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1.
利用19612015年陕西省70个气象观测站的逐日降水资料,采用线性倾向估计、趋势分析及Mann Kendall等方法,分析了陕西省不同等级降水量、降水日数及降水强度的气候变化特征。结果表明:无论是降水量、降水日数,还是降水强度,均呈现出南多北少的分布特征,且随着降水级别的逐级增加,地区分布差异逐渐增大;整体上降水量和降水日数呈现出减少趋势,其中降水日数的下降趋势均非常显著,全省年均降水日数的气候倾向率达到了-3.83天·10a-1,通过了0.01的显著性检验,降水强度的增加趋势通过了0.05的显著性检验,每10 a全省年均降水强度增加0.15 mm·d-1;陕西降水量及降水日数的减少主要体现在春秋两季小雨及中雨的减少上,小雨降水强度在夏、秋两季的气候倾向率分别为0.05和0.04 mm·d-1·10a-1,其上升趋势分别通过了0.01和0.1的显著性检验,这是年均降水强度上升的主要原因;陕西年均降水量及降水日数自1984年出现了突变性下降,而降水强度的突变则出现在2004年,之后一直呈现持续的上升趋势。  相似文献   

2.
2016年6月海南一次龙卷过程分析   总被引:1,自引:0,他引:1  
利用19612015年陕西省70个气象观测站的逐日降水资料,采用线性倾向估计、趋势分析及Mann Kendall等方法,分析了陕西省不同等级降水量、降水日数及降水强度的气候变化特征。结果表明:无论是降水量、降水日数,还是降水强度,均呈现出南多北少的分布特征,且随着降水级别的逐级增加,地区分布差异逐渐增大;整体上降水量和降水日数呈现出减少趋势,其中降水日数的下降趋势均非常显著,全省年均降水日数的气候倾向率达到了-3.83天·10a-1,通过了0.01的显著性检验,降水强度的增加趋势通过了0.05的显著性检验,每10 a全省年均降水强度增加0.15 mm·d-1;陕西降水量及降水日数的减少主要体现在春秋两季小雨及中雨的减少上,小雨降水强度在夏、秋两季的气候倾向率分别为0.05和0.04 mm·d-1·10a-1,其上升趋势分别通过了0.01和0.1的显著性检验,这是年均降水强度上升的主要原因;陕西年均降水量及降水日数自1984年出现了突变性下降,而降水强度的突变则出现在2004年,之后一直呈现持续的上升趋势。  相似文献   

3.
极端降水事件变化的观测研究   总被引:68,自引:4,他引:64  
回顾了气候变化背景下的极端降水事件变化观测研究的主要进展,结合全球变化的特点,重点讨论了中国极端降水事件的变化特征。指出:最近50多年,我国降水强度普遍趋于增加,降水日数除西北地区外其他大部分地区显著减少。极端降水与总降水量变化之间的关系很密切,西北西部、长江及长江以南地区极端强降水事件趋于频繁,华北地区虽然极端降水事件频数明显减少,但极端降水量占总降水量的比例仍有所增加。连阴雨产生的年降水量在华北、东北东部和西南东部地区明显减小,在青藏高原东部和一些东南沿海地区则增加。降水日数和微量降水日数减少是近年来我国干旱化趋势发展的一个重要特点。  相似文献   

4.
符娇兰  代刊 《气象》2016,42(12):1456-1464
CRA(contiguous rain area)空间检验技术是将连续雨区作为目标进行检验。通过设定降水量阈值,识别、分离及平移降水目标,将预报偏差分解为落区、强度和形态误差,该方法可避免传统TS评分的双惩罚效应。利用CRA空间检验技术对2011—2014年5—9月西南地区东部EC细网格模式36 h预报时效119个降水目标的预报误差进行分析,并按照环流形势和影响系统对强降水个例进行分型,分为西南地区东部低涡切变型、西南地区东部-江淮切变型、南风型,分别对上述三类不同类型强降水个例的落区和强度误差进行了对比。得到如下结论:西南地区东部降水预报形态误差占比最大,为60%左右,其次是落区误差,为30%左右,强度误差最小,约为10%;落区平均偏西0.7°,经向偏差不明显;模式对于水平尺度较小的降水目标漏报可能性较大,而对于天气尺度降水目标模式预报面积偏大,总降水量偏大,雨强偏小;西南地区东部低涡切变型和西南地区东部-江淮切变型降水强度预报误差类似,模式预报雨区面积均偏大,降水尺度越大,偏大的概率越大,实况平均降水强度越强,模式预报强度越偏弱;南风型预报强降水面积和平均强度均偏弱,出现漏报的概率较大;而对于最大降水量,三种类型模式预报的最强降水均较实况偏弱;西南地区东部低涡切变型模式预报落区偏西,江淮至西南地区东部切变型模式预报落区偏西偏北,南风型模式预报落区偏西偏南。  相似文献   

