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Erschienen in: Environmental Earth Sciences 2/2014

01.01.2014 | Original Article

Investigating soil thermodynamic parameters of the active layer on the northern Qinghai-Tibetan Plateau

verfasst von: Ren Li, Lin Zhao, Tonghua Wu, Yongjian Ding, Yao Xiao, Yongliang Jiao, Yanhui Qin, Yufei Xin, Erji Du, Guangyue Liu

Erschienen in: Environmental Earth Sciences | Ausgabe 2/2014

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Abstract

The soil thermodynamic parameters, including thermal conductivity, diffusivity and volumetric capacity within the active layer on the northern Tibetan Plateau, were calculated using the measured data of soil temperature gradient, heat flux, and moisture at four stations from October 2003 to September 2004. The results showed that the soil thermodynamic parameters exhibited clear seasonal fluctuation. The thermal conductivity and diffusivity in summer and autumn at Beiluhe, Kexinling, and Tongtianhe were larger than those in winter. The volumetric thermal capacity causes an opposite change; it was larger in autumn and winter than in summer. In spring, the soil thermal conductivity at the Kekexili station was larger than that in summer. Generally, fine-grained soils and lower saturation degrees in the topsoil might be a reason for the lower soil thermal conductivity in winter. For a given soil, soil moisture was the main factor influencing the thermodynamic parameters. The unfrozen water content that existed in frozen soils greatly affected the soil thermal conductivity, whose contribution rate was estimated to be 55 %. The thermodynamic parameters of frozen soils could be expressed as a function of soil temperature, volumetric ice content and soil salinity, while for the unfrozen ground the soil moisture content is the dominant factor for those thermal parameters. As for the soil thermal diffusivity, there exists a critical value of soil moisture content. When the soil moisture content becomes less than a critical value, the soil thermal diffusivity increases as the soil moisture content rises.

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Literatur
Zurück zum Zitat Abu-Hamdeth NH, Khdair AI, Reede RC (2001) A comparison of two methods used to evaluate thermal conductivity for some soils. Int J Heat Mass Transf 44:1073–1078CrossRef Abu-Hamdeth NH, Khdair AI, Reede RC (2001) A comparison of two methods used to evaluate thermal conductivity for some soils. Int J Heat Mass Transf 44:1073–1078CrossRef
Zurück zum Zitat Anderson DM, Tice AR (1972) Predicting unfrozen water content in frozen soil from surface area measurements. Highw Res Rec 373:12–18 Anderson DM, Tice AR (1972) Predicting unfrozen water content in frozen soil from surface area measurements. Highw Res Rec 373:12–18
Zurück zum Zitat Bachmann JR, Horton R, Ren TS, van der Ploeg RR (2001) Comparison of the thermal properties of four wettable and four water-repellent soils. Soil Sci Soc Am J 65:1675–1679CrossRef Bachmann JR, Horton R, Ren TS, van der Ploeg RR (2001) Comparison of the thermal properties of four wettable and four water-repellent soils. Soil Sci Soc Am J 65:1675–1679CrossRef
Zurück zum Zitat Campbell GS, Ungbauer JDJR, Bidlake WR, Hungerford RD (1994) Predicting the effect of temperature on soil thermal conductivity. Soil Sci 158:307–313CrossRef Campbell GS, Ungbauer JDJR, Bidlake WR, Hungerford RD (1994) Predicting the effect of temperature on soil thermal conductivity. Soil Sci 158:307–313CrossRef
Zurück zum Zitat Côté J, Konrad JM (2005) A generalized thermal conductivity model for soils and construction materials. Can Geotech J 42(3):443–458CrossRef Côté J, Konrad JM (2005) A generalized thermal conductivity model for soils and construction materials. Can Geotech J 42(3):443–458CrossRef
