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1.
长江源区地表水资源对气候变化的响应及趋势预测   总被引:3,自引:0,他引:3  
利用1961-2011 年长江源区流域水文、气象观测数据和国家气候中心2009 年11 月发布的中国地区气候变化预估数据集(2.0 版本), 通过分析长江源区流量的演变规律和揭示气候归因, 预测了未来流量可能的演变趋势。研究表明:近51 年来长江源区地表水资源总体呈增加趋势, 特别是2004 年后增加趋势显著, 并具有9a、22a 的准周期;青藏高原加热场增强, 高原季风进入强盛期, 流域降水量显著增加, 加之气候变化导致冰川融水增多, 是引起长江源区地表水资源增加的主要气候归因;根据全球气候模式预测, 在SRESA1B气候变化情景下, 未来20年长江源区地表水资源仍有可能以增加为主。  相似文献   

2.
本文从气候变化的角度出发, 研究黄河上游龙羊峡水库夏季流量与流域气候条件的响应关系及流量预估模型, 并根据区域气候模式输出数据降尺度生成的未来气候情景, 对未来龙羊峡夏季水库流量进行了预估。结果表明:近35 年来, 黄河上游夏季气温升高、蒸发增大, 降水略有减少;黄河上游龙羊峡水库平均入库流量呈递减趋势, 夏季流量对流域降水量、平均最高气温及最低气温的响应显著;未来两个时期(2020s、2030s)龙羊峡夏季流量均较基准期(1988-2010 年)减少, 但在不同气候变化情景下流量变化有所差异, 其中A2 情景下夏季平均流量分别减少23.9%(2020s)和19.8%(2030s), B2 情景下分别减少14.4%(2030s)和17.3%(2030s), 据此, 未来气候变化对黄河上游流域夏季流量的可能影响将弊大于利, 但仍具有较大不确定性。  相似文献   

3.
三江源区径流演变及其对气候变化的响应   总被引:4,自引:0,他引:4  
利用水循环模型、统计检测、对比分析等手段对三江源区水循环过程进行了分析,模拟和检测了1958-2005 年黄河源区出口唐乃亥站、长江源区直门达站、澜沧江源区昌都站汛期、非汛期和年径流过程的变化趋势。在此基础上,检测CSIRO和NCAR两种气候模式A1B和B1 排放情景下未来2010-2039 年源区出口断面的径流演变趋势,对比分析了气候变化的影响。研究表明过去48 年三江源区出口唐乃亥站年径流和非汛期径流过程呈显著减少趋势,而直门达和昌都站径流过程变化趋势并不显著。这将导致对黄河中下游地区的水资源补给显著减少,加剧黄河流域水资源短缺。气候变化背景下,未来30 年黄河源区径流量与现状相比有所减少,尤其是在非汛期,将持续加剧黄河中下游流域水资源短缺的现象。长江源区径流量将呈增加趋势,而且远远高于现状流量,尤其是在汛期,长江中下游地区防洪形势严峻。而澜沧江源区未来30 年径流量均高于现状流量,但汛期和年径流变化并不显著,而非汛期径流变化存在不确定性,CSIRO模式B1 情景显著减小,而NCAR模式B1 情景显著增加。气候变化对长江源区径流影响最显著,黄河源区其次,而澜沧江源区最小。  相似文献   

4.
黄河源区地表水资源变化及其影响因子   总被引:19,自引:3,他引:16  
利用1955~2005 年黄河源区玛多气象站和黄河沿水文站气象、水文资料, 分析了该区域地表水资源、气候及冻土演变规律, 揭示了地表水资源变化的成因。研究表明: 近51 年黄河源流量丰枯转化频繁, 但在总体上特别是进入20 世纪90 年代以来黄河源流量呈减少趋势, 流量年内分配表现为单峰型; 降水量对流量有着较为显著的影响, 且具有一定的持续性; 黄河源区气温的显著升高对于加大流域蒸发量导致流量补给的减少作用要大于其升高致使冰雪融水的补给作用, 其中春季气温回升的这一效应更为显著; 黄河源区冻土呈现出显著的退化趋势, 冻土厚度与流量总体上呈显著的正相关关系, 其不断减小削弱了自身天然隔水层的作用; 黄河源区蒸发量呈现出显著的增大趋势, 并导致流量的减少; 气候变化导致流量的减少量占总减少量的70%, 其余30%可能是由人类活动加剧造成的, 气候及冻土因子对流量的作用大小依次为冻土、降水、蒸发和气温, 显然多年冻土对于黄河源区地表水资源的形成和发育有着至关重要的作用。  相似文献   

