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1.
利用1972年MSS,1990、1999年TM和2013年ETM+遥感影像资料作为数据源,通过目视解译结合GIS技术,提取博格达峰地区4期冰川边界,同时对研究区周边气温降水进行趋势分析和周期分析,研究其与冰川的响应关系。结果表明:1 1972~2013年冰川面积退缩了23.79%(占1972年),退缩速率为0.58%/a。1972~1990年冰川退缩较慢,为0.38%/a,近20 a来冰川退缩加剧,达到0.74%/a;2冰川规模越小,退缩越快;3东南坡退缩最快,东坡次之,北坡最慢;4冰川退缩比率随坡度的变化呈正态分布;5研究区处于气温偏高期,降水偏少期,气候变暖是冰川退缩的主要原因;6对比发现该地区与天山其他区域冰川退缩速率相吻合。  相似文献   

2.
青藏高原念青唐古拉峰地区气候特征初步分析   总被引:7,自引:1,他引:7  
利用青藏高原念青唐古拉峰地区扎当冰川垭口(30°28.07′N,90°39.03′E,5 800 m a.s.l.)、南坡(30°22.87′N,90°40.36′E,5 100 m a.s.l.)和北坡(30°29.06′N,90°37.46′E,5 400 m a.s.l.)三台自动气象站一年的近地层观测资料,分析了该地区温度、湿度、风速风向和辐射等气象要素的季节变化特征,探讨了南、北坡局地气候差异形成的原因。结果表明:垭口、南坡、北坡年平均气温分别为-6.9℃、-1.1℃和-3.4℃;北坡(扎当冰川)消融期气温直减率大,年平均值为0.87℃/100 m;海拔越高,气温日较差、气温直减率波动越大;垭口相对湿度最大,饱和水汽压最小;该地区相对湿度与海拔呈正向关系,而饱和水汽压与之呈反向关系;该地区局地环流特征明显;总辐射5月出现最大值,南坡辐射比北坡小,与大气所含水汽、天空云量、下垫面性质差异等因素有关。  相似文献   

3.
近50a祁连山西段大雪山和党河南山的冰川变化   总被引:1,自引:0,他引:1  
以祁连山西段大雪山和党河南山冰川为例,利用1957/1966航摄地形图、1994年Landsat TM遥感影像、2000年ASTER影像、2010年的SPOT5影像及数字高程模型,运用RS和GIS对祁连山西段大雪山和党河南山冰川变化进行研究。结果表明:1957/1966-2010年研究区冰川面积缩小了17.21%,冰储量减小了24.1%。其中,1957-2010年间大雪山冰川面积缩小了16.03%(0.30%/a),平均每条冰川缩小0.133 km~2,末端平均退缩181 m(3.4 m/a),冰储量减小了22.4%;1966-2010年间党河南山冰川面积缩小了18.32%(0.42%/a),平均每条冰川缩小0.111 km~2,末端平均退缩159 m(3.6 m/a),冰储量减小了25.7%。大雪山南北坡冰川面积分别减小了22.82%和15.51%,党河南山南北坡冰川面积分别减小了22.39%和16.76%,总体来看,南坡冰川退缩幅度强于北坡。分析认为,气温上升是研究区冰川退缩的主导因素。与祁连山东、中部冰川变化相比,研究区冰川面积缩小幅度相对较小,这是区域气候差异、冰川规模等因素综合作用的结果。  相似文献   

4.
根据羌塘高原冰川系统测量雪线高度(ELAh)与冰川平均高度(Hm e)之间存在较好的线性关系,计算了其所有冰川的雪线高度ELAhc。量算的ELAh与计算的ELAhc十分接近,整个羌塘高原的差值(ELAh-ELAhc)平均仅为0.16 m,说明采用这种方法计算的雪线高度ELAhc是可信的。通过对比发现:在编绘雪线高度场时,将冰川系统内相邻冰川分组平均而生成的雪线场克服了地形雪线的影响,比未进行分组平均的雪线场更为美观整洁,规律性也很明显。羌塘高原冰川系统雪线场分布具有如下特征:(1)从南向北,雪线逐渐降低;(2)从东到西,雪线随之升高。从总体上来看,羌塘高原雪线从西南向东北逐渐降低的趋势,但变幅不大,多数在5 700 m以上,但最高值不在气温最高的南部或降水最少的西北部,而在隆格尔山,高达6 000 m以上,不仅是本区和青藏高原内陆水系雪线最高的,也是迄今所知北半球最高雪线所在地。其次分别为波波嘎屋峰、土则岗日和藏色岗日附近,最低值在金阳岗日附近,这是本区降水量从东南向西北减少、气温由南向北降低对雪线综合作用的结果。  相似文献   