Zurück zum Zitat De Vries DA (1963) Thermal properties of soils. In: Van Wijk WR (ed) Physics of Plant Environment. North Holland Publishing, Co., Amsterdam, p 594 De Vries DA (1963) Thermal properties of soils. In: Van Wijk WR (ed) Physics of Plant Environment. North Holland Publishing, Co., Amsterdam, p 594
Zurück zum Zitat Farouki OT (1981) The thermal properties of soil in cold regions. Cold Reg Sci Technol 5:67–75CrossRef Farouki OT (1981) The thermal properties of soil in cold regions. Cold Reg Sci Technol 5:67–75CrossRef
Zurück zum Zitat Farouki OT (1986) Thermal properties of soil. Series on Rock and soil Mechanics. Trans Tech 11:136 Farouki OT (1986) Thermal properties of soil. Series on Rock and soil Mechanics. Trans Tech 11:136
Zurück zum Zitat Gao ZQ, Bian LG, Zhang YB, Wang JX, Jiang DM (2002) Study on analytical resolution to soil thermal conductive equation and soil thermal diffusivity over Nagqu area. Acta Meteorol Sinica 60(3):352–360 Gao ZQ, Bian LG, Zhang YB, Wang JX, Jiang DM (2002) Study on analytical resolution to soil thermal conductive equation and soil thermal diffusivity over Nagqu area. Acta Meteorol Sinica 60(3):352–360
Zurück zum Zitat Garrat JR (1992) The atmospheric boundary layer. Cambridge university press, Cambridge, p 316 Garrat JR (1992) The atmospheric boundary layer. Cambridge university press, Cambridge, p 316
Zurück zum Zitat Ghauman BS, Lal R (1985) Thermal conductivity, thermal diffusivity, and thermal capacity of some Nigerian soils. Soil Sci 139:74–80CrossRef Ghauman BS, Lal R (1985) Thermal conductivity, thermal diffusivity, and thermal capacity of some Nigerian soils. Soil Sci 139:74–80CrossRef
Zurück zum Zitat Haynes D, Carbee D, and Vanpelt D (1980) Thermal diffusivity of frozen soil, Usacrrel Special Report, p 167 Haynes D, Carbee D, and Vanpelt D (1980) Thermal diffusivity of frozen soil, Usacrrel Special Report, p 167
Zurück zum Zitat Hinzman LD, Kane DL, Gieck RE, Everett KR (1991) Hydrologic and thermal properties of the active layer in Alaska Arctic. Cold Reg Sci Technol 19(2):95–110CrossRef Hinzman LD, Kane DL, Gieck RE, Everett KR (1991) Hydrologic and thermal properties of the active layer in Alaska Arctic. Cold Reg Sci Technol 19(2):95–110CrossRef
Zurück zum Zitat Horton R, Wierenga PJ (1984) The effect of column wetting on soil thermal conductivity. Soil Sci 138:102–108CrossRef Horton R, Wierenga PJ (1984) The effect of column wetting on soil thermal conductivity. Soil Sci 138:102–108CrossRef
Zurück zum Zitat Hu YQ, Qi YJ, Yang XL (1990) Preliminary Analysis about characteristics of microclimate and heat budget in Hexi Gobi (Huayin). Plateau Meteorol 9(2):113–119 (in Chinese with English abstract) Hu YQ, Qi YJ, Yang XL (1990) Preliminary Analysis about characteristics of microclimate and heat budget in Hexi Gobi (Huayin). Plateau Meteorol 9(2):113–119 (in Chinese with English abstract)
Zurück zum Zitat Inaba H (1983) Experimental study on the thermal properties of frozen soils. Cold Reg Sci Technol 8:181–187CrossRef Inaba H (1983) Experimental study on the thermal properties of frozen soils. Cold Reg Sci Technol 8:181–187CrossRef
Zurück zum Zitat Johansen O (1975) Thermal conductivity of soils. Ph.D. thesis, University of Trondheim, p 236 Johansen O (1975) Thermal conductivity of soils. Ph.D. thesis, University of Trondheim, p 236
Zurück zum Zitat Kersten MS (1949) Laboratory research for the determination of the thermal properties of soils. ACFEL Technical report 23. University of Minnesota, Minneapolis Kersten MS (1949) Laboratory research for the determination of the thermal properties of soils. ACFEL Technical report 23. University of Minnesota, Minneapolis
