climate adaptation can be integrated into diverse policy and practice
arenas.
Across all tasks, a central finding is that climate information becomes actionable only when coupled with
inclusive, transparent engagement processes. Solutions such as the Berlin Water Model (Task
4.18), the altitude-shift viticulture study in Trentino (Task 4.17), and the dynamic planning tools for
marine and tourism sectors (Tasks 4.19 and 4.22) show that scientific modelling gains real value when
stakeholders can interact with it, explore scenarios, and use results to inform local decisions. This
approach consistently increases trust in scientific outputs and enhances the relevance and uptake of
adaptation measures.
A second major insight is the importance of multi-level governance and co-creation. Workshops,
impact-chain exercises (Task 4.23), digital twins (Task 4.25), and story maps (Task 4.19) provided
shared spaces where public authorities, practitioners, businesses, researchers, and citizens aligned
their priorities and identified feasible adaptation pathways. This collaborative effort proved particularly
effective in complex contexts (such as cultural heritage protection, climate risk governance, and water-
oriented forest transformation) where institutional fragmentation or competing interests can hinder
progress. Stakeholder involvement from the early stages emerges as a key success factor across the
entire suite of solutions.
The tasks also highlight that behavioural and cultural dimensions are essential components of
adaptation, shaping vulnerability, risk perception, and acceptance of new measures. Work in the tourism
and cultural heritage sectors (Tasks 4.22 and 4.21) demonstrated that perceptions, traditions, and local
identity influence how communities engage with climate risks. Similarly, agricultural and industrial
solutions (Tasks 4.20 and 4.25) underscored how awareness, incentives, and clear communication
can support behavioural change toward more sustainable practices.
Finally, the deliverable identifies strong potential for transferability and scalability. Many methods
tested (real-time scenario simulations, participatory governance formats, climate dashboards, impact-
chain libraries, monitoring tools, and integrated assessment frameworks) are flexible and can be
adapted for other regions or sectors. Their success relies on three elements repeatedly observed across
the tasks: user-friendly design, integration with existing planning instruments, and sustained
engagement with local actors.
Overall, the solutions presented demonstrate that adaptation is most effective when scientific evidence,
institutional coordination, and societal engagement work in synergy. Together, they provide practical
examples of how European regions can develop robust, inclusive, and forward-looking strategies
for building climate resilience.

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