DocumentCode
410416
Title
The influence of soil moisture upon the geothermal climate signal
Author
England, A.W. ; Lin, Xiaohua ; Smerdon, Jason ; Pollack, Henry
Author_Institution
Atmos., Oceanic, & Space Sci., Michigan Univ., Ann Arbor, MI, USA
Volume
1
fYear
2003
fDate
21-25 July 2003
Firstpage
419
Abstract
Estimates of regional climate warming over the past few hundred years are being obtained from profiles of borehole temperature versus depth. The assumptions in recovering mean annual Surface Air Temperature (SAT) are that the relationship between the Ground Surface Temperature (GST) and the temperature-depth profile is purely conductive, and that SAT is uniquely coupled to GST. While these assumptions have been demonstrated to be approximately valid, they ignore the role of moisture transport in soil between soil and atmosphere. In this study we examine the influence of climatic changes in precipitation upon mean annual GST with climatic SAT held constant. We use the most recent version of our Prairie SVAT model for a set of 80 years simulations. Our findings are 10 increasing precipitation reduces mean annual GST, 2) phasing maximum precipitation to occur during the warmest months reduces mean annual GST, and 3) increasing the variance of precipitation reduces mean annual GST. The amplitudes of the effects are small but potentially not insignificant fractions of the geothermal climate signal. One of the long-term objectives of this investigation is to use global EOS SAT and remotely sensed soil moisture to link region-specific, geothermal climate signal histories to evolution of regional climate.
Keywords
atmospheric boundary layer; atmospheric precipitation; atmospheric temperature; climatology; hydrology; moisture; remote sensing; soil; Prairie SVAT model; borehole temperature; climate signal histories; geothermal climate signal; global EOS SAT; ground surface temperature; mean annual surface air temperature; moisture transport; precipitation; regional climate warming; soil moisture; temperature-depth profile; Atmospheric modeling; Earth Observing System; Geology; History; Land surface temperature; Ocean temperature; Sea surface; Soil moisture; Surface reconstruction; Temperature sensors;
fLanguage
English
Publisher
ieee
Conference_Titel
Geoscience and Remote Sensing Symposium, 2003. IGARSS '03. Proceedings. 2003 IEEE International
Print_ISBN
0-7803-7929-2
Type
conf
DOI
10.1109/IGARSS.2003.1293795
Filename
1293795
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