<?xml version="1.0" encoding="utf-8" standalone="no"?>
<!DOCTYPE article SYSTEM "http://www.the-cryosphere-discuss.net/inc/tcd/copernicus.dtd">
<article language="en">
	<journal>
		<journal_title>The Cryosphere Discussions</journal_title>
		<journal_url>www.the-cryosphere-discuss.net</journal_url>
		<issn>1994-0432</issn>
		<eissn>1994-0440</eissn>
		<volume_number>2</volume_number>
		<issue_number>2</issue_number>
		<publication_year>2008</publication_year>
	</journal>
	<doi>10.5194/tcd-2-153-2008</doi>
	<article_url>http://www.the-cryosphere-discuss.net/2/153/2008/</article_url>
	<abstract_html>http://www.the-cryosphere-discuss.net/2/153/2008/tcd-2-153-2008.html</abstract_html>
	<fulltext_pdf>http://www.the-cryosphere-discuss.net/2/153/2008/tcd-2-153-2008.pdf</fulltext_pdf>
	<start_page>153</start_page>
	<end_page>184</end_page>
	<publication_date>2008-03-31</publication_date>
	<article_title content_type="html">Evaluation of the ground surface Enthalpy balance from bedrock shallow borehole temperatures (Livingston Island, Maritime Antarctic)</article_title>
	<authors>
		<author numeration="1" affiliations="1">
			<name>M. Ramos</name>
			<email>miguel.ramos@uah.es</email>
		</author>
		<author numeration="2" affiliations="2">
			<name>G. Vieira</name>
		</author>
	</authors>
	<affiliations>
		<affiliation numeration="1" content_type="html">Department of Physics, University of Alcalá, 28871 Alcalá de Henares, Spain</affiliation>
		<affiliation numeration="2" content_type="html">Centre for Geographical Studies/Department of Geography, University of Lisbon, 1600-214 Lisbon, Portugal</affiliation>
	</affiliations>
	<abstract content_type="html">The annual evolution of the ground temperatures from Incinerador borehole in
Livingston Island (South Shetlands, Antarctic) is studied. The borehole is
2.4 m deep and is located in a quartzite outcrop in the proximity of the
Spanish Antarctic Station Juan Carlos I. In order to model the movement of
the 0&amp;deg;C isotherm (velocity and maximum depth) hourly temperature
profiles from: (i) the cooling periods of the frost seasons of 2000 to 2005,
and (ii) the warming periods of the thaw seasons of 2002&amp;ndash;2003, 2003&amp;ndash;2004 and
2004&amp;ndash;2005, were studied. In this modelling approach, heat gains and losses
across ground surface are considered to be the causes for the 0&amp;deg;C
isotherm movement. A methodological approach to calculate the Enthalpy
change based on the thermodynamic analysis of the ground during the cooling
and warming periods is proposed. The Enthalpy change is equivalent to the
heat exchange through the ground surface during each season, thus enabling
to describe the interaction ground-atmosphere and providing valuable data
for studies on permafrost and periglacial processes. The bedrock density is
considered to be constant in the borehole and initial isothermal conditions
at 0&amp;deg;C are assumed to run the model. The final stages correspond to the
temperatures at the end of the cooling and warming periods (annual minima
and maxima).</abstract>
	<references>
		<reference numeration="1" content_type="text"> Anisimov, O. A., Shiklomanov, N. I., and Nelson, F. E.: Global warming and active layer thickness: results from transient general circulation models, Global Planet. Change, 15, 61&amp;ndash;67, 1997. </reference>
		<reference numeration="2" content_type="text"> Arche, A., López-Martínez, J., and Martínez de Pisón, E.: Sedimentology of the Miers Bluff Formation, Livingston Island, South Shetland Islandsm, in: Recent Progress in Antarctic Earth Science, edited by: Yoshida, Y., Kaminuma, K., and Shiraishi, K., Tokyo, Terrapub, 357&amp;ndash;362, 1992. </reference>
