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Contributions from sea level variability changes to extreme sea level projections in western Europe

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Future projections of extreme sea level (ESWL) are critical for assessing coastal flood risk in western Europe. Current assessments often rely on static approaches, overlooking the dynamic interplay of sea-level variability. This research utilizes a regional 3D ocean model to quantify how changes in tides, storm surges, and seasonal cycles modify ESWL projections, revealing potential amplifications of up to 40% compared to static estimates. Notably, regional drivers vary—tidal changes dominate in the English Channel, while storm surges impact the North Sea.
Contributions from sea level variability changes to extreme sea level projections in western Europe

The recent study examining extreme sea level (ESWL) projections in western Europe highlights a critical shortcoming in current climate modeling and assessment practices. While long-term sea-level rise due to thermal expansion and glacial melt is well-documented and incorporated into models, many large-scale assessments, including those from the IPCC, treat other crucial sea-level components – tides, storm surges, seasonal cycles, and dynamic anomalies – as static. This simplification overlooks the complex interplay of these factors and potentially leads to significant underestimation of future coastal flood risk. The research, utilizing a regional 3D ocean model to dynamically downscale CMIP6 GCMs, demonstrates that changes in these dynamic components can substantially modify ESWL projections, sometimes amplifying them by 30-40% relative to static estimates. This finding resonates with ongoing concerns about ecosystem vulnerability, as highlighted in "Plankton imager 10 monitoring in the southern North Sea: an open workflow for classification, morphometry and DwC-A publication"[/post/plankton-imager-10-monitoring-in-the-southern-north-sea-an-o-cmtl4ap5102i1rged9aqtb69r], where shifts in plankton phenology, directly linked to changing ocean conditions, are already impacting marine food webs. The implications extend beyond ecological concerns, intersecting with geopolitical realities, as illustrated by the recent actions surrounding suspected shadow fleet vessels in the Mediterranean, detailed in "EU Forces Board Russia-Linked Oil Tanker Suspected Of Sailing Under False Flag In Mediterranean"[/post/eu-forces-board-russia-linked-oil-tanker-suspected-of-sailin-cmtiz5b2600gbrgedm21gzdke].

The study's methodology—employing a transformed-stationary extreme value analysis—provides a robust framework for quantifying these changes and attributing them to specific drivers. The results reveal significant regional variations, with dynamic sea-level anomalies and seasonal cycles dominating changes in the Mediterranean and Atlantic façade, while tidal changes are more prominent in the English Channel and UK/Irish coasts. Notably, the researchers also observed compensation effects between different sea-level components, further underscoring the complexity of the system. The large inter-model spread in the reported contributions emphasizes the need for continued refinement of ocean models and improved understanding of the processes governing sea-level variability. This contrasts with simplified perspectives, as evidenced by questions regarding tidal dynamics in the Wadden Sea, explored in “Q: wadden island neap tide at Northsea side regular at wadden side?”[/post/q-wadden-island-neap-tide-at-northsea-side-regular-at-wadden-cmtc6saeq0swfmi9zfbktvq8b]. Accurate modeling of these nuanced interactions is paramount for effective coastal planning and risk mitigation.

The broader significance of this research lies in its call for a shift away from static approaches to ESWL projections. The reliance on simplified models has, until now, provided a reasonable baseline for understanding long-term sea-level rise. However, as climate change intensifies and ocean dynamics become more complex, static approaches are increasingly inadequate. The demonstrated potential for dynamic components to substantially alter flood risk necessitates a more comprehensive and integrated modeling framework. This requires substantial investment in regional 3D ocean models capable of representing coastal processes with greater fidelity. The data generated from such models is essential for informing policy decisions, infrastructure development, and adaptation strategies aimed at protecting coastal communities and ecosystems.

Looking ahead, a key question is how effectively these findings can be incorporated into future IPCC assessments and other large-scale climate projections. The inter-model spread observed in this study highlights the ongoing challenges in accurately simulating ocean dynamics. Further research should focus on reducing this uncertainty and developing more robust methods for attributing observed changes to specific drivers. Moreover, continued validation of these dynamic models against historical data and real-time observations is crucial to ensure their accuracy and reliability. Ultimately, a deeper understanding of the complex interplay of sea-level components is essential for building resilience to the escalating threat of coastal flooding in a changing climate.

Future changes in extreme still water levels (ESWL) will play a critical role in shaping coastal flood risk across western Europe. Yet most large-scale assessments, including recent IPCC reports, estimate ESWL changes using static approaches that account only for long-term sea-level rise while treating other sea-level components as stationary (static approach). Here, we use a regional 3D ocean model to dynamically downscale four CMIP6 GCMs to quantify how changes in sea-level variability - in tides, storm surges, the seasonal cycle, and dynamic sea-level anomalies - modify ESWL projections (dynamic approach) through the 21st century under SSP1-2.6 and SSP5-8.5. Using a transformed-stationary extreme value analysis, we evaluate changes in future ESWL return levels and the contributions of individual sea-level components to these changes. Across western Europe, dynamically simulated changes in the 10-year ESWL average to 39 cm (SSP1-2.6) and 57 cm (SSP5-8.5), but regional deviations reach ±20 cm. Dynamic estimates can locally amplify ESWL by 30–40% relative to static ones, particularly in the southern North Sea, northern Irish Sea, and western Mediterranean, with similar impacts for the 100-year event. In many regions, differences relative to static estimates result from compensation effects between changes across sea-level components. Changes in dynamic sea level anomalies and the seasonal-cycle dominate dynamic contributions to ESWL changes in the Mediterranean and Atlantic façade south of 47°N. Tidal changes dominate in the English Channel and UK/Irish coasts, while storm surges dominate in the southeastern North Sea. However, the reported contributions exhibit a large inter-model spread and cannot be readily attributed to either forced or internal variability. Our results show that future ESWL changes are shaped by multiple still water level variability drivers in addition to long-term trends, underscoring the limitations of simplistic static approaches. They further reveal strong regional differences in dominant drivers and compensations among them, which can only be comprehensively resolved using 3D ocean models that represent coastal processes.

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