Nonlinear Thermal Transport and Brine Convection in First Year Sea Ice M.J. McGuinness

We report the first results from a programme recently set up to directly measure the thermal conductivity of young sea ice. An array of thermistors frozen into first-year Antarctic sea ice provides temperature against depth data, which is fitted directly with a partial differential equation for heat...

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Bibliographic Details
Main Authors: Trodahl Collins Haskell, M. J. Mcguinness, H. J. Trodahl, K. Collins, T. G. Haskell
Other Authors: The Pennsylvania State University CiteSeerX Archives
Format: Text
Language:English
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Online Access:http://citeseerx.ist.psu.edu/viewdoc/summary?doi=10.1.1.9.917
http://www.mcs.vuw.ac.nz/math/papers/Nonlin-thermal.ps
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Summary:We report the first results from a programme recently set up to directly measure the thermal conductivity of young sea ice. An array of thermistors frozen into first-year Antarctic sea ice provides temperature against depth data, which is fitted directly with a partial differential equation for heat conduction. Temperatures are recorded every hour at twenty vertical intervals of 100mm over a period of 5 months, allowing accurate and direct estimation of the thermal conductivity. Preliminary results indicate that the thermal conductivity is in the expected range, with some evidence of nonlinear effects deeper in the ice. A larger variance in data is evident at higher temperature gradients and at greater depths in the ice. Preliminary modelling of the impact of brine migration on heat transport through first-year sea ice is presented. Diffusion-driven brine pocket migration is School of Mathematical and Computing Sciences, Victoria University of Wellington, PO Box 600, Wellington, New Zealand Physics Dept, Victoria University of Wellington, PO Box 600, Wellington, New Zealand New Zealand Institute for Industrial Research and Development, PO Box 31310, Lower Hutt, New Zealand. 1 too slow to contribute significantly to heat flow, but the convective instability of inclined brine slots or tubes is a promising mechanism.