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1.
近40年三工河流域气候变化分析   总被引:2,自引:0,他引:2  
通过近40年三工河流域不同海拔高度的典型地貌气象资料的统计,对影响流域气候变化的气温、降水、蒸发气象要素进行线性趋势分析,得出中山森林区气候暖湿化相对较弱,平原区气候暖湿化特征显著,近山倾斜平原绿洲区是气候暖湿化最为明显的地域。流域降水与蒸发呈反相关关系,降水增加起到绝对增湿作用,蒸发减小起到相对增湿作用。在此气候趋势变化下,三工河流域和有相似地理环境的天山北坡各流域已显现出降水量增大、洪水发生频率增高、荒漠植被显著增加以及区域农业生产环境改善的暖湿化特征。  相似文献   

2.
黄河上游是黄河流域最重要的水源涵养地和产流区,对黄河流域的水资源安全、生态环境和粮食安全有决定性的意义。近年来在西北地区气候暖湿化的背景下,黄河上游气候生态水文等问题受到了各方的高度关注。本文利用卫星遥感数据、格点融合数据和水文监测数据,分析了黄河上游气候的多尺度变化特征及其对植被和径流量的影响。结果表明:1)1980-2018年黄河上游暖湿化趋势呈现全区域较一致的气候特征,温度增加率为0.023℃/a,降水增加率为1.09 mm/a,但同时又存在明显的区域差异性,湟水流域至甘肃中部降水增加最显著,宁蒙荒漠地带增温趋势最明显,2000年以来整个黄河上游降水明显增加。2000年后汇流区与流径区的蒸散发明显增加,但源头区南部波动减少。2)当前的暖湿化有利于黄河上游植被生长,1999年以来汇流区和源头区部分区域的植被增加率达到0.04/(10 a);从长期趋势看,源头区、汇流区植被指数与上年降水呈显著正相关关系,而流径区植被指数与当年降水相关性显著;降水对黄河上游流域植被具有明显的改善作用,而温度对其影响较复杂,各区域不同的植被类型是导致降水、温度、蒸散影响存在差异的可能原因。3)1980-2018年唐乃亥站和兰州站的年径流量均呈减少趋势,但1998年以来两站的年径流量明显增加,兰州站年径流量的增加率是唐乃亥站的近3倍。长期趋势表明,唐乃亥站年径流量与当年降水呈显著正相关关系,兰州站年径流量与当年降水、蒸散的相关系数均明显低于唐乃亥站;从年际波动看,降水是决定年径流量的最主要影响因子,而生态植被、冻土退化、水储量变化及社会活动等因素对径流量的影响也不容忽视。该研究为科学应对黄河上游生态保护及实现黄河流域高质量发展提供了参考依据。  相似文献   

3.
通过近30a的气候资料分析表明,库布齐沙漠气候有暖湿化的趋势,且其东部较为明显。近20a来,库布齐沙漠以油蒿(Artemisia ordosica)为主的稳定性沙生植被增加、半流动沙丘的面积显著减少;但放牧等人为干扰也使部分草场退化面积增加;库布齐沙漠的植被净初级生产力随年际间的气候波动而变化明显。气候暖湿化趋势虽然对库布齐沙漠东部生态恢复的贡献大于西部,也使得风沙防治工作相对减轻;但沙漠生态系统目前的状况可能还不足以应对未来气候变率增大带来的种种生态危害。基于此,就库布齐沙漠下一步的生态环境建设给出了一些建议。  相似文献   