		<reference numeration="3" content_type="text"> Arya, A. P.: Introduction to Micrometeorology. S.P.S. San Diego, International Geophysics Series, 42, 1998. </reference>
		<reference numeration="4" content_type="text"> Bergamín, J. F., Durán, J. J., González-Casado, J. M., and López-Martínez, J.: Morfología y estructura del basamento precuaternario de la Caleta Española, Peninsula Hurd, Isla Livingston, Boletin de la Real Sociedad Española de História Natural (Sección Geológica), 93(1&amp;ndash;4), 189&amp;ndash;196, 1997. </reference>
		<reference numeration="5" content_type="text"> Bockheim, J.: Permafrost distribution in Southern circumpolar region and its relation to the environment: a review and recommendations for further research, Permafrost and Periglacial Processes, 6, 27&amp;ndash;45, 1995. </reference>
		<reference numeration="6" content_type="text"> Bockheim, J.: International Workshop on Antarctic Permafrost and Soils &amp;ndash; Final Report, 14&amp;ndash;18 November 2004, University of Wisconsin, Madison, WI, http://www.soils.wisc.edu/antarcticConf/, 2004. </reference>
		<reference numeration="7" content_type="text"> Deacon, E. L.: Physical processes near the surface of the earth, in: World survey of Climatology, vol. 2: General Climatology, edited by: Flohn, H., Elservier, Amsterdam, 1969. </reference>
		<reference numeration="8" content_type="text"> French, H.: The periglacial environment, Longman, Harlow, 1996. </reference>
		<reference numeration="9" content_type="text"> Goodrich, L. E.: The influence of snow cover on the ground thermal regime, Canadian Geotechnical Journal, 19, 421&amp;ndash;432, 1982. </reference>
		<reference numeration="10" content_type="text"> Guglielmin, M., Balks, M., and Paetzold, R.: Towards an Antarctic active layer and permafrost monitoring network, in: Permafrost &amp;ndash; Proceedings 8th International Conference on Permafrost, edited by: Phillips, M., Springman, S. M., Arenson, L. U., Zurich, Switzerland, Balkema, Lisse, Rotterdam, 337&amp;ndash;341, 2001. </reference>
		<reference numeration="11" content_type="text"> Hauck, C., Blanco, J., Gruber, S., Vieira, G., and Ramos, M.: Geophysical identification of permafrost in Livingston Island, Maritime Antarctica, J. Geophys. Res., 112, F02519, doi:10.1029/2006JF000544, 2007. </reference>
		<reference numeration="12" content_type="text"> Hinkel, K. M., Outcalt, S. I., and Nelson, F. E.: Temperature variation and apparent thermal diffusivity in the refreezing active layer, Toolik lake, Alaska, Permafrost and Periglacial Processes, 1(4), 265&amp;ndash;274, 1990. </reference>
		<reference numeration="13" content_type="text"> Hoelzle, M., Mittaz, C., Etzelmuller, B., and Haebaerli, W.: Surface energy fluxes and distribution models of permafrost in European Mountain areas: an overview of current developments, Permafrost and Periglacial Processes, 12, 53&amp;ndash;68, 2001. </reference>
		<reference numeration="14" content_type="text"> Kane, D. L., Hinkel, M. K., Goering, D. J., Hinzman L. D., and Outcalt, S. I.: Non conductive heat transfer associated with frozen soils, Global Planet. Change, 29, 275&amp;ndash;292, 2001. </reference>
		<reference numeration="15" content_type="text"> King, J. C.: Recent climate variability in the vicinity of Antarctic Peninsula, Int. J. Climatol., 14(4), 357&amp;ndash;369, 1994. </reference>
		<reference numeration="16" content_type="text"> King, J. C. and Turner, J.: Antarctic Meteorology and Climatology, Cambridge University Press, Cambridge, 114&amp;ndash;120, 1997. </reference>
		<reference numeration="17" content_type="text"> King, J. C., Turner, J., Marchall, G. J., Connolley, W. M., and Lachlan-Cope, T. A.: Antarctic Peninsua Variability and its Causes as revealed by Analysis of Instrumental records, in: Antarctic peninsula climate variability, edited by: Domack, E., Leventer, A., Burnett, A., Bindschadler, R., Convey, P., and Kirby, M., Antarctic research series AGU, 79, 17&amp;ndash;30, 2003. </reference>
