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June 28, 2026˜The œcryosphere1 citationsOpen Access

The new kids on the block of Arctic coasts – formation and morphodynamics of paraglacial moraine lagoons in Svalbard

ZOZofia OwczarekOKOskar KostrzewaWPWojciech Piskorski

Key Points

  • This study aims to analyze the formation and dynamics of paraglacial moraine lagoons in the context of climate change.
  • Utilized multi-decadal observations from 1936 to 2024, including aerial photography and satellite imagery.
  • Employed the Digital Shoreline Analysis System (DSAS) to quantify the evolution of fourteen PML systems.
  • PMLs now cover over 56% of Svalbard's lagoon area, approximately 83 km2, nearly tripling since the 1930s.
  • Identified two evolutionary pathways: erosional–fragmenting and stabilizing–isolating, impacting sediment transport and biodiversity.

Abstract

Abstract. As Arctic amplification accelerates glacier retreat, new dynamic landscapes are emerging at the interface of terrestrial and marine systems. This study identifies and analyses a distinct coastal landform: the Paraglacial Moraine Lagoon (PML). Formed by coastal barriers composed of terminal or lateral moraines deposited during the Little Ice Age, PMLs represent a critical yet understudied component of the glacier–climate change feedback system. Using a multi-decadal record (1936–2024) comprising aerial photography, satellite imagery, and the Digital Shoreline Analysis System (DSAS), we quantified the evolution of fourteen PML systems across the Svalbard Archipelago. Our results show that PMLs now occupy over 56 % of Svalbard's total lagoon area (ca. 83 km2), nearly triple the area they occupied in the 1930s. We identify two divergent evolutionary trajectories: (1) an erosional – fragmenting pathway (e.g., Tjuvfjordlaguna), where marine forcing leads to barrier narrowing and inlet expansion, and (2) a stabilizing – isolating pathway (e.g., Femtelaguna), where land-terminating glaciers drive rapid terrestrial sediment infilling and barrier progradation. We argue that PMLs function as essential “paraglacial sinks” trapping glaciogenic sediments and organic matter, thereby creating sheltered biodiversity hubs in otherwise harsh coastal environments. As transient features, the formation and eventual destruction of PMLs serve as a high-resolution proxy for the rapid paraglacial adjustment of polar coastlines.

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Cite This Study

Owczarek et al. (2026) studied this question.

synapsesocial.com/papers/6a40bb1461bb0a67205c6c53https://doi.org/10.5194/tc-20-3619-2026
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Spatio‐temporal Changes of Svalbard Lagoon Systems in the Post‐Little‐Ice‐Age Period2025 · 3 citations
  2. 2Rapid coastal erosion of ice-bonded deposits on Pelly Island, southeastern Beaufort Sea, Inuvialuit Settlement Region, western Canadian Arctic2022 · 13 citations
  3. 3Paraglacial geomorphology2002 · 1,198 citations
  4. 4Digital Shoreline Analysis System (DSAS) version 5.1 user guide2021 · 221 citations
  5. 5Paraglacial coasts1995 · 43 citations