5.
2000—2012年祁连山中段雪线与气候变化关系   总被引:1,自引:0,他引:1  
利用MOD10A2积雪产品、气温、降水数据和DEM数据,借助于GIS空间分析技术和统计方法,分析2000—2012年祁连山中段地区的雪线变化,并探讨温度和降水对雪线变化的影响。研究结果表明:1.2000—2012年祁连山中段雪线平均高程值呈波动上升,平均上升速率为42.3 m/(10 a);各年的雪线平均高程4 600 m,多年雪线平均高程值为4 673 m。2.祁连山中段地区各坡向的雪线平均高程值、年平均上升速率均呈现相一致的特征,即阳坡半阴半阳坡阴坡。3.2000—2012年暖季气温和6—8月累计降水量是影响祁连山雪线变化的重要因素,暖季气温升高是引起雪线升高的主导因素。在6—8月累计降水量保持稳定的情况下,暖季气温上升(下降)1℃,祁连山中段雪线高度上升(下降)约58 m。  相似文献   

6.
本文运用多种方法对托木尔峰自然保护区1961—2015年气温、降水、径流变化及其影响因子进行分析,旨在为当地水资源合理利用提供理论支撑。结果显示:55 a来气温升高1.5℃,其中保护区北坡中山带上升最高为1.7℃;春夏秋冬季分别升高了1.2℃、1.1℃、1.7℃和1.9℃,秋冬季对增温的贡献率较大;在春季南坡高山带增温最高为1.4℃、夏秋季北坡中山带增温最高为1.8℃和2.3℃、冬季南坡低山带增温最高为2.8℃;降水年增率1.27 mm,其中南坡中山带年增率最大为2.38 mm;四季年增率分别为春季0.15 mm、夏季0.55 mm、秋季0.41 mm、冬季0.13 mm,夏秋季对增湿贡献率较大;春季南坡高山带年增率最大为0.32 mm、夏秋季南坡中山带年增率最大为1.03 mm和0.77 mm、冬季北坡中山带年增率最大为0.22 mm;库玛拉克河径流量年增率为0.25×108m3,台兰河径流量年增率为0.01×108m3,保护区气温和降水的变化是造成径流变化的主要因素,尤其是春季降水和夏季气温的影响最为显著。  相似文献   

7.
研究不同地形下的山地气候变化对于植被生长、不同动物种群的生存习性及对气候的应激性有重要意义。本文基于陕西秦岭地区1959—2016年32个国家站的日气温和降水资料,采用Anusplin插值法、标准化降水蒸散指数(SPEI)、稳健回归和Theil-sen回归法等方法分析了山区地形对气候变化的影响。结论如下:(1)58年来秦岭四个坡向上年均温度随着海拔的升高呈现显著下降趋势,年降水随着海拔的升高呈现不同程度的上升趋势。温度随坡度的增加表现出下降趋势;除秦岭南坡西段外,降水随着坡度的增加呈现出上升趋势,但均不显著。(2)年尺度上,秦岭山地南坡和南坡东段的气温呈显著增温趋势,南坡西段和北坡呈不显著增温趋势;四个方向上的降水均呈显著下降趋势。秦岭山地四个方向上的干湿等级为正常,北坡和南坡西段的干湿状况一致,58年年均SPEI均为0.07,南坡东段较暖湿(0.08),南坡较暖干(0.05)。(3)季节尺度上,秦岭山地四个方向上除了夏季外,其他季节的气温均表现出不同程度的升温趋势,降水均呈下降趋势。秦岭四个方向上四季干湿变化属于正常等级。秦岭北坡出现春季干暖化趋势;南坡秋季较暖湿;南坡东段和西段的冬季呈暖湿化特征;南坡西段夏季呈现暖干化特征。  相似文献   