5.
基于黄河源区有关水文、气象台站的观测数据,对该区及黄河沿水文站以上、黄河沿水文站-吉迈水文站区间、吉迈水文站-玛曲水文站区间、玛曲水文站-唐乃亥水文站区间各区域1960—2014年期间径流变化的季节特征、趋势及其对气候变化响应的区域差异进行了分析。结果表明:近55 a来黄河源区径流及其各分区径流总体上呈减少的态势,但减少幅度各区有所不同;但在2000年代中期后径流量回升比较明显。在上述分析的基础上,基于周期外延叠加方法对黄河河源区径流未来30 a的可能变化进行了预测。预测显示,未来30 a内,黄河源区径流的变化为先增后减,但总体变化平稳,其均值与目前55 a实测系列均值没有显著差异。  相似文献   

6.
过去30年气候变化对黄河源区水源涵养量的影响   总被引:3,自引:1,他引:2  
黄河源区高寒生态系统具有重要的水源涵养功能。基于改进的LPJ动态植被模型,模拟研究1981-2010年中国黄河源区水源涵养量的时空变化特征,进一步探讨气候要素变化的影响。结果表明:近30年来黄河源区水源涵养量整体略呈减少趋势,减少速率为-1.15 mm/a,区域差异特征体现为大部分地区以减少趋势为主,特别是黄河源区东南部。过去30年黄河源区降水量以及大气水分需求能力的变化是影响生态系统水源涵养量增减的主要气候因素。随着干湿条件不同,两者影响程度各异,降水减少和潜在蒸散增加共同导致黄河源区东南部半湿润地区水源涵养量减少,而降水增加则是北部半干旱地区水源涵养量增加的主要原因。  相似文献   

7.
塔里木河流域极端气候事件模拟与RCP4.5情景下的预估研究   总被引:1,自引:1,他引:0  
利用塔里木河流域1986-2005年气温、降水逐日格点数据和MPI-ESM-LR模式驱动的CCLM区域模式模拟数据,评估了CCLM模式对塔里木河流域极端气候事件的模拟能力。同时采用EDCDF法对最高气温、最低气温和降水预估数据进行偏差校正,并计算了2016-2035年极端气候指数。结果表明:该区域气候模式对塔里木河流域年平均最高气温、最低气温和降水的空间分布具有较强的模拟能力,特别是气温空间相关系数在0.97以上;该模式对于极端气候事件也有着较强的模拟能力,大部分极端气候指数的空间相关系数达到了0.01的显著性水平。通过偏差校正,有效地提高了气候要素及相应的极端气候指数的模拟精度。预估未来RCP4.5情景下,塔里木河流域未来(2016-2035年)极端暖事件(暖期持续指数、气温日较差、暖昼、极端最高气温)有增加的趋势,未来流域中部的干旱可能更严重,而流域内环塔里木盆地区域将变湿。  相似文献   

8.
黄河上游气候变化对地表水的影响   总被引:29,自引:2,他引:27  
利用1961~2002年黄河上游唐乃亥水文站水文资料及同期该流域气象资料,研究黄河上游流域气候变化及其对地表水资源的影响,结果表明: 黄河上游年流量呈现出逐年减少趋势,20世纪90年代以来减少趋势更为明显;黄河上游流域气候变化表现出气温升高、降水减少和蒸发增大的干旱化趋势,这一变化趋势在90年代以来尤为突出;气温升高、降水量减少和蒸发量增大是导致黄河上游流量减少的气候原因,其中降水量是影响流量的主要气候因子,降水量的减少特别是夏季降水量的减少直接导致了黄河上游流量的减少。  相似文献   

9.
近50 a来黄河上游水循环要素变化分析   总被引:5,自引:6,他引:5  
 根据水文、气象台站观测资料,分析了黄河上游有器测资料几十年来降水、温度、径流等水循环素的变化过程与特征。结果显示,温度近几十年来流域各个地方有着不同程度的上升,与全球变暖有着明显的对应关系;而随着气温的上升,蒸发和下渗呈增加的趋势。降水变化的区域性特征十分明显,降水量的增减随地理位置不同而差异较大。受主要产流区域降水减少,气温上升的影响,黄河上游产水量呈持续递减的态势。在上述分析基础上,利用全球气候模式(GCMs)与统计模式对未来流域降水和径流的可能变化进行了预测。结果表明,未来30 a里,随着温度将进一步上升,降水量将比目前有明显增加,黄河上游的径流量将随降水量的增加而进入一个相对丰水的时期。  相似文献   