4.
植被变化对中国区域气候的影响I:初步模拟结果   总被引:30,自引:5,他引:30  
利用区域气候模式(RegCM2)对中国植被变化的气候影响进行了模拟研究,结果表明江淮流域洪涝灾害增多及华北干旱的加剧可能是北方草原沙漠化与南方长绿阔叶林退化共同影响的结果,而且南方植被退化对其的影响似乎更严重.严重的植被退化会导致降水与植被退化之间的正反馈,易使退化区不断向外扩展且退化难以恢复.而程度较轻的植被退化,退化与降水减少之间是一种负反馈,当人为压力减弱后,退化较易恢复,但由于地表径流的增加,易导致洪涝灾害的发生.植被退化使气候变得更加恶劣,而北方草原植被增加使气候变得温和.但植树区外围的降水减少,易使新栽树林由外向内退化,说明目前的北方草原区气候似乎不支持在该地区出现大面积的森林.  相似文献   

5.
植被变化对中国区域气候的影响Ⅰ:初步模拟结果   总被引:12,自引:4,他引:12  
利用区域气候模式(RegCM2)对中国植被变化的气候影响进行了模拟研究,结果表明:江淮流域洪涝灾害增多及华北干旱的加剧可能是北方草原沙漠化与南方长绿阔叶林退化共同影响的结果,而且南方植被退化对其的影响似乎更严重。严重的植被退化会导致降水与植被退化之间的正反馈,易使退化区不断向外扩展且退化难以恢复。而程度较轻的植被退化,退化与降水减少之间是一种负反馈,当人为压力减弱后,退化较易恢复,但由于地表径流的增加,易导致洪涝灾害的发生。植被退化使气候变得更加恶劣,而北方草原植被增加使气候变得温和。但植树区外围的降水减少,易使新栽树林由外向内退化,说明目前的北方草原区气候似乎不支持在该地区出现大面积的森林。  相似文献   

6.
气候变化及人类活动对西北干旱区水资源影响研究综述   总被引:2,自引:0,他引:2  
本文回顾了西北干旱区气候变化事实及其对水资源影响的最新研究进展,从气候变化和人类活动两个角度综述了水资源变化的原因,以及未来西北干旱区水资源变化与适应对策。研究表明:1961年以来西北干旱区呈现明显暖湿化趋势,其中冬季增温最快,夏季降水增加速率最大。伊利河谷、塔城等地区增温趋势最大,北疆降水量增加最多。受气候变暖导致冰雪快速消融和山区降水增加的影响,西北干旱区西部河流黑河、疏勒河、塔里木河出山口径流量显著增加。由于东部河流石羊河径流的补给主要靠降水,降水的减少导致径流呈现下降趋势。不合理人类活动造成石羊河、黑河和开都河中下游径流减少。本文提出了西北干旱区亟待深入研究的任务:极端天气气候事件的变化规律及其对水资源影响;未来气候变化和水资源的预估;气候变化归因研究;气候变化-社会经济活动一体化适应策略选择;水资源科学合理定量分配等。  相似文献   

7.
中国北方农牧交错带气候变化特征及未来趋势   总被引:12,自引:0,他引:12  
利用1951—2006年中国台站日平均观测资料对北方农牧带过去56a气候变化特征进行了分析,指出该农牧带年降水量具有明显的年际和年代际变化特征,近10a来呈明显的下降趋势;年平均气温在20世纪90年代前期变化幅度较小,1987年之后持续偏暖,与全球及中国温度变化趋势一致;降水和温度变化具有明显的季节和区域差异。在气候特征分析基础上,利用全球海气耦合模式嵌套区域气候模式在SRES A2排放情景下对未来30a(2001-2030年)的气候变化进行了预估,对照30a模式气候场(1961—1990年),分析了未来30a北方农牧交错带降水和温度变化的可能趋势,结果表明,未来该区平均地面气温持续升高,升温幅度达0.3℃,温度日较差将明显减小;年降水量呈增加趋势,但增加幅度较小,且降水变化具有明显的季节和地域差异;未来黄河上游地区干旱的威胁仍十分严峻。  相似文献   