5.
利用浙江省62站1971-2018年逐日降水资料,从不同等级降水日数、强度等对不同等级降水变化趋势进行了分析。结果表明:浙江省不同等级降水日数主要存现由北向南递增的分布;浙江总降水日数先减少,2009年后有所增加,而降水强度为显著的增加,而小雨日数以减少趋势为主,暴雨日数1986年之后呈显著增加趋势,不同等级降水强度均呈现增加趋势;其中对年降水量贡献最大的是中雨,但小雨和中雨的占比均明显减少,暴雨占比增加较快。  相似文献   

6.
1960~2008年江西省极端降水变化趋势   总被引:8,自引:0,他引:8  
利用江西省17个国家级台站1960~2008年逐日降水量资料,对日降水量超过绝对阈值(25mm和50mm)和百分位数阈值(95%和99%)的极端降水变化情况进行了分析。结果表明,江西省近50年极端降水频率和强度均呈波动上升趋势,大雨和强降水频率的增加最为迅速,暴雨和极端强降水事件强度增加最大;夏季各种极端降水事件频率均有明显升高;冬季大雨和强降水事件频率也有显著增加;春季和秋季极端降水强度有明显增加,特别是暴雨和极端强降水事件强度增加迅速;夏季暴雨和极端强降水强度有所降低或略有增加;江西省极端降水的频率和强度变化趋势较为一致,特别是1990年代;极端降水的增加以发生频数的增加为主,降水强度的增加并不显著;近50年江西省大部分地区的极端降水事件频率和强度均有增加,但高值区的分布有较大的差异。极端强降水事件强度在鄱阳湖平原附近减小,而在周边的大部分地区呈增长趋势。进一步的分析发现,极端降水强度的变化与地形有显著的正相关关系。  相似文献   

7.
近五十年我国西北地区降水强度变化特征   总被引:24,自引:0,他引:24  
陈冬冬  戴永久 《大气科学》2009,33(5):923-935
鉴于近五十年来我国西北东部降水减少、西部降水增多的现象, 本文根据中国气象局信息中心提供的西北及内蒙古自治区日降水资料集, 利用筛选后的西北186个测站1958~2005年的数据, 对四季西北东、西部不同强度降水的降水量、降水日数、降水强度变化进行了分析。结果表明: 近五十年来, 中国西北地区降水以强降水为主, 较强以上强度降水占总降水日数的5%, 但其降水量占总降水量75%; 西北东部不同强度的降水都减少, 而西部只有弱降水减少, 其他强度的降水都增加, 且西北西部中等以上强度的降水增加较显著; 弱降水的总量减少, 弱降水的强度却加大, 强降水强度增强, 而极强降水强度却减弱; 降水的日数变化是降水量变化的主要原因。  相似文献   

8.
利用中国东部160个气象观测站1951年-2012年夏季(6-8月)的月平均降水资料,运用EOF分析方法,分析中国东部夏季降水的时空分布特征及其与西太平洋副热带高压的关系。结果表明:(1)夏季,中国东部降水大值区域从华南移到江淮流域,然后到达华北和东北地区。(2) 中国东部夏季降水EOF第一模态空间分布为长江以北与黄河以南地区之间存在一个降水大值雨带, EOF第二模态显示出整个东部沿海地区的降水量以长江为界,长江以南降水偏少,长江以北降水偏多,且江南与江北的降水呈反位相。(3)在西太平洋副热带高压较强的年份,江淮流域降水偏少,华北地区降水偏多;西太平洋副热带高压较弱的年份,江淮流域降水偏多,华南地区降水偏少。  相似文献   

9.
周成  杨学斌  吕伟绮  王宁 《山东气象》2019,39(2):143-150
选取2006—2013年山东8次典型短时强降水(降水强度>20 mm·h-1)个例,并根据降水的天气尺度影响系统分为4种类型,利用山东区域ADTD型闪电定位仪资料,统计各类短时强降水与地闪相关性;结合地闪频数、密度分析地闪与短时强降水的雨强、出现时间、空间分布等特征的相关性。结果表明:1)各类强降水与不同范围地闪的相关性不同,与固定范围内地闪的时间、空间分布特征不同;其中负地闪占绝大多数,正闪比例小,负闪占比越大降水越强;站点周边30 km范围内地闪频数与降水相关性较好,低槽冷锋型强降水与地闪频数相关性最好,其次是低涡切变线型,黄淮气旋型短时强降水与地闪频数相关性差,热带气旋型强降水则与正闪相关性更好。2)地闪频数只对单次过程降水量变化有所指示,不能直接用来判别短时强降水,而地闪频数峰值对于短时强降水预报有一定指示意义;其中后倾型低槽冷锋、西北涡、西南涡型短时强降水地闪频数峰值对于预报短时强降水指示意义较强,冷切变和暖切变型指示意义较小,前倾型低槽冷锋、黄淮气旋、热带气旋型无明显指示意义。3)高地闪密度与短时强降水落区对应较好,但短时强降水并不一定会出现在高地闪密度中心区域;大部分短时强降水极值站高地闪密度中心对应;对于后倾型低槽冷锋、暖切变、西南涡型短时强降水,5次·(10 km)-2·h-1可作为预报参考阈值。  相似文献   

