Utility of 222 Rn as a passive tracer of subglacial distributed system drainage

Water flow beneath the Greenland Ice Sheet (GrIS) has been shown to include slow-inefficient (distributed) and fast-efficient (channelized) drainage systems, in response to meltwater delivery to the bed via both moulins and surface lake drainage. This partitioning between channelized and distributed...

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Bibliographic Details
Published in:Earth and Planetary Science Letters
Main Authors: Linhoff, Benjamin S., Charette, Matthew A., Nienow, Peter W., Wadham, Jemma L., Tedstone, Andrew J., Cowton, Tom
Format: Article in Journal/Newspaper
Language:English
Published: 2017
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Online Access:https://risweb.st-andrews.ac.uk/portal/en/researchoutput/utility-of-222rn-as-a-passive-tracer-of-subglacial-distributed-system-drainage(d9618470-7913-4625-a640-3458bfde28dd).html
https://doi.org/10.1016/j.epsl.2016.12.039
https://research-repository.st-andrews.ac.uk/bitstream/10023/12598/1/Cowton_2017_EPSL_Utility222Rn_AAM.pdf
http://www.sciencedirect.com/science/article/pii/S0012821X1630752X#appd002
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Summary:Water flow beneath the Greenland Ice Sheet (GrIS) has been shown to include slow-inefficient (distributed) and fast-efficient (channelized) drainage systems, in response to meltwater delivery to the bed via both moulins and surface lake drainage. This partitioning between channelized and distributed drainage systems is difficult to quantify yet it plays an important role in bulk meltwater chemistry and glacial velocity, and thus subglacial erosion. Radon-222, which is continuously produced via the decay of 226 Ra, accumulates in meltwater that has interacted with rock and sediment. Hence, elevated concentrations of 222 Rn should be indicative of meltwater that has flowed through a distributed drainage system network. In the spring and summer of 2011 and 2012, we made hourly 222 Rn measurements in the proglacial river of a large outlet glacier of the GrIS (Leverett Glacier, SW Greenland). Radon-222 activities were highest in the early melt season (10-15 dpm L -1 ), decreasing by a factor of 2-5 (3-5 dpm L -1 ) following the onset of widespread surface melt. Using a 222 Rn mass balance model, we estimate that, on average, greater than 90% of the river 222 Rn was sourced from distributed system meltwater. The distributed system 222 Rn flux varied on diurnal, weekly, and seasonal time scales with highest fluxes generally occurring on the falling limb of the hydrograph and during expansion of the channelized drainage system. Using laboratory based estimates of distributed system 222 Rn, the distributed system water flux generally ranged between 1-5% of the total proglacial river discharge for both seasons. This study provides a promising new method for hydrograph separation in glacial watersheds and for estimating the timing and magnitude of distributed system fluxes expelled at ice sheet margins.