		<reference numeration="18" content_type="text"> Lachenbruch, A. H.: Periodic heat flow in a stratified medium with application to permafrost problems, US Geologycal Survey Bulletin, 1083-A, 1959. </reference>
		<reference numeration="19" content_type="text"> Ling, F. and Zhang, T.: A numerical model for surface energy balance and thermal regime of the active layer and permafrost containing unfrozen water, Cold Regions Science and Technology, 38, 1&amp;ndash;15, 2004. </reference>
		<reference numeration="20" content_type="text"> López-Martinez, J., Vilapalana, J. M., Martinez De Pisón, E., Calvet, J., Arche, A., Serrat, D., and Pallás, R.: Geomorphology of selected areas in Livingstone Island, South Shetland Islands, in: Geología de la Antártida Occidental, III Congreso Geológico de España, López-Martínez, J., Simposios, T-III, Salamanca, 271&amp;ndash;282, 1992. </reference>
		<reference numeration="21" content_type="text"> Marshall, G. J.: Analysis of recent circulation and thermal advection change in the northern Antarctic Peninsula, Int. J. Climatol., 22(12), 1557&amp;ndash;1567, 2002. </reference>
		<reference numeration="22" content_type="text"> Nelson, F. E. and Asinimov, O. A.: Permafrost zonation in Russia under anthropogenic climate change, Permafrost and periglacial processes, 4(2), 137&amp;ndash;148, 1993. </reference>
		<reference numeration="23" content_type="text"> Oke, T. R.: Boundary layer climates, Methuen and Co, London, 1987. </reference>
		<reference numeration="24" content_type="text"> Outcalt, S. L., Goodwin, C., Weller, G., and Brown, J.: Computer simulation of the snowmelt and soil thermal regime st Barrow, Alaska, Water Resour. Res., 11(5), 709&amp;ndash;715, 1975. </reference>
		<reference numeration="25" content_type="text"> Osterkamp, T. E.: Establishing Long-term permafrost observatories for active-layer and permafrost investigations in Alaska: 1977&amp;ndash;2002, Permafrost and Periglacial Processes, 14, 331&amp;ndash;342, 2003. </reference>
		<reference numeration="26" content_type="text"> Pallàs, R.: Geologia de l&apos;Illa de Livingston (Shetland del Sud, Antàrtida), Del Mesozoic al Present, PhD thesis, Universitat de Barcelona, 1996. </reference>
		<reference numeration="27" content_type="text"> Peel, D. A.: Ice core evidence from the Antarctic Peninsula region, in: Climate Science A. D. 1500, edited by: Bradley, R. S. and Jones, P. D., 549&amp;ndash;571, Routledge, New York, 1992. </reference>
		<reference numeration="28" content_type="text"> Ramos, M. and Vieira, G.: Active layer and permafrost monitoring in Livingston Island, Antarctica. First results from 2000 and 2001, in: Permafrost &amp;ndash; Proceedings 8th International Conference on Permafrost, edited by: Phillips, M., Springman, S. M., and Arenson, L. U., Zurich, Switzerland, Balkema, Lisse: Rótterdam, 929&amp;ndash;933, 2003. </reference>
		<reference numeration="29" content_type="text"> Ramos, M. and Vieira, G.: Variabilidad térmica de la capa activa y evaluación de la energía perdida por el suelo durante el proceso de congelación en la isla Livingston (Antártida), Inviernos 2000, 2001 y 2002, Boletín de la Real Sociedad Española de Historia Natural, (Sec. Geología), 99, 1&amp;ndash;4, 83&amp;ndash;92, 2004. </reference>
		<reference numeration="30" content_type="text"> Ramos, M., Vieira, G., Gruber, S., Blanco, J. J., Hauck, C., Hidalgo, M. A., Tomé, D., Neves, M., and Trindade, A.: Permafrost and active layer monitoring in the Maritime Antarctic: Preliminary results from CALM sites on Livingston and Deception Islands, US Geological Survey and The National Academies; USGS OF-2007-1047, Short Research Paper 070, doi:10.3133/of2007-1047, srp070, 2007. </reference>
