AI Article Synopsis

  • The East Antarctic Ice Sheet holds about 52 meters of sea-level equivalent glacier ice and is generally considered less vulnerable to climate change than its counterparts in West Antarctica and Greenland.
  • Recent observations indicate some regions of the East Antarctic Ice Sheet are losing mass, compelling a reassessment of its response to climate change.
  • While projections suggest that the ice sheet may maintain a balance with increased accumulation in the 21st century, high-emission scenarios could lead to significant ice loss and sea-level rise after 2100, with efforts to limit warming to below 2 degrees Celsius potentially mitigating this risk.

Article Abstract

The East Antarctic Ice Sheet contains the vast majority of Earth's glacier ice (about 52 metres sea-level equivalent), but is often viewed as less vulnerable to global warming than the West Antarctic or Greenland ice sheets. However, some regions of the East Antarctic Ice Sheet have lost mass over recent decades, prompting the need to re-evaluate its sensitivity to climate change. Here we review the response of the East Antarctic Ice Sheet to past warm periods, synthesize current observations of change and evaluate future projections. Some marine-based catchments that underwent notable mass loss during past warm periods are losing mass at present but most projections indicate increased accumulation across the East Antarctic Ice Sheet over the twenty-first century, keeping the ice sheet broadly in balance. Beyond 2100, high-emissions scenarios generate increased ice discharge and potentially several metres of sea-level rise within just a few centuries, but substantial mass loss could be averted if the Paris Agreement to limit warming below 2 degrees Celsius is satisfied.

Download full-text PDF

Source
http://dx.doi.org/10.1038/s41586-022-04946-0DOI Listing

Publication Analysis

Top Keywords

ice sheet
24
east antarctic
20
antarctic ice
20
ice
9
response east
8
climate change
8
warm periods
8
mass loss
8
antarctic
6
sheet
6

Similar Publications

Petroleum-derived contamination is a growing hazard for the Arctic Ocean and northern marine transportation corridors. In northern settings where the accessibility to oil spills can be limited, natural attenuation is the most promising remediation process. The goal of the presented research is to evaluate the impact of biodegradation on crude oil inside sea ice.

View Article and Find Full Text PDF

Climate-driven changes in high-elevation forest distribution and reductions in snow and ice cover have major implications for ecosystems and global water security. In the Greater Yellowstone Ecosystem of the Rocky Mountains (United States), recent melting of a high-elevation (3,091 m asl) ice patch exposed a mature stand of whitebark pine () trees, located ~180 m in elevation above modern treeline, that date to the mid-Holocene (c. 5,950 to 5,440 cal y BP).

View Article and Find Full Text PDF

Accurately modeling the deformation of temperate glacier ice, which is at its pressure-melting temperature and contains liquid water at grain boundaries, is essential for predicting ice sheet discharge to the ocean and associated sea-level rise. Central to such modeling is Glen's flow law, in which strain rate depends on stress raised to a power of = 3 to 4. In sharp contrast to this nonlinearity, we found by conducting large-scale, shear-deformation experiments that temperate ice is linear-viscous ( 1.

View Article and Find Full Text PDF
Article Synopsis
  • The discharge of calved ice and subglacial runoff in Disko Bay, home to Sermeq Kujalleq glacier, is expected to influence marine biogeochemistry, particularly affecting the marine silica cycle due to elevated dissolved silica (dSi) from glaciers.
  • The study analyzes silica dynamics in various regions around Disko Bay, finding that land-terminating glaciers show conservative dSi patterns, whereas marine-terminating glaciers significantly alter nutrient distribution through subglacial discharge plumes.
  • The research quantifies contributions to dSi enrichment, highlighting that a large fraction comes from saline water entrainment, with minor contributions from icebergs and amorphous silica dissolution, ultimately adding a small but significant dSi flux to the environment.
View Article and Find Full Text PDF

Cyanobacteria in winter: Seasonal dynamics of harmful algal blooms and their driving factors in boreal lakes.

Heliyon

December 2024

Groupe de Recherche en Écologie de la MRC Abitibi (GREMA), Institut de Recherche sur les Forêts, Université du Québec en Abitibi-Témiscamingue, 341 Rue Principale N, Amos, QC, J9T 2L8, Canada.

Lake cyanobacteria can overgrow and form blooms, often releasing life-threatening toxins. Harmful algal blooms (HABs) are typically caused by excess nutrients and high temperatures, but recent observations of cyanobacteria beneath the ice in boreal lakes suggest that the dynamics are more complex. This study investigates the seasonal dynamics of HABs in boreal lakes and identifies their driving factors.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!