8.
近30年珠穆朗玛峰国家自然保护区冰川变化的遥感监测   总被引:18,自引:2,他引:16  
利用1976、1988和2006年的3期陆地卫星遥感数据,采用面向对象的解译方法并结合专家知识分类规则自动提取珠穆朗玛峰国家自然保护区(以下简称珠峰保护区)3个时期的冰川信息,并利用遥感、地理信息系统和图谱的方法对冰川时空分布特征和变化及其原因与不确定性进行了分析。结果如下:(1)2006年珠峰保护区内冰川面积为2710.17±0.011km2,为研究区总面积的7.41%,主要分布在研究区南部海拔4700~6800m的高山区;(2)1976-2006年,珠峰保护区冰川持续退缩明显,总面积减少501.91±0.035km2,冰湖扩张迅速(净增加36.88±0.035km2);研究区南坡子流域冰川退缩率(16.79%)高于北坡子流域(14.40%);珠峰保护区冰川以退缩为主,退缩冰川主要分布于海拔4700~6400m,退缩区上限海拔为6600~6700m;(3)1976年以来,气温显著上升和降水减少是冰川退缩的关键因素。  相似文献   

9.
豫西山地植被NDVI及其气候响应的多维变化   总被引:3,自引:1,他引:2  
豫西山地是秦岭山系在河南境内的余脉,处于亚热带向暖温带的过渡区域,是气候变化的敏感区。利用S-G滤波算法重构2000-2013年MODIS-NDVI时序影像,结合DEM、气温和降水数据,运用趋势分析、相关性分析等方法探讨豫西山地NDVI及其气候响应的多维变化。结果表明:(1)14年来豫西山地NDVI呈增长态势,增速为0.041/10a。NDVI值随山地海拔升高先增后降,随坡度增加而增大,在各坡向的分布相差不大。(2)植被在1100 m海拔区恢复概率最高,在1700 m区域退化概率最高;在10°~20°坡度区域恢复概率最高,在0°~5°区域退化概率最高;坡向对植被变化的分异作用不明显。(3)不同海拔、坡度、坡向上的植被所受影响因素不同,高海拔区植被动态主要受降水控制;不同坡度上的植被NDVI与气温的相关性均大于与降水的;在不同坡向上差异不明显。(4)崤山、熊耳山、伏牛山三大山脉北坡NDVI增速均大于南坡;北坡植被对降水变化较敏感,而南坡植被对气温变化较敏感。这些都是在全球变化背景下该区生态环境响应的重要信号,反映了过渡带生态响应因子对山地生态系统的重要性。  相似文献   

10.
博格达峰地区气候变化特征及其对冰川变化的影响   总被引:2,自引:1,他引:1  
20世纪中叶以来,随着全球变暖加剧,中国冰川普遍发生了退缩,对局地人民生活、生存环境及社会经济产生了深刻的影响,对位于西北干旱区的博格达峰地区尤为突出.本文首先采用趋势分析、突变检验和小波变换等方法对研究区周边气温、降水进行研究,同时应用Landsat l-4、5、7MSS、TM/ETM+影像分析1972-2013年博格达峰区冰川变化特征,在此基础上系统探讨冰川变化与该区气候变化之间的响应关系.结果表明:①1960-2013年研究区气温、降水变化倾向分别为0.19℃/10 a和12.4 mm/l0 a;年平均气温在1990年前后存在显著突变,年降水量在1985年前后存在突变.气温主要表现为8~10 a的周期,降水周期性较差.目前处于气温偏高、降水偏少期;②1972-2013年冰川面积减少46.71±1.32 km2,年均退缩率为0.66%±0.02%,冰川退缩趋势明显.其中1972-1990年,冰川年均退缩率为0.44%±0.03%;近20年来冰川退缩加剧,年均退缩率达到0.78%±0.09%;③通过分形理论对研究区冰川空间结构特征分析表明,预计未来冰川消融率将趋于稳定,但仍处于较高状态;④对比中国西部各地区冰川的变化,发现该地区冰川退缩和其他区域退缩速率相吻合;⑤1990年之前博格达峰地区冰川变化受温度和降水共同控制,1990年之后冰川退缩主要由气温上升引起.  相似文献   

