Warming-induced monsoon precipitation phase change intensifies glacier mass loss in the southeastern Tibetan Plateau

Author:

Jouberton Achille12ORCID,Shaw Thomas E.1,Miles Evan1ORCID,McCarthy Michael13ORCID,Fugger Stefan12,Ren Shaoting14,Dehecq Amaury156ORCID,Yang Wei4,Pellicciotti Francesca17ORCID

Affiliation:

1. Mountain Hydrology and Mass Movements Unit, Swiss Federal Institute for Forest, Snow and Landscape Research (WSL), 8903 Birmensdorf, Switzerland

2. Institute of Environmental Engineering, ETH Zurich, 8093 Zurich, Switzerland

3. British Antarctic Survey, Natural Environment Research Council, Cambridge, CB3 0ET, United Kingdom

4. Institute of Tibetan Plateau Research, Chinese Academy of Sciences, 100101 Beijing, China

5. University of Grenoble Alpes, CNRS, Research Institute for Sustainable Development (IRD), Institute of Environmental Geosciences (IGE), F-38000 Grenoble, France

6. Laboratory of Hydraulics, Hydrology and Glaciology (VAW), ETH Zurich, 8093 Zurich, Switzerland

7. Department of Geography, Northumbria University, Newcastle, NE1 8ST, United Kingdom

Abstract

Glaciers are key components of the mountain water towers of Asia and are vital for downstream domestic, agricultural, and industrial uses. The glacier mass loss rate over the southeastern Tibetan Plateau is among the highest in Asia and has accelerated in recent decades. This acceleration has been attributed to increased warming, but the mechanisms behind these glaciers’ high sensitivity to warming remain unclear, while the influence of changes in precipitation over the past decades is poorly quantified. Here, we reconstruct glacier mass changes and catchment runoff since 1975 at a benchmark glacier, Parlung No. 4, to shed light on the drivers of recent mass losses for the monsoonal, spring-accumulation glaciers of the Tibetan Plateau. Our modeling demonstrates how a temperature increase (mean of 0.39C ⋅dec−1since 1990) has accelerated mass loss rates by altering both the ablation and accumulation regimes in a complex manner. The majority of the post-2000 mass loss occurred during the monsoon months, caused by simultaneous decreases in the solid precipitation ratio (from 0.70 to 0.56) and precipitation amount (–10%), leading to reduced monsoon accumulation (–26%). Higher solid precipitation in spring (+18%) during the last two decades was increasingly important in mitigating glacier mass loss by providing mass to the glacier and protecting it from melting in the early monsoon. With bare ice exposed to warmer temperatures for longer periods, icemelt and catchment discharge have unsustainably intensified since the start of the 21st century, raising concerns for long-term water supply and hazard occurrence in the region.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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