Title Impacts of changes in vegetation cover on soil water heat coupling in an alpine meadow of the Qinghai-Tibet Plateau, China
Author Genxu, W.; Hongchang, H.; Guangsheng, L.; Na, L.
Author Affil Genxu, W., Chinese Academy of Sciences, Institute of Mountain Hazards and Environment, Chengdu, China. Other: Lanzhou University, China
Source Hydrology and Earth System Sciences (HESS), 13(3), p.327-341, . Publisher: Copernicus GmbH on behalf of the European Geosciences Union, Katlenburg-Lindau, Germany. ISSN: 1027-5606
Publication Date 2009
Notes In English. Published in Hydrology and Earth System Sciences Discussions: 4 September 2008, http://www.hydrol-earth-syst- sci-discuss.net/5/2543/2008/hessd-5-2543-20 08.html; accessed in July, 2009. 41 refs. GeoRef Acc. No: 307834
Index Terms Alpine landscapes; climatic change; freezing; frozen ground; ground thawing; global change; global warming; heat flux; ice; Meadow soils; moisture; permafrost; permafrost heat balance; soils; soil conservation; soil temperature; statistical analysis; temperature; thawing; thermal conductivity; vegetation; water; water temperature; unfrozen water content; China-- Qinghai; Asia--Tibetan Plateau; China-- Xizang; alpine environment; Asia; China; climate change; conservation; coupling; desertification; Far East; Qinghai China; regression analysis; terrestrial environment; Tibetan Plateau; water content; Xizang China
Abstract Alpine meadow is one of the most widespread grassland types in the permafrost regions of the Qinghai-Tibet Plateau, and the transmission of coupled soil water heat is one of the most crucial processes influencing cyclic variations in the hydrology of frozen soil regions, especially under different vegetation covers. The present study assesses the impact of changes in vegetation cover on the coupling of soil water and heat in a permafrost region. Soil moisture (#2Vv), soil temperature (Ts), soil heat content, and differences in #2Vv-Ts coupling were monitored on a seasonal and daily basis under three different vegetation covers (30, 65, and 93%) on both thawed and frozen soils. Regression analysis of #2Vv vs. Ts plots under different levels of vegetation cover indicates that soil freeze-thaw processes were significantly affected by the changes in vegetation cover. The decrease in vegetation cover of an alpine meadow reduced the difference between air temperature and ground temperature (Delta Ta-s), and it also resulted in a decrease in Ts at which soil froze, and an increase in the temperature at which it thawed. This was reflected in a greater response of soil temperature to changes in air temperature (Ta). For Delta Ta- s outside the range of -0.1 to 1.0C, root zone soil-water temperatures showed a significant increase with increasing Delta Ta- s; however, the magnitude of this relationship was dampened with increasing vegetation cover. At the time of maximum water content in the thawing season, the soil temperature decreased with increasing vegetation. Changes in vegetation cover also led to variations in #2Vv-Ts coupling. With the increase in vegetation cover, the surface heat flux decreased. Soil heat storage at 20 cm in depth increased with increasing vegetation cover, and the heat flux that was downwardly transmitted decreased. The soil property varied greatly under different vegetation covers, causing the variation of heat conductivity and water-heat hold capacity in topsoil layer in different vegetation cover. The variation of heat budget and transmitting in soil is the main factor that causes changes in soil thawing and freezing processes, and #2Vv-Ts coupling relationship under different vegetation fractions. In addition to providing insulation against soil warming, vegetation in alpine meadows within the permafrost region also would slow down the response of permafrost to climatic warming via the greater water-holding capacity of its root zone. Such vegetation may therefore play an important role in conserving water in alpine meadows and maintaining the stability of engineering works constructed within frozen soil of the Qinghai-Tibet Plateau.
URL http://hdl.handle.net/10.5194/hess-13-327-2009
Publication Type journal article
Record ID 65004850