11.
The Heihe River Basin is the second largest inland river basin in Northwest China and it is also a hotspot in arid hydrology, water resources and other aspects of researches in cold regions. In addition, the Heihe River Basin has complete landscape, moderate watershed size, and typical social ecological environmental problems. So far, there has been no detailed assessment of glaciers change information of the whole river basin. 1:50,000 topographic map data, Landsat TM/ETM+ remote sensing images and digital elevation model data were used in this research. Through integrated computer automatic interpretation and visual interpretation methods, the object-oriented image feature extraction method was applied to extract glacier outline information. Glaciers change data were derived from analysis, and the glacier variation and its response to climate change in the period 1956/1963–2007/ 2011 were also analyzed. The results show that:(1) In the period 1956/1963–2007/2011, the Heihe River Basin's glaciers had an evident retreat trend, the total area of glaciers decreased from 361.69 km2 to 231.17 km~2; shrinking at a rate of 36.08%, with average single glacier area decrease 0.14 km~2; the total number of the glaciers decreased from 967 to 800.(2) Glaciers in this basin are mainly distributed at elevations of 4300–4400 m, 4400–4500 m and 4500–4600 m; and there are significant regional differences in glaciers distribution and glaciers change.(3) Compared with other western mountain glaciers, glaciers retreat in the Heihe River Basin has a higher rate.(4) Analysis of the six meteorological stations' annual average temperature and precipitation data from 1960 to 2010 suggests that the mean annual temperature increased significantly and the annual precipitation also showed an increasing trend. It is concluded that glacier shrinkage is closely related with temperature rising, besides, glacier melting caused by rising temperatures greater than glacier mass supply by increased precipitation to  相似文献   

12.
近50年黑河流域的冰川变化遥感分析   总被引:2,自引:0,他引:2  
黑河流域作为中国西北地区第二大内陆流域,其景观类型完整、流域规模适中、社会生态环境问题典型,已成为寒区、旱区水文与水资源研究的热点地区。本研究结合1:5 万地形图、Landsat TM/ETM+遥感影像及数字高程模型数据,运用面向对象的图像信息自动提取方法,建立冰川信息提取知识规则,对近50 年黑河流域的冰川变化进行遥感分析。结果表明:(1)20 世纪60 年代黑河流域内的967 条冰川到2010 年左右,减少为800 条冰川,减少数量明显;冰川面积由361.69 km2退缩为231.17 km2,共减少130.51 km2,退缩率为36.08%,平均每条冰川面积退缩0.14 km2。(2)黑河流域冰川分布及变化存在显著的区域差异性,黑河冰川退缩率比北大河大16%左右;冰川末端主要分布在4300~4400 m、4400~4500 m和4500~4600 m海拔区间内。(3)与西部其他山地冰川相比,黑河流域冰川退缩率较高。(4)根据流域内6 个气象站资料分析表明,降水增加对冰川的补给无法弥补气温上升导致的冰川消融所带来的物质损失,是黑河流域冰川普遍萎缩的关键因素。  相似文献   

13.
利用Landsat影像,EDM影像等数据资料,使用遥感图像处理及目视解译方法提取了喜马拉雅山东段中国与不丹边境地区冰川从1990—2015年4期边界,研究其与气温降水变化关系,并选取特定冰川,对其表面流速进行估算。研究表明:1990—2015年,该地区冰川退缩速率达0.43%·a-1,并且冰川年退缩率逐渐增大,表明冰川消融速度逐渐加快。该时段内,气温呈现明显上升趋势,导致了冰川的快速消融。通过对冰川表面流速的估算,得出中国与不丹边境地区研究选取的冰前湖对冰川流速具有促进作用,加速冰川消融。  相似文献   

14.
Glaciers in the western USA contribute summer meltwater to regional hydrological systems. In the San Juan Mountains of Colorado, where glaciers do not exist, rock glaciers serve that function during the summer runoff period. Most rock glaciers in Colorado are located on northern slopes in mountainous areas; however, some rock glaciers in southwest Colorado have different aspects. In this study, we asked how slope aspect and rising air temperatures influence the hydrological processes of streams sourced from rock glaciers in the San Juan Mountains. We focused on three adjacent basins, Yankee Boy basin, Blue Lakes basin, and Mill Creek basin, which share a common peak, Gilpin Peak. Using HOBO® U20-001–04 water-level loggers, streamflow data were collected in each of these basins, below each rock glacier. Air temperature significantly influenced stream discharge below the rock glacier. Discharge and air temperature patterns indicate a possible air temperature threshold during late summer when rock glacier melt increases at a greater rate. The results also suggest that the aspect of rock glacier basins influences stream discharge, but that temperature and precipitation are likely larger components of melt regimes.  相似文献   

