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1 期                    刘闻慧等:青藏高原土壤冻融过程关键参量时空分布特征分析                                          21
               间影响更大,对气候相对较暖湿的地区土壤融化开                               mate in central Alaska[J]. Climate Change,48(4):551-579.
               始时间影响更大。                                          Kaser G,Grosshauser M,Marzeion B,et al,2010. Contribution po‐
                                                                    tential of glaciers to water availability in different climate regimes
               致谢:本文中研究中部分数据来源于“国家青藏高                               [J]. Proceedings of the National Academy of Sciences of the Unit‐
               原科学数据中心”(http://data.tpdc.ac.cn)和“中国气                ed States of America,107(47):20223-20227.
               象数据网”(http://data.cma.cn),在此谨致谢忱。                 Li X,Jin R,Pan X D,et al,2012. Changes in the near-surface soil
                                                                    freeze-thaw cycle on the Qinghai-Tibetan Plateau[J]. Internation‐
               参考文献:                                                al Journal of Applied Earth Observation and Geoinformation,17
                                                                    (1):33-42.
               Cheng G D,Wu T H,2007. Responses of permafrost to climate
                                                                 Menzel A,Jakobi G,Ahas R,et al,2003. Variations of the climato‐
                  change and their environmental significance,Qinghai-Tibet Pla‐
                                                                    logical growing season(1951-2000)in Germany compared with
                  teau[J]. Journal of Geophysical Research Earth Surface,112:
                                                                    other countries[J]. International Journal of Climatology,23(7):
                  F02S03.
                                                                    793-812.
               Cheng M L,Zhong L,Ma Y M,et al,2019. A study on the assess‐
                                                                 Mukhopadhyay B,Khan A,2015. A reevaluation of the snowmelt and
                  ment of multi-source satellite soil moisture products and reanaly‐
                                                                    glacial melt in river flows within Upper Indus Basin and its signif‐
                  sis data for the Tibetan Plateau[J]. Remote Sensing,11(10):
                                                                    icance in a changing climate[J]. Journal of Hydrology,527(1):
                  1196.
                                                                    119-132.
               Frauenfeld O W,Zhang T J,Mccreight J L,2007. Northern Hemi‐
                                                                 Qin J,Liang S L,Yang K,et al,2009. Simultaneous estimation of
                  sphere freezing/thawing index variations over the twentieth centu‐
                                                                    both soil moisture and model parameters using particle filtering
                  ry[J]. International Journal of Climatology,27(1):47-63.
                                                                    method through the assimilation of microwave signal[J]. Journal
               Gardner A S,Moholdt G,Cogley J G,et al,2013. A reconciled esti‐
                                                                    of Geophysical Research:Atmospheres,114,D15103. DOI:
                  mate of glacier contributions to sea level rise:2003 to 2009[J].
                                                                    10. 1029/2008JD011358.
                  Science,340(6134):852-857.
                                                                 Shen M G,Piao S L,Cong N,et al,2015. Precipitation impacts on
               Guo D L,Wang H J,2014. Simulated change in the near-surface soil
                                                                    vegetation spring phenology on the Tibetan Plateau[J]. Global
                  freeze/thaw cycle on the Tibetan Plateau from 1981 to 2010[J].
                                                                    Change Biology,21(10):3647-3656.
                  Chinese Science Bulletin,59(20):2439-2448.
                                                                 Sinha T,Cherkauer K A,2008. Time Series Analysis of soil freeze
               Guo D L,Yang M X,Wang H J,2011. Characteristics of land surface
                                                                    and thaw processes in Indiana[J]. Journal of Hydrometeorology,
                  heat and water exchange under different soil freeze/thaw condi‐
                                                                    9(5):936-950.
                  tions over the central Tibetan Plateau[J]. Hydrological Process‐
                                                                 Smith N V,Saatchi S S,Randerson J T,2004. Trends in high north‐
                  es,25(16):2531-2541.
                                                                    ern latitude soil freeze and thaw cycles from 1988 to 2002[J].
               Henry H A L,2008. Climate change and soil freezing dynamics:his‐
                  torical trends and projected changes[J]. Climatic Change,87(3-  Journal of Geophysical Research:Atmospheres,109(D12):
                                                                    D12101.
                  4):421-434.
               Hinkel K M,Paetzold F,Nelson F E,et al,2001. Patterns of soil  Su Z B,Rosnay P D,Wen J,et al,2013. Evaluation of ECMWF's
                                                                    soil moisture analyses using observations on the Tibetan Plateau
                  temperature and moisture in the active layer and upper permafrost
                  at Barrow, Alaska: 1993-1999 [J]. Global and Planetary  [J]. Journal of Geophysical Research,118(11):5304-5318.
                  Change,29(3-4):293-309.                        Su Z B,Wen J,Dente L,et al,2011. The Tibetan Plateau observato‐
               Hu G J,Zhao L,Wu X D,et al,2019. Evaluation of reanalysis air  ry of plateau scale soil moisture and soil temperature(Tibet-Obs)
                  temperature products in permafrost regions on the Qinghai-Tibet‐  for quantifying uncertainties in coarse resolution satellite and
                  an Plateau[J]. Theoretical and Applied Climatology,138(3):  model products[J]. Hydrology and Earth System Sciences,15
                  1457–1470.                                        (7):2303-2316.
               Huang J P,Guan X D,Ji F,2012. Enhanced cold-season warming in  Su Z B,阳坤,2019. 青藏高原土壤温湿度逐时观测数据集(2008-
                  semi-arid regions[J]. Atmospheric Chemistry and Physics,12  2016)[DS/OL]. 国家青藏高原科学数据中心,2019. DOI:10.
                 (272):5391-5398.                                   11888/Soil. tpdc. 270110. CSTR:18046. 11. Soil. tpdc. 270110.
               Huang J P,Yu H P,Guan X D,et al,2016. Accelerated dryland ex‐  van der Velde R,Su Z B,van Oevelen P,et al,2012. Soil moisture
                  pansion under climate change[J]. Nature Climate Change,6(2):  mapping over the central part of the Tibetan Plateau using a series
                  166-171.                                          of ASAR WS images[J]. Remote Sensing of Environment,120:
               Jin R,Li X,Che T,2009. A decision tree algorithm for surface soil  175-187. DOI:10. 1016/j. rse. 2011. 05. 029.
                  freeze/thaw classification over China using SSM/I brightness tem‐  Wang C H,Yang K,Zhang F M,2020. Impacts of soil freeze-thaw
                  perature[J]. Remote Sensing of Environment,113(12):2651-  process and snow melting over Tibetan Plateau on Asian summer
                  2660.                                             monsoon system:A review and perspective[J]. Frontiers in Earth
               Jorgenson M T,Racine C H,Walters J C,et al,2001. Permafrost  Science,8:133. DOI:10. 3389/feart. 2020. 00133.
                  degradation and ecological changes associated with a warming cli‐  Wang J Y,Luo S Q,Li Z G,et al,2019. The freeze/thaw process and
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