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Thermokarst Lake Changes in the Southern Fringe of Siberian Permafrost Region in Mongolia Using Corona, Landsat, and ALOS Satellite Imagery from 1962 to 2007
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作者 adiya saruulzaya Mamoru Ishikawa Yamkhin Jambaljav 《Advances in Remote Sensing》 2016年第4期215-231,共17页
This study presents thermokarst lake changes at seven different sites in the continuous and isolated permafrost zones in Mongolia. Lakes larger than 0.1 ha were analyzed using Corona KH-4, KH-4A and KH-4B (1962-1968),... This study presents thermokarst lake changes at seven different sites in the continuous and isolated permafrost zones in Mongolia. Lakes larger than 0.1 ha were analyzed using Corona KH-4, KH-4A and KH-4B (1962-1968), Landsat ETM + (1999-2001), and ALOS/AVNIR-2 (2006-2007) satellite imagery. Between 1962 and 2007, the total number and area of lakes increased by +21% (347 to 420), and +7% (3680 ha to 3936 ha) in the continuous permafrost zone, respectively. These changes correspond to the appearance of 85 new lakes (166 ha) during the last 45 years. In contrast, lakes in the isolated permafrost zone have decreased by –42% (118 to 68) in number and –12% (422 ha to 371 ha) in area from 1962 to 2007. The changes in lake area and number are likely attributed to shifts in climate regimes and local permafrost conditions. Since 1962, the mean annual air temperature and potential evapotranspiration have increased significantly in the northern continuous permafrost zone compared to the southern isolated permafrost zone. Due to ongoing atmospheric warming without any significant trend in annual precipitation, patches of ice-rich subsurface have thawed, and the number and area of lakes have accordingly developed in the continuous permafrost zone. Shrinking of thermokarst lakes in the isolated permafrost zone may be due to disappearing permafrost, deepening of the active layer, and increased water loss through surface evaporation and subsurface drainage. 展开更多
关键词 Thermokarst Lake Siberian Permafrost Region Mongolia CORONA LANDSAT ALOS
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内蒙古地表冻融指数动态变化与驱动因素分析 被引量:2
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作者 张昊琛 萨楚拉 +4 位作者 孟凡浩 罗敏 王牧兰 高红豆 adiya saruulzaya 《干旱区研究》 CSCD 北大核心 2022年第6期1996-2008,共13页
基于内蒙古45个气象站点1980—2019年日均地表温度数据、结合中国第一代全球陆面再分析产品(CRA)数据以及NDVI数据,利用趋势分析法、相关性分析法和灰色关联度,对内蒙古近40 a地表冻融指数时空变化特征及驱动因素进行分析。研究表明:(1)... 基于内蒙古45个气象站点1980—2019年日均地表温度数据、结合中国第一代全球陆面再分析产品(CRA)数据以及NDVI数据,利用趋势分析法、相关性分析法和灰色关联度,对内蒙古近40 a地表冻融指数时空变化特征及驱动因素进行分析。研究表明:(1)SFI(地表冻结指数)年均值的空间分布特征表现出自西南向东北递增的规律,STI(地表融化指数)则反之,纬度是影响地表冻融指数空间分布的关键因子。研究期间SFI和STI分别呈现出显著下降和上升趋势,多年变化范围分别为956.1~1848.3℃·d和3717.6~4442.3℃·d,变化率分别为-156.4℃·d·(10a)^(-1)和152.4℃·d·(10a)^(-1);与季节冻土区相比,多年冻土区的冻融指数对气候变暖的响应更加敏感。(2)研究区近40 a土壤表层含水量、降水量、NDVI呈增加趋势,雪深呈减少趋势,但年际变化表现出不同的空间差异性,多年冻土区呈暖干化发展趋势,季节冻土区呈暖湿化发展趋势。(3)地表冻融指数与影响因素以负相关关系为主,SFI与影响因素在多年冻土区大部呈正相关关系,在季节冻土区大部呈负相关关系,STI则反之。内蒙古地表冻融指数变化受影响因素共同驱动,0.4 m土壤含水量是影响SFI变化的主导因素,NDVI是影响STI变化的主导因素。研究结果可为内蒙古冻土退化、农牧业生产等提供科学的参考。 展开更多
关键词 内蒙古 地表冻融指数 气候变化 时空特征 驱动因素
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Spatiotemporal variation in snow cover and its effects on grassland phenology on the Mongolian Plateau 被引量:7
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作者 SA Chula MENG Fanhao +4 位作者 LUO Min LI Chenhao WANG Mulan adiya saruulzaya BAO Yuhai 《Journal of Arid Land》 SCIE CSCD 2021年第4期332-349,共18页