8.
黑河流域下游额济纳三角洲气候及生态环境变化分析   总被引:2,自引:0,他引:2  
气候是生态环境变化的重要驱动因子,分析其变化特征对生态环境监测具有重要意义。本文以生态环境急剧恶化的黑河流域下游额济纳三角洲为研究对象,利用1960~2012年额济纳气象站的气温、降水资料,采用Mann-Kendall检验、回归分析及累积距平曲线分析气候特征,结合重标极差(R/S)分析法预测未来趋势。结果表明:近53 a额济纳三角洲气温显著升高、降水无明显趋势;气温年代际增温幅度差异明显,1980年代、1990年代增幅最大;降水呈"少—多—少"波动变化,21世纪暖干化明显;暖冬现象显著。结合GIMMS-NDVI及东居延海面积、正义峡径流量,通过Pearson相关分析,结果表明:气候暖干化及黑河干流下泄量减少导致东居延海萎缩盐化、植被退化;2003年以后东居延海面积增加是2002年开始人为生态输水的结果,而非气候暖湿化的表现。  相似文献   

9.
利用耦合模式比较计划第5阶段(CMIP5)中5个全球气候模式3种典型浓度路径(RCPs)预估结果,基于植被净初级生产力模型,估算安徽省21世纪近期(2018—2030年)、中期(2031—2050年)和远期(2051—2099年)植被净初级生产力及其对气候变化的响应。结果表明:对不同模式在安徽省模拟能力的评估可知,气温以多模式集合模拟效果优于单个模式,MIROC-ESM-CHEM对降水的模拟能力较好。未来安徽省将持续变暖,北部变暖幅度高于南部,其中RCP8.5情景下变暖趋势更显著;全省降水量将增加,南部增加多于北部。随着气候趋于暖湿化,植被净初级生产力总体增加;与基准年相比,21世纪近期增加不明显,中后期显著增加,空间上南部增加总体高于北部。从气候变化响应来看,安徽省植被净初级生产力与降水量和平均气温均显著相关,并且对降水量的响应程度更高。  相似文献   

10.
气候变化对环青海湖地区天然牧草影响研究   总被引:2,自引:0,他引:2  
近47a来环青海湖地区的气候变化特征及其对环湖盆地草地生态环境的影响,分析表明:环青海湖地区年平均温度升高、年蒸发量减少比较显著,而降水量呈增加趋势,气候有向暖湿化过渡的趋势。随着气候变化,环湖盆地天然草地植被盖度,高度和产量变化明显。在全球气候变暖的背景下,环青海湖地区,随气温升高、降水增加牧草产量有所增加,  相似文献   

11.
利用动态植被模型CLM4-CNDV、区域气候模式RegCM4.6-CLM3.5和全球气候模式CAM4探究了当前气候状态下东亚区域可能的自然植被分布以及自然植被恢复对东亚区域气候产生的可能影响。结果表明,当前气候条件下,农作物区可能分布的自然植被为:蒙古高原以北、东北、华北平原和四川盆地的部分地区为裸土;东亚东南部及蒙古高原以北地区主要为林地;四川盆地及山东半岛主要为灌木;东北地区、东南沿海和长江中下游地区主要为草地。将农作物区恢复为自然植被后将对区域气候产生显著影响。其中,东亚东部大部分地区由于植被叶面积指数增加引起的蒸散发增强,使得夏季降水增加且温度降低显著;华北、四川盆地和广东中部平原地区植被叶面积指数减小,伴随区域内夏季降水显著减少且温度升高。而蒙古高原地区的气候变化不仅受区域内植被覆盖变化影响,还可能与印度地区和我国东南部植被变化引起的大气环流调整有关,使得蒙古高原西部冬季温度降低,而其东部夏季温度升高,同时夏季降水减少显著。研究所采用的试验方案是在相对理想的情况下进行的,但其结果为进一步区分不同地区植被覆盖变化的影响提供一定的参考。  相似文献   