10.
利用甘南高原黄河重要水源补给区气候资料和生态观测资料及统计资料,分析研究区域气候变化特征及其草原湿地生态环境效应。结果表明,甘南高原黄河重要水源补给区降水量年际变化呈下降趋势,降水量的年际变化存在6~7a、15a的周期振荡特征。甘南高原黄河重要水源补给区气温年际变化呈上升趋势,增温速度大于全国增温速度。1980年之后持续偏暖,草地年干燥指数变化呈显著上升趋势。气候变化是草原生态退化的自然诱发因素,而超载过牧、滥采滥挖、人为破坏、生物链失衡等环境蠕变是造成生态退化的人为因素,二者共同作用导致黄河首曲草原湿地水资源锐减、生物多样性减少、生态环境退化。  相似文献   

11.
黄河源区径流对气候变化的响应及未来趋势(英文)   总被引:4,自引:1,他引:3  
This study examines the hydrological and meteorological data of the source region of the Yellow River from 1956 to 2010 and future climate scenarios from regional climate model (PRECIS) during 2010-2020. Through analyzing the flow variations and revealing the climate causes, it predicts the variation trend for future flows. It is found that the annual mean flow showed a decreasing trend in recent 50 years in the source region of the Yellow River with quasi-periods of 5a, 8a, 15a, 22a and 42a; the weakened South China Sea summer monsoon induced precipitation decrease, as well as evaporation increase and frozen soil degeneration in the scenario of global warming are the climate factors, which have caused flow decrease. Based on the regional climate model PRECIS prediction, the flows in the source region of the Yellow River are likely to decrease generally in the next 20 years.  相似文献   

12.
The change characteristics and trends of the regional climate in the source region of the Yellow River, and the response of runoff to climate change, are analyzed based on observational data of air temperature, precipitation, and runoff at 10 main hydrological and weather stations in the region. Our results show that a strong signal of climate shift from warm-dry to warm-humid in the western parts of northwestern China (Xinjiang) and the western Hexi Corridor of Gansu Province occurred in the late 1980s, and a same signal of climate change occurred in the mid-2000s in the source region of the Yellow River located in the eastern part of northwestern China. This climate changeover has led to a rapid increase in rainfall and stream runoff in the latter region. In most of the years since 2004 the average annual precipitation in the source region of the Yellow River has been greater than the long-term average annual value, and after 2007 the runoff measured at all of the hydrologic sections on the main channel of the Yellow River in the source region has also consistently exceeded the long-term average annual because of rainfall increase. It is difficult to determine the prospects of future climate change until additional observations and research are conducted on the rate and temporal and spatial extents of climate change in the region. Nevertheless, we predict that the climate shift from warm-dry to warm-humid in the source region of the Yellow River is very likely to be in the decadal time scale, which means a warming and rainy climate in the source region of the Yellow River will continue in the coming decades.  相似文献   

13.
三江源区径流演变及其对气候变化的响应(英文)   总被引:2,自引:2,他引:0  
Runoff at the three time scales(non-flooding season,flooding season and annual period) was simulated and tested from 1958 to 2005 at Tangnaihai(Yellow River Source Region:YeSR),Zhimenda(Yangtze River Source Region:YaSR) and Changdu(Lancang River Source Region:LcSR) by hydrological modeling,trend detection and comparative analysis.Also,future runoff variations from 2010 to 2039 at the three outlets were analyzed in A1B and B1 scenarios of CSIRO and NCAR climate model and the impact of climate change was tested.The results showed that the annual and non-flooding season runoff decreased significantly in YeSR,which decreased the water discharge to the midstream and downstream of the Yellow River,and intensified the water shortage in the Yellow River Basin,but the other two regions were not statistically significant in the last 48 years.Compared with the runoff in baseline(1990s),the runoff in YeSR would decrease in the following 30 years(2010-2039),especially in the non-flooding season.Thus the water shortage in the midstream and downstream of the Yellow River Basin would be serious continuously.The runoff in YaSR would increase,especially in the flooding season,thus the flood control situation would be severe.The runoff in LcSR would also be greater than the current runoff,and the annual and flooding season runoff would not change significantly,while the runoff variation in the non-flooding season is uncertain.It would increase significantly in the B1 scenario of CSIRO model but decrease significantly in B1 scenario of NCAR model.Furthermore,the most sensitive region to climate change is YaSR,followed by YeSR and LcSR.  相似文献   