Zurück zum Zitat Lachenbruch AH (1994) Permafrost, the active layer and changing climate: USGS Open-File Report. United States Geological Survey, Washington DC Lachenbruch AH (1994) Permafrost, the active layer and changing climate: USGS Open-File Report. United States Geological Survey, Washington DC
Zurück zum Zitat Lange GR, McKim HL (1963) Saturation, phase composision and freezing-point depression in a rigid soil model. In: Proceedings of the First International Permafrost Conference, Purdue, pp 187–191 Lange GR, McKim HL (1963) Saturation, phase composision and freezing-point depression in a rigid soil model. In: Proceedings of the First International Permafrost Conference, Purdue, pp 187–191
Zurück zum Zitat Li SX, Cheng GD, Guo D (1996) The Numerical simulation on the permafrost variation of Tibetan Plateau under the condition of warming climate. Sci in China (series D) 26(4):342–347 (in Chinese with English abstract) Li SX, Cheng GD, Guo D (1996) The Numerical simulation on the permafrost variation of Tibetan Plateau under the condition of warming climate. Sci in China (series D) 26(4):342–347 (in Chinese with English abstract)
Zurück zum Zitat Li R, Ji GL, Li SX, Yang W, Zhao JQ, Zhou XP, Lv LZ (2005) Soil heat discussion of Wudaoliang region. Acta Energiasinica 26(3):299–303 (in Chinese) Li R, Ji GL, Li SX, Yang W, Zhao JQ, Zhou XP, Lv LZ (2005) Soil heat discussion of Wudaoliang region. Acta Energiasinica 26(3):299–303 (in Chinese)
Zurück zum Zitat Li R, Zhao L, Ding YJ, Wu TH, Xi Y, Du EJ, Liu GY, Qiao YP (2012) Temporal and spatial variations of the active layer along the Qinghai-Tibet Highway in a permafrost region. Chin Sci Bull 57:4609–4616. doi:10.1007/s11434-012-5323-8 CrossRef Li R, Zhao L, Ding YJ, Wu TH, Xi Y, Du EJ, Liu GY, Qiao YP (2012) Temporal and spatial variations of the active layer along the Qinghai-Tibet Highway in a permafrost region. Chin Sci Bull 57:4609–4616. doi:10.​1007/​s11434-012-5323-8 CrossRef
Zurück zum Zitat Lin Z, Wu X (1981) Climatic regionalization of the Qinghai-Xizang Plateau. Acta Geographic Sinica 36(1):22–32 (in Chinese) Lin Z, Wu X (1981) Climatic regionalization of the Qinghai-Xizang Plateau. Acta Geographic Sinica 36(1):22–32 (in Chinese)
Zurück zum Zitat Ling F, Zhang T (2004) A numerical model for surface energy balance and thermal regime of the active layer and permafrost containing unfrozen water. Cold Reg Sci Technol 38:1–15CrossRef Ling F, Zhang T (2004) A numerical model for surface energy balance and thermal regime of the active layer and permafrost containing unfrozen water. Cold Reg Sci Technol 38:1–15CrossRef
Zurück zum Zitat Lu S, Ren TS, Gong YS, Horton R (2007) An improved model for predicting soil thermal conductivity from water content at room temperature. Soil Sci Soc Am J 71(1):8–14CrossRef Lu S, Ren TS, Gong YS, Horton R (2007) An improved model for predicting soil thermal conductivity from water content at room temperature. Soil Sci Soc Am J 71(1):8–14CrossRef
Zurück zum Zitat Ochsner TE, Horton R, Ren T (2001) A new perspective on soil thermal properties. Soil Sci Soc Am J 65:1641–1647CrossRef Ochsner TE, Horton R, Ren T (2001) A new perspective on soil thermal properties. Soil Sci Soc Am J 65:1641–1647CrossRef
Zurück zum Zitat Overduin PP, Kane DL, van Loon WKP (2006) Measuring thermal conductivity in freezing and thawing soil using the soil temperature response to heating. Cold Reg Sci Technol 45(1):8–22CrossRef Overduin PP, Kane DL, van Loon WKP (2006) Measuring thermal conductivity in freezing and thawing soil using the soil temperature response to heating. Cold Reg Sci Technol 45(1):8–22CrossRef
