Modelling plant canopy effects on water-heat exchange in the freezing-thawing processes of active layer on the Qinghai-Tibet Plateau

被引:5
作者
Guo Lin-mao [1 ,2 ]
Chang Juan [1 ]
Xu Hong-liang [1 ]
Sun Wen-jun [1 ]
机构
[1] Lanzhou Univ, Coll Earth & Environm Sci, Minist Educ, Key Lab Western Chinas Environm Syst, Lanzhou 730000, Peoples R China
[2] Sichuan Univ, Coll Water Resource & Hydropower, State Key Lab Hydraul & Mt River Engn, Chengdu 610000, Peoples R China
关键词
Permafrost; Simultaneous heat and water model; Leaf area index; Water-Heat exchange; Thermal-moisture dynamics; CLIMATE-CHANGE; ALPINE MEADOW; PERMAFROST DEGRADATION; SEMIARID GRASSLAND; THERMAL DYNAMICS; ENERGY FLUXES; ECOSYSTEM; SURFACE; LAND; SIMULATION;
D O I
10.1007/s11629-020-6335-5
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The effect of vegetation on the water-heat exchange in the freezing-thawing processes of active layer is one of the key issues in the study of land surface processes and in predicting the response of alpine ecosystems to climate change in permafrost regions. In this study, we used the simultaneous heat and water model to investigate the effects of plant canopy on surface and subsurface hydrothermal dynamics in the Fenghuoshan area of the Qinghai-Tibet Plateau by changing the leaf area index (LAI) and keeping other variables constant. Results showed that the sensible heat, latent heat and net radiation are increased with an increase in the LAI. However, the ground heat flux decreased with an increasing LAI. The annual total evapotranspiration and vegetation transpiration ranged from -16% to 9% and -100% to 15%, respectively, in response to extremes of doubled and zero LAI, respectively. There was a negative feedback between vegetation and the volumetric unfrozen water content at 0.2 m through changing evapotranspiration. The simulation results of soil temperature and moisture suggest that better vegetation conditions are conducive to maintaining the thermal stability of the underlying permafrost, and the advanced initial thawing time and increasing thawing rate of soil ice with the increase in the LAI may have a great influence on the timing and magnitude of supra-permafrost groundwater. This study quantifies the impact of vegetation change on surface and subsurface hydrothermal processes and provides a basic understanding for evaluating the impact of vegetation degradation on the water-heat exchange in permafrost regions under climate change.
引用
收藏
页码:1564 / 1579
页数:16
相关论文
共 65 条
[1]   How plant functional-type, weather, seasonal drought, and soil physical properties alter water and energy fluxes of an oak-grass savanna and an annual grassland [J].
Baldocchi, DD ;
Xu, LK ;
Kiang, N .
AGRICULTURAL AND FOREST METEOROLOGY, 2004, 123 (1-2) :13-39
[2]   Simulation of soil thermal dynamics using an artificial neural network model for a permafrost alpine meadow on the Qinghai-Tibetan plateau [J].
Chang, Juan ;
Wang, Genxu ;
Guo, Linmao .
PERMAFROST AND PERIGLACIAL PROCESSES, 2019, 30 (03) :195-207
[3]   Simulation and prediction of suprapermafrost groundwater level variation in response to climate change using a neural network model [J].
Chang Juan ;
Wang Genxu ;
Mao Tianxu .
JOURNAL OF HYDROLOGY, 2015, 529 :1211-1220
[4]   The influence of seasonal snow on soil thermal and water dynamics under different vegetation covers in a permafrost region [J].
Chang Juan ;
Wang Gen-xu ;
Gao Yong-heng ;
Wang Yi-bo .
JOURNAL OF MOUNTAIN SCIENCE, 2014, 11 (03) :727-745
[5]  
[陈仁升 CHEN Rensheng], 2006, [地球科学进展, Advance in Earth Sciences], V21, P806
[6]   Energy balance and partition in Inner Mongolia steppe ecosystems with different land use types [J].
Chen, Shiping ;
Chen, Jiquan ;
Lin, Guanghui ;
Zhang, Wenli ;
Miao, Haixia ;
Wei, Long ;
Huang, Jianhui ;
Han, Xingguo .
AGRICULTURAL AND FOREST METEOROLOGY, 2009, 149 (11) :1800-1809
[7]   Thawing sub-arctic permafrost:: Effects on vegetation and methane emissions -: art. no. L04501 [J].
Christensen, TR ;
Johansson, TR ;
Åkerman, HJ ;
Mastepanov, M ;
Malmer, N ;
Friborg, T ;
Crill, P ;
Svensson, BH .
GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (04) :L045011-4
[8]   Managing the Three-Rivers Headwater Region, China: From Ecological Engineering to Social Engineering [J].
Fang, Yiping .
AMBIO, 2013, 42 (05) :566-576
[9]  
FLERCHINGER GN, 1989, T ASAE, V32, P565, DOI 10.13031/2013.31040
[10]  
Frampton A, 2013, HYDROGEOL J, V21, P271, DOI 10.1007/s10040-012-0938-z