14.
2000-2011 年三江源区植被覆盖时空变化特征   总被引:18,自引:0,他引:18  
基于MODIS-NDVI 数据,辅以线性趋势分析、Hurst 指数及偏相关系数等方法,本文从三个尺度分析了近12 年三江源区植被覆盖时空变化特征、未来趋势及其驱动因素。结果表明:(1) 近12 年三江源区植被覆盖呈现增加趋势,增速为1.2%/10a,其中长江源区、黄河源区植被均呈增加趋势,而澜沧江源区植被呈下降趋势。(2) 三江源区植被覆盖具有显著的区域差异,且NDVI频度呈现“双峰”结构。(3) 近12 年三江源区植被覆盖呈增加趋势和减少趋势的面积分别占64.06%和35.94%,且表现为源区北部增加、南部减少的空间格局。(4) 三江源区植被变化的反向特征显著,植被变化由改善趋势转为退化趋势的区域主要分布在长江源区和黄河源区的北部,而由退化趋势转为改善趋势的区域主要分布在澜沧江源区。(5) 三江源区植被对降水和潜在蒸散的响应存在时滞现象,而对气温的响应不存在时滞现象。(6) 三江源区植被覆盖的增加主要归因于气候暖湿化以及生态保护工程的实施。  相似文献   

15.
The Three-River Headwaters Region (TRHR), which is the source area of the Yangtze River, Yellow River, and Lancang River, is of key importance to the ecological secu- rity of China. Because of climate changes and human activities, ecological degradation oc- curred in this region. Therefore, "The nature reserve of Three-River Sou,'ce Regions" was established, and "The project of ecological protection and construction for the Three-River Headwaters Nature Reserve" was implemented by the Chinese government. This study, based on MODIS-NDVI and climate data, aims to analyze the spatiotemporal changes in vegetation coverage and its driving factors in the TRHR between 2000 and 2011, from three dimensions. Linear regression, Hurst index analysis, and partial correlation analysis were employed. The results showed the following: (1) In the past 12 years (2000-2011), the NDVI of the study area increased, with a linear tendency being 1.2%/10a, of which the Yangtze and Yellow River source regions presented an increasing trend, while the Lancang River source region showed a decreasing trend. (2) Vegetation coverage presented an obvious spatial difference in the TRHR, and the NDVI frequency was featured by a bimodal structure. (3) The area with improved vegetation coverage was larger than the degraded area, being 64.06% and 35.94%, respectively during the study period, and presented an increasing trend in the north and a decreasing trend in the south. (4) The reverse characteristics of vegetation cov- erage change are significant. In the future, degradation trends will be mainly found in the Yangtze River Basin and to the north of the Yellow River, while areas with improving trends are mainly distributed in the Lancang River Basin. (5) The response of vegetation coverage to precipitation and potential evapotranspiration has a time lag, while there is no such lag in the case of temperature. (6) The increased vegetation coverage is mainly attributed to the warm-wet climate change and the implementation of the ecological protection project.  相似文献   

16.
黄河源区径流量与区域气候变化的多时间尺度相关   总被引:8,自引:2,他引:6  
采用交叉小波变换方法,分析了黄河源区实测径流量与区域降水量、蒸发量以及最高、最低气温之间的时频域统计特征,讨论了黄河源区径流与区域气候变化之间的多时间尺度相关.结果表明,黄河源区径流和区域气候变化具有多时间尺度结构,两者都存在准2a、4a、6~8a、12~14a和20a以上尺度的显著变化周期,不同尺度周期振荡能量的强弱和时域分布的位相差异是两者相关不稳定和存在时延相关的重要原因.径流与区域降水量之间正相关振荡的凝聚性最强,区域降水量对径流变化起主控作用,前期降水异常对后期径流变化具有持续性影响.径流变化与区域蒸发量存在显著负相关振荡,年际尺度相关存在不稳定和时延现象.年代际尺度上径流与最高气温的负相关比其与最低气温的正相关凝聚性更强,最高气温升高对增大流域蒸发量导致径流补给的减少作用大于最低气温升高引起冰雪融水补给的增大作用;两者年际尺度相关不稳定,径流对气温变化的响应时间不同.分析认为,区域降水量是黄河源区径流变化的主导因子,最高气温是重要因子;在区域降水量逐年减小的背景下,气温升高进一步加剧了径流量的减小.区域蒸发量和最低气温变化对径流量也有不同程度的影响,气候因子的综合作用是黄河源区径流变化的根本原因.  相似文献   

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