Icy thermometers: the use of glaciers to measure and monitor volcano temperature (HOT ICE)

Lead Research Organisation: University of Aberdeen
Department Name: Geography and Environment

Abstract

Volcanic eruptions can destroy infrastructure, displace communities, disrupt air travel, damage businesses and, unfortunately too often, take people's lives. Thus, predicting volcanic eruptions has real-world life and death implications. Eruptions are often preceded by increased thermal anomalies, with volcanoes sometimes showing signs of large-scale thermal unrest for years prior to an eruption. These anomalies can be detected from satellite borne infrared sensors data such as Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) and Moderate Resolution Imaging Spectroradiometers (MODIS). One of the issues with remote sensing based monitoring of volcanoes, is the presence of glaciers, which can mask or distort the thermal signal. This is of particular relevance, given that ice-clad volcanoes can lead to some of the most dangerous eruptions (e.g. triggering of lahars). It is precisely these volcanoes that this proposal is targeting, through the development of a new, international, and truly multidisciplinary collaboration between UK glaciologists, and US and Italian volcanologists. This project will be paradigm shifting as it will use glaciers located on volcanoes as "thermometers", which could (and should) therefore be utilised to improve the monitoring of dangerous, ice-clad volcanoes. The novel idea is based on a preliminary study conducted by the UK team which indicates that the calculated equilibrium line altitude (cELA) of glaciers that sit on volcanoes (volcanic-glaciers from now on) is considerably higher than for proximal "normal" glaciers. This suggests that volcanic-glaciers are impacted by enhanced basal melting due to elevated geothermal heat flux from the underlying volcano such that their dimensions and elevation are restricted. The "hotter" the volcano, the higher the cELA of volcanic-glaciers.

In this project we will use state of the art remote sensing techniques developed by our international project partners to analyse ASTER and MODIS thermal imagery and extract the median thermal anomaly of ice-clad volcanoes in South America over a period of 19 years (2002-present). At the same time, we will calculate and analyse the cELA offset between volcanic-glaciers and proximal "normal" glaciers and correlate our results with the volcano thermal anomalies, using state of the art GIS tools developed by the UK team and applied to high resolution digital terrain models. The overall purpose of our project is to develop a much improved, robust, quantitative relationship between volcano thermal anomalies and volcanic-glacier cELAs. Our study aims to analyse all South American volcanoes, active at some point during the Holocene, that host one or more glaciers and also have proximal glaciers from which to extract the regional climate-controlled cELA. First, we will undertake a glaciological analysis to highlight the difference in cELA between volcanic glaciers and proximal, "normal" glaciers. We will then compare our glaciological results with an analysis of both the long- and short-term volcano thermal anomalies.

The purpose of this proposal is to foster a productive, international collaboration that will outlast the 2 year duration of the project. Results will constitute a paradigm-shift for the study of ice-clad volcanoes, such that glaciers will no longer be perceived as a hindrance to imaging of longer term thermal anomalies, but may represent a tool with which to measure them. The ultimate ambition is to improve the monitoring of volcano unrest, thus preventing loss of life for many people that live nearby dangerous ice-clad volcanoes.
 
Description We have been able to demonstrate that the heat produced by a volcano pushed glaciers that sit on it to higher elevation than nearby glaciers who are not affected by the volcano's heat. This was evidenced from a study of thousands of glaciers on or near volcanoes in South America.
Exploitation Route Glaciers could be integrated in monitoring system to understand and potentially predict volcanic activity and unrest.
Sectors Aerospace

Defence and Marine

Communities and Social Services/Policy

Digital/Communication/Information Technologies (including Software)

Environment

 
Title Shapefiles of volcanoes and nearby glaciers in South America used to demonstrate the link between glacier equilibrium line altitude (ELA) and volcano thermal anomaly. 
Description This dataset comprises four distinct shapefiles, which were used to demonstrate how glacier ELA is affected by volcanic thermal conditions. The shapefiles, with the exception of '139_Remapped_Glaciers.shp', are obtained from existing, open access data from the Randolph Glacier Inventory (RGI 6.0) and the Global Volcanism Program 2013. Additional information relevant to the study of the interaction between glaciers and volcanoes is included in the shapefile's attribute table, as obtained via the GIS analysis of these datasets. The '600_RGI_Glaciers.shp' shapefile comprises 600 (land-terminating, no debris-covered, superior to 0.1 km2) glacier polygons, which are located within 15 km from a Holocene (erupted in the past 10,000 years) volcano in South America. Crucially, the equilibrium line altitude (i.e., the elevation on the glacier where the surface mass balance, measured over 1 yr, is zero) and distance to the nearest volcano for each glacier is reported in the attribute table. The '37_GVP_Volacanoes.shp' shapefile contains points for 37 South America Holocene volcanoes which have glaciers both within 1 km (volcanic-glaciers), and between 1 and 15 km (proximal glaciers). For each volcano, the difference in ELA between volcanic (inferior to 1km from volcano) and proximal (1-15 km) glaciers is reported in the attribute table, along with mean temperature and precipitation. The '139_Remapped_Glaciers.shp' shapefile provides detailed and updated (relative to RGI) mapping of glaciers (as polygons) that are located within 15 km from 13 South America Holocene volcanoes for which thermal anomaly is known. The ELA of these glaciers is calculated and reported in the attribute table. The '13_AVTOD_Volacanoes.shp' shapefile comprises the points for 13 Holocene volcanoes that have glaciers both within 1 km (volcanic-glaciers), and between 1 and 15 km (proximal glaciers) from their centre, as well as recorded thermal anomaly. The glacier ELA and volcano thermal data provided in the attribute table allows us to establish the quantitative relationship between volcanoes and glaciers. A detailed description of the study based on this dataset is provided in Howcutt et al. (2023). This project and data were supported by the NERC Global Partnerships Seedcorn fund (NE/W003724/1). 
Type Of Material Database/Collection of data 
Year Produced 2023 
Provided To Others? Yes  
URL https://data.bas.ac.uk/full-record.php?id=GB/NERC/BAS/PDC/01772
 
Description international collaboration between glaciologists and volcanologists 
Organisation Cornell University
Country United States 
Sector Academic/University 
PI Contribution We work together on this project by sharing data and discussing outcome
Collaborator Contribution We work together on this project by sharing data and discussing outcome
Impact Howcutt et al., 2023 as listed in the publications associated to this award
Start Year 2021
 
Description international collaboration between glaciologists and volcanologists 
Organisation Manchester Metropolitan University
Country United Kingdom 
Sector Academic/University 
PI Contribution We work together on this project by sharing data and discussing outcome
Collaborator Contribution We work together on this project by sharing data and discussing outcome
Impact Howcutt et al., 2023 as listed in the publications associated to this award
Start Year 2021
 
Description international collaboration between glaciologists and volcanologists 
Organisation University of Alaska Fairbanks
Country United States 
Sector Academic/University 
PI Contribution We work together on this project by sharing data and discussing outcome
Collaborator Contribution We work together on this project by sharing data and discussing outcome
Impact Howcutt et al., 2023 as listed in the publications associated to this award
Start Year 2021
 
Description international collaboration between glaciologists and volcanologists 
Organisation University of Turin
Country Italy 
Sector Academic/University 
PI Contribution We work together on this project by sharing data and discussing outcome
Collaborator Contribution We work together on this project by sharing data and discussing outcome
Impact Howcutt et al., 2023 as listed in the publications associated to this award
Start Year 2021