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Publication Additional Information
Publication Type
Journal Article
Authorship
Steiner, J. F., Kraaijenbrink, P. D., & Immerzeel, W. W.
Title
Distributed melt on a debris-covered glacier: field observations and melt modelling on the Lirung Glacier in the Himalaya
Year
2021
Publication Outlet
Frontiers in Earth Science, 9, 567
Citation
Steiner, J. F., Kraaijenbrink, P. D., & Immerzeel, W. W. (2021). Distributed melt on a debris-covered glacier: field observations and melt modelling on the Lirung Glacier in the Himalaya. Frontiers in Earth Science, 9, 567.
Abstract
Debris-covered glaciers, especially in high-mountain Asia, have received increased attention in recent years. So far, few field-based observations of distributed mass loss exist and both the properties of the debris layer as well as the atmospheric drivers of melt below debris remain poorly understood. Using multi-year observations of on-glacier atmospheric data, debris properties and spatial surface elevation changes from repeat flights with an unmanned aerial vehicle (UAV), we quantify the necessary variables to compute melt for the Lirung Glacier in the Himalaya. By applying an energy balance model we reproduce observed mass loss during one monsoon season in 2013. We show that melt is especially sensitive to thermal conductivity and thickness of debris. Our observations show that previously used values in literature for the thermal conductivity through debris are valid but variability in space on a single glacier remains high. We also present a simple melt model, which is calibrated based on the results of energy balance model, that is only dependent on air temperature and debris thickness and is therefore applicable for larger scale studies. This simple melt model reproduces melt under thin debris (<0.5 m) well at an hourly resolution, but fails to represent melt under thicker debris accurately at this high temporal resolution. On the glacier scale and using only off-glacier forcing data we however are able to reproduce the total melt volume of a debris-covered tongue. This is a promising result for catchment scale studies, where quantifying melt from debris covered glaciers remains a challenge.
Program Affiliations
INARCH: International Network of Alpine Research Catchment Hydrology
Project Affiliations
INARCH1: International Network of Alpine Research Catchment Hydrology (Phase 1)
Publication Stage
Published
Additional Information
INARCH
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