15.
叶如藏布流域冰川和冰湖众多,冰川融水是当地重要的淡水资源,是冰湖扩张的重要补给,冰湖溃决是当地潜在的自然灾害,因此分析该区域冰川和冰湖的现状与变化特征具有重要的现实意义。基于Landsat系列遥感影像,分析1990—2020年叶如藏布流域冰川和冰湖的分布与变化特征。结果表明:(1) 近30 a来叶如藏布流域冰川面积整体呈退缩趋势,由1990年167.80 km2退缩到2020年128.92 km2,共退缩38.88 km2,年均退缩率为0.77%·a-1,且研究区冰川主要分布在海拔5800~6400 m之间,集中分布在5°~20°的坡度上。(2) 与冰川变化趋势相反,研究时段冰湖整体表现为扩张趋势,由1990年5.72 km2增加到2020年8.81 km2,30 a共增加3.09 km2,年均增长率为1.80%·a-1。(3) 冰湖主要分布在海拔5000~5600 m范围内,坡度在0~10°分布面积较多,表碛覆盖型冰川与非表碛覆盖型冰川对冰湖有着不同程度的影响。(4) 1990—2017年叶如藏布流域温度与降水波动较大,温度整体呈上升趋势,降水量则波动下降,导致叶如藏布流域的冰川消融,冰湖扩张。通过上述研究以期为叶如藏布流域地区提供详细的冰川和冰湖面积分布与变化特征基础数据,为防灾减灾提供一定的支撑。  相似文献   

16.
The glaciers in the Sanjiangyuan Nature Reserve of China (SNRC) are a significant water resource for the Yangtze,Yellow,and Mekong rivers.Based on Landsat Thematic Mapper(TM)/Operational Land Imager (OLI) images acquired in 2000,2010,and 2018,the outlines of glaciers in the SNRC were obtained by combining band ratio method with manual interpretation.There were 1714 glaciers in the SNRC in 2018,with an area of 2331.15±54.84 km2,an ice volume of 188.90±6.41 km3,and an average length of 1475.4±15 m.During 2000-2018,the corresponding values of glaciers decreased by 69,271.95±132.06 km2,18.59±8.83 km3,and 84.75±34 m,respectively.Glaciers in the Yangtze River source area witnessed the largest area loss (-154.45 km2),whereas glaciers in the Mekong River source area experienced the fastest area loss (-2.02%·a-1) and the maximum reduction of the average length (-125.82 m).Overall,the retreat of glaciers in the SNRC exhibited an accelerating trend.Especially,the loss rate of glacier area in the Yellow River source area in 2010-2018 was more than twice that in 2000-2010.The glacier change is primarily attributed to the significant rise in temperature during the ablation period.Some other factors including the size,orientation and terminus elevation of glaciers also contributed to the heterogeneity of glacier change.  相似文献   

17.
1990-2011年西昆仑峰区冰川变化的遥感监测   总被引:2,自引:0,他引:2  
本文应用Landsat 5、7 TM、ETM+影像分析1990-2011年昆仑山西段昆仑峰区冰川变化特征,结果表明:1990-2011年冰川面积减少16.83 km2,退缩率仅为0.65%,冰川退缩趋势不明显。单条冰川变化有进有退,中峰冰川末端在2002-2004年以661 m/a的速率前进,初步判定为跃动冰川。1991-1998年,崇测冰川面积增加9.47 km2,冰川末端以200 m/a的速率前进,不排除有跃动冰川的可能性。尽管近年来全球气温普遍上升,大量冰川处于退缩状态,但统计已有研究结果发现近50年来青藏高原存在冰川长度、面积增加,冰川物质平衡为正的现象,表现出冰川对气候变化复杂的反馈机制。通过分析气象站点和冰芯资料,研究区周边地区气温上升、降水量缓慢增加可能是冰川微弱退缩的原因之一;增强的西风环流带来更多的降水、研究区以极大陆型大规模冰川为主,也可能是冰川退缩幅度较小的原因。  相似文献   