12.
本研究建立基于MODIS的天山山区草地类型植被指数并分析其与气候因子的关系,研究发现:天山山区NDVI分布北部大,南部小;西部大,东部小。降水是影响天山山区NDVI的主要因子。天山山区在温度上升0.1℃,面雨量增加10%的情况下,NDVI增加2.5%。2000~2009年天山山区NDVI年平均值为0.35,温度呈上升趋势,降水呈减少趋势,对植被的生长不利,NDVI呈现出减小趋势,但减小不明显。天山山区NDVI最大值的年份,降水并不是最多的,说明植被的长势需要水分和热量匹配。1961~2009年天山山区的气候变化有利于草地NDVI的增加  相似文献   

13.
Grassland is one of the most widespread vegetation types worldwide and plays a significant role in regional climate and global carbon cycling. Understanding the sensitivity of Chinese grassland ecosystems to climate change and elevated atmospheric CO2 and the effect of these changes on the grassland ecosystems is a key issue in global carbon cycling. China encompasses vast grassland areas of 354 million ha of 17 major grassland types, according to a national grassland survey. In this study, a process-based terrestrial model the CENTURY model was used to simulate potential changes in net primary productivity (NPP) and soil organic carbon (SOC) of the Leymus chinensis meadow steppe (LCMS) under different scenarios of climatic change and elevated atmospheric CO2. The LCMS sensitivities, its potential responses to climate change, and the change in capacity of carbon stock and sequestration in the future are evaluated. The results showed that the LCMS NPP and SOC are sensitive to climatic change and elevated CO2. In the next 100 years, with doubled CO2 concentration, if temperature increases from 2.7-3.9˚C and precipitation increases by 10% NPP and SOC will increase by 7-21% and 5-6% respectively. However, if temperature increases by 7.5-7.8˚C and precipitation increases by only 10% NPP and SOC would decrease by 24% and 8% respectively. Therefore, changes in the NPP and SOC of the meadow steppe are attributed mainly to the amount of temperature and precipitation change and the atmospheric CO2 concentration in the future.  相似文献   

14.
Using a regional climate model MM5 nested to an atmospheric global climate model CCM3, a series of simulations and sensitivity experiments have been performed to investigate the relative LGM climate response to changes of land-sea distribution, vegetation, and large-scale circulation background over China.Model results show that compared with the present climate, the fluctuations of sea-land distribution in eastern Asia during the LGM result in the temperature decrease in winter and increase in summer. It has significant impact on the temperature and precipitation in the east coastal region of China. The impact on precipitation in the east coastal region of China is the most significant one, with 25%-50% decrease in the total precipitation change during the LGM. On the other hand, the changes in sea-land distribution have less influence on the climate of inland and western part of China. During the LGM, significant changes in vegetation result in temperature alternating with winter increase and summer decrease, but differences in the annual mean temperature are minor. During the LGM, the global climate, i.e., the large-scale circulation background has changed signi cantly. These changes have signi cant influences on temperature and precipitation over China. They result in considerable temperature decreases in this area, and direct the primary patterns and characteristics of temperature changes. Results display that, northeastern China has the greatest temperature decrease, and the temperature decrease in the Tibetan Plateau is larger than in the eastern part of China located at the same latitude. Moreover, the change of large-scale circulation background also controls the pattern of precipitation change. Results also show that, most of the changes in precipitation over western and northeastern parts of China are the consequences of changing large-scale circulation background, of which 50%-75% of precipitation changes over northern and eastern China are the results of changes in large-scale circulation background. Over China, the LGM climate responses to di erent mechanisms in order of strength from strong to weak are, the large-scale circulation pattern, sealand distribution, vegetation, CO2 concentration, and earth orbital parameters.  相似文献   