Zurück zum Zitat Putkonen J (1998) Soil thermal properties and heat transfer processes near Ny Alesund northwestern Spitsbergen Svalbard. Polar Res 17(2):165–179CrossRef Putkonen J (1998) Soil thermal properties and heat transfer processes near Ny Alesund northwestern Spitsbergen Svalbard. Polar Res 17(2):165–179CrossRef
Zurück zum Zitat Stull RB (1988) An introduction to boundary layer meteorology. Kluwer Academic Publishers, The Netherland, p 720CrossRef Stull RB (1988) An introduction to boundary layer meteorology. Kluwer Academic Publishers, The Netherland, p 720CrossRef
Zurück zum Zitat Tarnawski VR, Wagner B (1993) Modeling the thermal conductivity of frozen soil. Cold Reg Sci Technol 22(1):19–31CrossRef Tarnawski VR, Wagner B (1993) Modeling the thermal conductivity of frozen soil. Cold Reg Sci Technol 22(1):19–31CrossRef
Zurück zum Zitat Vermette S, Christopher S (2008) Using the rate of accumulated freezing and thawing degree days as a surrogate for determining freezing depth in a temperate forest soil. Middle Sates Geogr 41:68–73 Vermette S, Christopher S (2008) Using the rate of accumulated freezing and thawing degree days as a surrogate for determining freezing depth in a temperate forest soil. Middle Sates Geogr 41:68–73
Zurück zum Zitat Wang JC, Wang SL, Qiu GQ (1979) Permafrost along the Qinghai-Xizang highway. Acta Geographica Sinica 34(1):18–34 (in Chinese) Wang JC, Wang SL, Qiu GQ (1979) Permafrost along the Qinghai-Xizang highway. Acta Geographica Sinica 34(1):18–34 (in Chinese)
Zurück zum Zitat Wang CH, Dong WJ, Wei ZG (2003) Study on relationship between frozen –thaw processes in Qinghai-Xizang Plateau and circulation in East Asia. Chinese J Geophys 46(3):309–316 (in Chinese) Wang CH, Dong WJ, Wei ZG (2003) Study on relationship between frozen –thaw processes in Qinghai-Xizang Plateau and circulation in East Asia. Chinese J Geophys 46(3):309–316 (in Chinese)
Zurück zum Zitat Wang KC, Wang PC, Liu JM, Sparrow M, Haginoya S, Zhou XJ (2005) Variation of surface albedo and soil thermal parameters with soil moisture content at a semi-desert site on the western Tibetan Plateau. Bound-Layer Meteorol 116:117–129CrossRef Wang KC, Wang PC, Liu JM, Sparrow M, Haginoya S, Zhou XJ (2005) Variation of surface albedo and soil thermal parameters with soil moisture content at a semi-desert site on the western Tibetan Plateau. Bound-Layer Meteorol 116:117–129CrossRef
Zurück zum Zitat Wang S, Wang QJ, Fan J, Wang WH (2012) Soil thermal properties determination and prediction model comparison. Trans Chin Soc Agric Eng 28(5):78–84 (in Chinese with English abstract) Wang S, Wang QJ, Fan J, Wang WH (2012) Soil thermal properties determination and prediction model comparison. Trans Chin Soc Agric Eng 28(5):78–84 (in Chinese with English abstract)
Zurück zum Zitat Weng DM, Chen WL, Shen JC (1981) Microclimate and cropland microclimate. Agricultural press, Beijing, p 30 Weng DM, Chen WL, Shen JC (1981) Microclimate and cropland microclimate. Agricultural press, Beijing, p 30
Zurück zum Zitat Wolfe LM, Thieme JQ, Petroleum Engrs (1964) Physical and thermal properties of frozen soil and ice. J Soc Pet Eng 4(1):67–72 Wolfe LM, Thieme JQ, Petroleum Engrs (1964) Physical and thermal properties of frozen soil and ice. J Soc Pet Eng 4(1):67–72
Zurück zum Zitat Xin YF, Wu BY, Bin LG, Liu G, Zhang L, Li R (2012) Response of the East Asia climate system to water and heat change of global frozen soil using NCAR CAM model. Chin Sci Bull 57(34):4462–4471CrossRef Xin YF, Wu BY, Bin LG, Liu G, Zhang L, Li R (2012) Response of the East Asia climate system to water and heat change of global frozen soil using NCAR CAM model. Chin Sci Bull 57(34):4462–4471CrossRef