18.
1959年来中国天山冰川资源时空变化   总被引:1,自引:0,他引:1  
基于两期冰川编目数据与气象数据,对天山1959年来冰川资源的时空变化特征进行研究。研究发现:① 天山地区现有冰川7934条,面积7179.77 km2,冰储量756.48 km3。冰川数量以面积< 1 km2的冰川居多,面积以1~10 km2和≥ 20 km2的冰川为主,冰川集中分布在海拔3800~4800 m之间。② 在四级流域中,阿克苏河流域冰川面积最大为1721.75 km2,面积最小的是伊吾河流域,为56.03 km2。在各市(州)中,阿克苏地区冰川资源量最多,其面积和储量分别占天山总量的43.28%和68.85%;冰川资源量最少的市(州)是吐鲁番地区,面积和储量仅占天山总量的0.23%和0.07%。③ 1959年来,天山地区冰川面积减少了1619.82 km2(-18.41%),储量亏损了104.78 km3(-12.16%),其中数量以< 1 km2的冰川减少最多,面积减少以< 5 km2的冰川最为严重。④ 冰川变化呈现明显的区域差异,变化速度最快的是天山东段博格达北坡流域,变化最慢的是中部的渭干河流域。初步分析认为夏季气温显著上升带来的消融大于年内降水带来的积累是天山冰川退缩的主要原因。  相似文献   

19.
Glaciers are the most important fresh-water resources in arid and semi-arid regions of western China. According to the Second Chinese Glacier Inventory (SCGI), primarily compiled from Landsat TM/ETM+ images, the Qilian Mountains had 2684 glaciers covering an area of 1597.81±70.30 km2 and an ice volume of ~84.48 km3 from 2005 to 2010. While most glaciers are small (85.66% are <1.0 km2), some larger ones (12.74% in the range 1.0–5.0 km2) cover 42.44% of the total glacier area. The Laohugou Glacier No.12 (20.42 km2) located on the north slope of the Daxue Range is the only glacier >20 km2 in the Qilian Mountains. Median glacier elevation was 4972.7 m and gradually increased from east to west. Glaciers in the Qilian Mountains are distributed in Gansu and Qinghai provinces, which have 1492 glaciers (760.96 km2) and 1192 glaciers (836.85 km2), respectively. The Shule River basin contains the most glaciers in both area and volume. However, the Heihe River, the second largest inland river in China, has the minimum average glacier area. A comparison of glaciers from the SCGI and revised glacier inventory based on topographic maps and aerial photos taken from 1956 to 1983 indicate that all glaciers have receded, which is consistent with other mountain and plateau areas in western China. In the past half-century, the area and volume of glaciers decreased by 420.81 km2 (–20.88%) and 21.63 km3 (–20.26%), respectively. Glaciers with areas <1.0 km2 decreased the most in number and area recession. Due to glacier shrinkage, glaciers below 4000 m completely disappeared. Glacier changes in the Qilian Mountains presented a clear longitudinal zonality, i.e., the glaciers rapidly shrank in the east but slowly in the central-west. The primary cause of glacier recession was warming temperatures, which was slightly mitigated with increased precipitation.  相似文献   

20.
Based on Landsat MSS/TM/OLI remote sensing images, glaciers vector data in the Qaidam Basin were extracted for 1977, 2002, and 2018, and their spatial-temporal variations were analyzed. Results show that there were 2,050 glaciers covering an area of 1,693.54±40.96 km2 and having an ice volume of 108.65±2.43 km3 in the Qaidam Basin in 2018. Glaciers with areas <1.0 km2 accounted for the largest number, while glaciers with areas of 1.0-5.0 km2 accounted for the most glacierized area. In the past 50 years, the number of glaciers decreased by 177, and the glacier area and volume reduced by 338.08 km2 (-8.12 km2/a) and 19.92 km3 (-0.48 km3/a), respectively. Retreat altitudes of glaciers were concentrated at 4,900-5,600 m, 4,700-5,200 m, and 5,000-5,600 m and reduced areas accounted for 95.53%, 77.80%, and 69.19% in the Kunlun, Qilian, and Altun mountains, respectively. The area of north-oriented glaciers decreased the most (-125.43 km2), but the west- and east-oriented glaciers retreated at the fastest rate (i.e., -27.11% and -27.10%). All glaciers showed a decreasing trend in sub-regions of the Qaidam Basin from 1977 to 2018. The decreasing trend was accelerated gradually from northwest to southeast in the northern part of the basin, while glacier change was the smallest in the middle section and gradually accelerated towards both ends of the basin's southern part. The temperature had continued to rise, and the precipitation had increased slowly in the Qaidam Basin during the past 50 years. The continuous rise in air temperature was the main reason for the retreat of glaciers.  相似文献   

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