15.
2000年以来中国区域植被变化及其对气候变化的响应   总被引:1,自引:0,他引:1  
气候是植被变化的主要驱动因子,研究全球增暖背景下中国区域植被变化及其对气候的响应对于国家开展重大生态恢复评估和未来植被保护政策制定具有重要意义。利用2000-2016年MODIS植被指数(Normalized Difference Vegetation Index,NDVI)数据集,运用统计分析方法,从平均态、线性趋势、时间序列、相关性等方面系统分析了2000年以来中国区域植被变化及其对气候变化的响应。结果表明:中国区域NDVI在平均态上呈现从东南向西北递减的空间分布,受降水生长季的影响,东部地区植被指数明显较大;我国大部分地区NDVI呈现增加的趋势,其中湿润半湿润地区NDVI增长幅度为0.037·(10a)-1,而在干旱半干旱地区变化较小[0.013·(10a)-1]。NDVI的变化与气候驱动因素的相关性存在一定的区域差异,其中:NDVI与气温变化在东南沿海、东北东部以及青藏高原北部等地区呈现出显著正相关,而在青藏高原南部等地区呈现微弱的负相关;除青藏高原、塔里木盆地和东北北部等地区外,NDVI与降水量在全国大多数地区呈正相关。从全国平均来看,温度和降水变化对NDVI的贡献分别为7.5%和9.1%,其中温度对NDVI变化的贡献主要体现在湿润半湿润地区(9.3%),而降水的贡献则在干旱半干旱地区(12.2%)。植被变化对气候要素驱动的响应也呈现出明显的区域差异性,在我国东南沿海、云贵高原东部、四川盆地等南方地区以及黄河中下游、东北东部等部分地区,NDVI变化对气温的敏感性最强;而在中国北方干旱半干旱大部分地区,NDVI变化则是对降水驱动具有很显著的响应特征。总体而言,气温是驱动南方地区植被变化的主导因子,而降水则调控着北方地区植被生长变化。  相似文献   

16.
Using a regional climate model MM5 nested to an atmospheric global climate model CCM3, a series of simulations and sensitivity experiments have been performed to investigate the relative LGM climate response to changes of land-sea distribution, vegetation, and large-scale circulation background over China.Model results show that compared with the present climate, the fluctuations of sea-land distribution in eastern Asia during the LGM result in the temperature decrease in winter and increase in summer. It has significant impact on the temperature and precipitation in the east coastal region of China. The impact on precipitation in the east coastal region of China is the most significant one, with 25%-50% decrease in the total precipitation change during the LGM. On the other hand, the changes in sea-land distribution have less influence on the climate of inland and western part of China. During the LGM, significant changes in vegetation result in temperature alternating with winter increase and summer decrease, but differences in the annual mean temperature are minor. During the LGM, the global climate, i.e., the large-scale circulation background has changed significantly. These changes have significant influences on temperature and precipitation over China. They result in considerable temperature decreases in this area, and direct the primary patterns and characteristics of temperature changes. Results display that, northeastern China has the greatest temperature decrease, and the temperature decrease in the Tibetan Plateau is larger than in the eastern part of China located at the same latitude. Moreover, the change of large-scale circulation background also controls the pattern of precipitation change. Results also show that, most of the changes in precipitation over western and northeastern parts of China are the consequences of changing large-scale circulation background, of which 50%-75% of precipitation changes over northern and eastern China are the results of changes in large-scale circulation background. Over China, the LGM climate responses to different mechanisms in order of strength from strong to weak are, the large-scale circulation pattern, sea-land distribution, vegetation, CO2 concentration, and earth orbital parameters.  相似文献   

