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Paradox_Dolphin t1_ir7lmhe wrote

I absolutely love that there's water beneath glaciers, that's always such a cool thought.

There are even subglacial lakes, and they contain 15% of the world's liquid freshwater.

The largest is Lake Vostok in antarctica. By volume, lake Vostok is the 6th largest lake in the world. The surface of this lake is about 4000m (13,100ft) beneath the ice. It's potentially been isolated from the rest of Earth's ecosystem for 15-25M years. So if there is any life there, then it'll be unlike anything we've ever seen.

It's also believed to be a similar environment to what we'd find in the subsurface oceans if Enceladus and Europa. So it could be used to test exploration techniques before we travel there.

They remain liquid, because the downward pressure of the ice decreases the melting point into a range that geothermal heat can melt it.

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avogadros_number OP t1_ir7fuzl wrote

Study (open access): Tunnel valley formation beneath deglaciating mid-latitude ice sheets: Observations and modelling


>Highlights

>• Numerical experiments and geophysical data are used to investigate tunnel valley formation beneath deglaciating ice sheets.

>• New high-resolution 3D seismic data reveal abandoned channel systems, slumps, and subglacial landforms inside tunnel valleys.

>• Migrating channels fed by seasonal surface meltwater erode tunnel valleys within 100s to 1000s of years during deglaciation.

>• Modelled tunnel valleys form time-transgressively close to the retreating ice sheet margin.

>• Our results explain the formation of tunnel valleys in most previously glaciated regions.

>Abstract

>The geological record of landforms and sediments produced beneath deglaciating ice sheets offers insights into inaccessible glacial processes. Large subglacial valleys formed by meltwater erosion of sediments (tunnel valleys) are widespread in formerly glaciated regions such as the North Sea. Obtaining a better understanding of these features may help with the parameterisation of basal melt rates and the interplay between basal hydrology and ice dynamics in numerical models of past, present, and future ice-sheet configurations. However, the mechanisms and timescales over which tunnel valleys form remain poorly constrained. Here, we present a series of numerical modelling experiments, informed by new observations from high-resolution 3D seismic data (6.25 m bin size, ∼4 m vertical resolution), which test different hypotheses of tunnel valley formation and calculate subglacial water routing, seasonal water discharges, and the rates at which tunnel valleys are eroded beneath deglaciating ice sheets. Networks of smaller or abandoned channels, pervasive slump deposits, and subglacial landforms are imaged inside and at the base of larger tunnel valleys, indicating that these tunnel valleys were carved through the action of migrating smaller channels within tens of kilometres of the ice margin and were later widened by ice-contact erosion. Our model results imply that the drainage of extensive surface meltwater to the ice-sheet bed is the dominant mechanism responsible for tunnel valley formation; this process can drive rapid incision of networks of regularly spaced subglacial tunnel valleys beneath the fringes of retreating ice sheets within hundreds to thousands of years during deglaciation. Combined, our observations and modelling results identify how tunnel valleys form beneath deglaciating mid-latitude ice sheets and have implications for how the subglacial hydrological systems of contemporary ice sheets may respond to sustained climate warming.

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