		<reference numeration="31" content_type="text"> Romanovsky, V. E. and Osterkamp, T. E.: Effects of unfrozen water on heat and mass transport processes in the active layer and permafrost, Permafrost and Periglacial Processes, 11, 219&amp;ndash;239, 2000. </reference>
		<reference numeration="32" content_type="text"> Scambos T., Hulbe, C., and Fahnestock, M.: Climate-Induced Ice Shelf Desintegration in the Antarctgic Peninsula, in: Antarctic peninsula climate variability, edited by: Domack, E., Leventer, A., Burnett, A., Bindschadler, R., Convey, P., and Kirby, M., Antarctic research series AGU, 79, 17&amp;ndash;30, 2003. </reference>
		<reference numeration="33" content_type="text"> Schön, J. H.: Physical Properties of Rocks, Pergamon Press, London, 1996. </reference>
		<reference numeration="34" content_type="text"> Serrano, E. and López-Martínez, J.: Rock glaciers in the South Shetland Islands, Western Antarctica, Geomorphology, 35, 145&amp;ndash;162, 2000. </reference>
		<reference numeration="35" content_type="text"> Simonov, I. M.: Physical geographic description of Fildes Peninsula (South Shetland Islands), Polar Geography, 1, 223&amp;ndash;242, 1977. </reference>
		<reference numeration="36" content_type="text"> Stearns, C. R.: Applications of Lettau&apos;s theoretical model of thermal diffusion to soil profiles of temperature and heat flux, J. Geophys. Res., 74, 532&amp;ndash;541, 1965. </reference>
		<reference numeration="37" content_type="text"> Styszynska, A.: The origin of coreless winters in the South Shetlands area (Antarctica), Polish Polar Res., 25, 45&amp;ndash;66, 2004. </reference>
		<reference numeration="38" content_type="text"> Turner, J., Colwell, S. R., and Harangozo, S.: Variability of precipitation over the coastal western Antarctic Peninsula from synoptic observations, J. Geophys. Res., 102(D12), 13 999&amp;ndash;14 007, 1997. </reference>
		<reference numeration="39" content_type="text"> Turner, J., Colwell, S. R., Marshall, G. J., et al.: Antarctic climate change during the last 50 years, Int. J. Climatol., 25, 279&amp;ndash;294, 2005. </reference>
		<reference numeration="40" content_type="text"> Van Lipzig, N. P. M., King, J. C., and Lachlan-Cope, T. A.: Precipitation, sublimation, and snow drift in the Antarctic Peninsula region from a regional atmospheric model, J. Geophys., Res., 109, 24 106&amp;ndash;24 132, 2004. </reference>
		<reference numeration="41" content_type="text"> Vaughan, D. G. and Doake., C. S. M.: Recent atmospheric warming and retreat of ice shelves on Antarctic Peninsula, Nature, 379(6563), 328&amp;ndash;331, 1996. </reference>
		<reference numeration="42" content_type="text"> Vieira, G. and Ramos, M.: Geographic factors and geocryological activity in Livingston Island, Antarctic, Preliminary results, in: Permafrost, Proceedings of the Eight International Conference on Permafrost, 21&amp;ndash;25 July 2003, Zürich, edited by: Phillips, M., Springman, S. M., and Arenson, L. U., 1183-2 1188, Balkema &amp;ndash; Swets &amp; Zeitlinger, Lisse, 2003. </reference>
		<reference numeration="43" content_type="text"> Washburn, A. L.: Geocryology. A survey of periglacial processes and environments, Edward Arnold, London, 1979. </reference>
		<reference numeration="44" content_type="text"> Williams, P. J. and Smith, M. W.: The Frozen Earth. Fundamentals of Geocryology, Cambridge University Press, Cambridge, 1989. </reference>
		<reference numeration="45" content_type="text"> Zhang, T., Osterkamp, T. E., and Stammes, K.: Influence of the depth hoar layer of seasonal snow cover on the ground thermal regime, Water Resour. Res., 32(7), 2075&amp;ndash;2086, 1996. </reference>
	</references>
</article>