17.
The climatic warming and humidification observed in the arid region of Northwest China(ARNC) and their impacts on the ecological environment have become an issue of concern. The associated multi-scale characteristics and environmental responses are currently poorly understood. Using data from satellite remote sensing, field observations, and the Coupled Model Intercomparison Project phase 6, this paper systematically analyzes the process and scale characteristics of the climatic warming and humidification in the ARNC and their impacts on ecological vegetation. The results show that not only have temperature and precipitation increased significantly in the ARNC over the past 60 years, but the increasing trend of precipitation is also obviously intensifying. The dryness index, which comprehensively considers the effects of precipitation and temperature, has clearly decreased, and the trend in humidification has increased. Spatially, the trend of temperature increase has occurred over the entire region, while 93.4% of the region has experienced an increase in precipitation, suggesting a spatially consistent climatic warming and humidification throughout the ARNC. Long-term trends and interannual changes in temperature and precipitation dominate the changes in climatic warming and humidification. Compared to interannual variations in temperature, the trend change of temperature contributes more to the overall temperature change. However, the contribution of interannual variations in precipitation is greater than that of the precipitation trend to the overall precipitation change. The current climatic warming and humidification generally promote the growth of ecological vegetation. Since the 1980 s,82.4% of the regional vegetation has thrived. The vegetation index has a significant positive correlation with precipitation and temperature. However, it responds more significantly to interannual precipitation variation, although the vegetation response varies significantly under different types of land use. The warming and humidification of the climate in the ARNC are probably related to intensifications of the westerly wind circulation and ascending air motions.They are expected to continue in the future, although the strength of the changes will probably be insufficient to significantly change the basic climate pattern in the ARNC. The results of this study provide helpful information for decision making related to China's "Belt and Road" development strategies.  相似文献   

18.
1IntroductionDManyobservationsandstudiesindicatethatthesummerrainfallinNorthChinadecreasessignificantlyduringrecenttwentyyears.Theobviousreductiontendencycanbeseenfromthevariationofpercentageofsummerrainfallanomaly(June--August)intheplainofNorthChina...  相似文献   

19.
利用全球模式CCM3嵌套区域模式MM5的方法研究了末次盛冰期海陆分布、植被和大尺度环流背景场变化对末次盛冰期气候变化的作用。模式结果表明:与现代相比,末次盛冰期东亚地区海陆分布发生的变化造成这一地区冬季减温,夏季增温,这个变化对中国东部近海地区的温度和降水产生明显的影响,尤其是对降水的影响。它使得中国东部地区降水减少,由此造成的降水减少占末次盛冰期降水减少的25%—50%。海陆分布的变化对内陆和中国西部地区影响很小。末次盛冰期中国东部地区植被发生了明显的变化,温带和寒带植物南移,热带植物的覆盖范围减少。中国东部地区植被的巨大变化对温度产生了影响,使该地区冬季增温,夏季减温,年平均温度变化不大。末次盛冰期全球气候发生巨大的变化,即大尺度环流背景场变化。它使得中国地区的温度和降水产生显著变化,这个变化造成中国地区温度降低,并且决定了温度变化的主要分布和变化特征,东北地区是中国末次盛冰期降温最大的地区,青藏高原的降温超过同纬度的东部地区等。同时,大尺度背景场的变化还控制着降水的变化,末次盛冰期中国西部地区和东北地区降水的变化几乎完全是背景场变化引起的,其对华北和华东地区降水的影响大约为50%—75%。综合我们研究的影响末次盛冰期中国地区气候变化的因子,按影响程度由大到小排序为:大尺度环流背景场、海陆分布变化、植被变化、CO2浓度变化和地球轨道参数变化。  相似文献   

20.
陆面植被类型对华北地区夏季降水影响的数值模拟研究   总被引:14,自引:3,他引:11  
范广洲  吕世华 《高原气象》1999,18(4):649-658
为了检验陆面植被类型变化对华北地区夏季降水的影响,共做了5组数值试验,结果表明,在华北地区以草原或沙漠代替落叶林后,华北地区夏季降水略有减少,但降水总量变化不大,这主要是由于降水变化的区域分布不一致所致;在华北西北部以沙漠代替草原后,华北地区平均降水有所增加,这主要是由华北北部地区降水增加引起的。上述三个试验中,华北 中部以南地区的降水变化主要由积云对流降水变化引起,以北主要由大尺度降水变化引起。  相似文献   

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