Zurück zum Zitat Xu XZ, Oliphant JL, Tice AR (1985) Soil-water potential and unfrozen water content and temperature. J Glaciol Geocryol 7(1):1–14 (in Chinese) Xu XZ, Oliphant JL, Tice AR (1985) Soil-water potential and unfrozen water content and temperature. J Glaciol Geocryol 7(1):1–14 (in Chinese)
Zurück zum Zitat Xu XZ, Wang JC, Zhang LX (2001) Physics on frozen earth. Chinese Science Press, Beijing, pp 75–91 Xu XZ, Wang JC, Zhang LX (2001) Physics on frozen earth. Chinese Science Press, Beijing, pp 75–91
Zurück zum Zitat Yang K, Koike T, Ye BS, Bastidas L (2005) Inverse analysis of the role of soil vertical heterogeneity in controlling surface soil state and energy partition. J Geophys Res 110:D08101. doi:10.1029/2004JD005500 Yang K, Koike T, Ye BS, Bastidas L (2005) Inverse analysis of the role of soil vertical heterogeneity in controlling surface soil state and energy partition. J Geophys Res 110:D08101. doi:10.​1029/​2004JD005500
Zurück zum Zitat Yang K, Watanabe T, Koike T, Li X, Fujii H, Tamagawa K, Ma YM, Ishikawa H (2007) Auto-calibration system developed to assimilate AMSR-E data into a land surface model for estimating soil moisture and the surface energy budget. J Meteorol Soc Japan 85A:229–242CrossRef Yang K, Watanabe T, Koike T, Li X, Fujii H, Tamagawa K, Ma YM, Ishikawa H (2007) Auto-calibration system developed to assimilate AMSR-E data into a land surface model for estimating soil moisture and the surface energy budget. J Meteorol Soc Japan 85A:229–242CrossRef
Zurück zum Zitat Zhang Q, Wang S, Wei GA (2003) A study on parameterization of local land-surface physical processes on the Gobi of northern east China. Chin J Geophys 46(5):616–623 (in Chinese)CrossRef Zhang Q, Wang S, Wei GA (2003) A study on parameterization of local land-surface physical processes on the Gobi of northern east China. Chin J Geophys 46(5):616–623 (in Chinese)CrossRef
Zurück zum Zitat Zhao L (2004) The freezing-thawing processes of active layer and changes of seasonally frozen ground on the Tibetan Plateau. Dissertation, of the degree for the Doctor of Philosophy, CAS Zhao L (2004) The freezing-thawing processes of active layer and changes of seasonally frozen ground on the Tibetan Plateau. Dissertation, of the degree for the Doctor of Philosophy, CAS
Zurück zum Zitat Zhao L, Wu Q, Marchenko SS, Sharkhuu N (2010) Status of permafrost and active layer in Central Asia during the International Polar Year. Permafr Periglac Process 21:198–207CrossRef Zhao L, Wu Q, Marchenko SS, Sharkhuu N (2010) Status of permafrost and active layer in Central Asia during the International Polar Year. Permafr Periglac Process 21:198–207CrossRef
Zurück zum Zitat Zheng D, Zhang RZ, Yang QY (1979) On the natural zonation in the Qingai-Xizang Plateau. Acta Geographica Sinica 34(1):1–11 (in Chinese) Zheng D, Zhang RZ, Yang QY (1979) On the natural zonation in the Qingai-Xizang Plateau. Acta Geographica Sinica 34(1):1–11 (in Chinese)
Zurück zum Zitat Zhou Y, Shuai SZ (1998) A study on heat exchange in winter wheat field. Meteorology 24(3):54–57 (in Chinese) Zhou Y, Shuai SZ (1998) A study on heat exchange in winter wheat field. Meteorology 24(3):54–57 (in Chinese)
Metadaten
Titel
Investigating soil thermodynamic parameters of the active layer on the northern Qinghai-Tibetan Plateau
verfasst von
Ren Li
Lin Zhao
Tonghua Wu
Yongjian Ding
Yao Xiao
Yongliang Jiao
Yanhui Qin
Yufei Xin
Erji Du
Guangyue Liu
Publikationsdatum
01.01.2014
Verlag
Springer Berlin Heidelberg
Erschienen in
Environmental Earth Sciences / Ausgabe 2/2014
Print ISSN: 1866-6280
Elektronische ISSN: 1866-6299
DOI
https://doi.org/10.1007/s12665-013-2473-1

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