Snow cover is an important water source for vegetation growth in arid and semi-arid areas,and grassland phenology provides valuable information on the response of terrestrial ecosystems to climate change.The Mongolian... Snow cover is an important water source for vegetation growth in arid and semi-arid areas,and grassland phenology provides valuable information on the response of terrestrial ecosystems to climate change.The Mongolian Plateau features both abundant snow cover resources and typical grassland ecosystems.In recent years,with the intensification of global climate change,the snow cover on the Mongolian Plateau has changed correspondingly,with resulting effects on vegetation growth.In this study,using MOD10A1 snow cover data and MOD13A1 Normalized Difference Vegetation Index(NDVI)data combined with remote sensing(RS)and geographic information system(GIS)techniques,we analyzed the spatiotemporal changes in snow cover and grassland phenology on the Mongolian Plateau from 2001 to 2018.The correlation analysis and grey relation analysis were used to determine the influence of snow cover parameters(snow cover fraction(SCF),snow cover duration(SCD),snow cover onset date(SCOD),and snow cover end date(SCED))on different types of grassland vegetation.The results showed wide snow cover areas,an early start time,a late end time,and a long duration of snow cover over the northern Mongolian Plateau.Additionally,a late start,an early end,and a short duration were observed for grassland phenology,but the southern area showed the opposite trend.The SCF decreased at an annual rate of 0.33%.The SCD was shortened at an annual rate of 0.57 d.The SCOD and SCED in more than half of the study area advanced at annual rates of 5.33 and 5.74 DOY(day of year),respectively.For grassland phenology,the start of the growing season(SOS)advanced at an annual rate of 0.03 DOY,the end of the growing season(EOS)was delayed at an annual rate of 0.14 DOY,and the length of the growing season(LOS)was prolonged at an annual rate of 0.17 d.The SCF,SCD,and SCED in the snow season were significantly positively correlated with the SOS and negatively correlated with the EOS and LOS.The SCOD was significantly negatively correlated with the SOS and positively correlated with the EOS and LOS.The SCD and SCF can directly affect the SOS of grassland vegetation,while the EOS and LOS were obviously influenced by the SCOD and SCED.This study provides a scientific basis for exploring the response trends of alpine vegetation to global climate change. 展开更多
关键词 snow cover fraction snow cover phenology vegetation phenology grey relation grade climate change Mongolian Plateau
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2003-2019年蒙古高原多年冻土时空动态变化及其影响因素分析 被引量:3
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作者 高红豆 萨楚拉 +4 位作者 孟凡浩 罗敏 王牧兰 张昊琛 adiya saruulzaya 《干旱区资源与环境》 CSSCI CSCD 北大核心 2022年第3期99-106,共8页
基于1km的MODIS地表温度产品(MOD11A1和MYD11A1),使用地表冻结数模型反演2003-2019年蒙古高原多年冻土分布。在此基础上,提出了一种将识别冻土分布的逻辑值转化为定量计算多年冻土变化率的方法,分析蒙古高原多年冻土时空变化特征及其影... 基于1km的MODIS地表温度产品(MOD11A1和MYD11A1),使用地表冻结数模型反演2003-2019年蒙古高原多年冻土分布。在此基础上,提出了一种将识别冻土分布的逻辑值转化为定量计算多年冻土变化率的方法,分析蒙古高原多年冻土时空变化特征及其影响因素。主要结果表明:蒙古高原多年冻土面积约57.07×10^(4)km^(2);空间上,105°E以东多年冻土退化程度大于以西地区;相较其他土地覆盖类型,森林和草甸草原下的多年冻土退化更显著;时间上,多年冻土随纬度和海拔变化呈现明显差异,其中500~2500m范围多年冻土变化尤为显著;影响因子对多年冻土面积影响的方差贡献度排序为:NDVI>雪盖>雪深>表层土壤水>降水>冬季太阳辐射,表明靠近活动层顶部的植被、雪盖和雪深对多年冻土分布影响最大,且多年冻土面积减少显著的区域与植被NDVI显著上升区域及105°E以东积雪大面积融化甚至消失的区域具有一致性。 展开更多
关键词 多年冻土 地表冻结数模型 影响因素 蒙古高原
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