10.
利用中国东部160个气象观测站1951—2012年夏季(6—8月)的月平均降水资料,采用EOF分析方法,分析中国东部夏季降水的时空分布特征及其与西太平洋副热带高压的关系。结果表明:中国东部夏季降水大值区具有从华南—江淮流域—华北—东北的分布特征。EOF第1模态空间分布为长江以北与黄河以南之间存在一个降水大值雨带,而EOF第2模态显示出以长江为界,长江以南降水量偏少,长江以北降水量偏多,且呈反位相。在西太平洋副热带高压强度较强的年份,江淮流域降水量偏少,华北地区降水量偏多;西太平洋副热带高压强度较弱的年份,江淮流域降水量偏多,华南地区降水量偏少。  相似文献   

11.
基于MIROC/WRF嵌套模式的中国气候降尺度模拟   总被引:2,自引:1,他引:1  
开展了基于嵌套的全球模式MIROC和区域气候模式WRF的动力降尺度模拟试验,检验该模式对中国气候的模拟性能,得到以下结论:全球气候模式MIROC和WRF都能较好地模拟出中国年平均地表气温(下文简称气温)分布。WRF模式对气温场的描述更为细致,模拟出了四川盆地高温和中国最北方区域的低温。两个模式总体上对南方降水模拟好于北方地区,东部地区好于西部地区。MIROC模式模拟的年平均和各季节降水与观测的 空间相关系数在0.79~0.83之间,表明它对降水的模拟较好。WRF模式模拟的降水空间分布好于MIROC模式。MIROC模式在青藏高原东南侧存在虚假降水中心,WRF能有效改进该地区降水的模拟。两个模式对年平均气温和降水年际变率的模拟能力均较差,WRF模式相对MIROC模式有一定改进。  相似文献   

12.
徐璇  陆日宇  石英 《大气科学》2011,35(6):1177-1186
本文利用全球海气耦合模式(MIRO3.2_hires)和区域气候模式(RegCM3)的模拟结果,分析了东亚地区夏季降水和大气环流的季节演变特征,并与NCEP/DOE再分析资料和降水观测资料进行了对比分析.结果表明,全球和区域气候模式都能反映出中国东部地区夏季平均环流场和降水场气候态分布的基本特征,但全球模式模拟的雨带范...  相似文献   

13.
The Weather Research and Forecasting (WRF) model is used in a regional climate model configuration to simulate past precipitation climate of China during the rainy season (May-September) of 1981-2000, and to investigate potential future (2041-2060 and 2081-2100) changes in precipitation over China relative to the reference period 1981-2000. WRF is run with initial conditions from a coupled general circulation model, i.e., the high-resolution version of MIROC (Model for Interdisciplinary Research on Climate). WRF reproduces the observed distribution of rainy season precipitation in 1981-2000 and its interannual variations better than MIROC. MIROC projects increases in rainy season precipitation over most parts of China and decreases of more than 25 mm over parts of Taiwan and central Tibet by the mid-21st century. WRF projects decreases in rainfall over southern Tibetan Plateau, Southwest China, and northwestern part of Northeast China, and increases in rainfall by more than 100 mm along the southeastern margin of the Tibetan Plateau and over the lower reaches of the Yangtze River during 2041-2060. MIROC projects further increases in rainfall over most of China by the end of the 21st century, although simulated rainfall decreases by more than 25 mm over parts of Taiwan, Guangxi, Guizhou, and central Tibet. WRF projects increased rainfall of more than 100 mm along the southeastern margin of the Tibetan Plateau and over the lower reaches of the Yangtze River and decreased rainfall over Southwest China, and southern Tibetan Plateau by the end of the 21st century.  相似文献   

14.
IPCC global coupled model simulations of the South America monsoon system   总被引:1,自引:1,他引:0  
This study examines the variability of the South America monsoon system (SAMS) over tropical South America (SA). The onset, end, and total rainfall during the summer monsoon are investigated using precipitation pentad estimates from the global precipitation climatology project (GPCP) 1979–2006. Likewise, the variability of SAMS characteristics is examined in ten Intergovernmental Panel on Climate Change (IPCC) global coupled climate models in the twentieth century (1981–2000) and in a future scenario of global change (A1B) (2081–2100). It is shown that most IPCC models misrepresent the inter-tropical convergence zone and therefore do not capture the actual annual cycle of precipitation over the Amazon and northwest SA. Most models can correctly represent the spatiotemporal variability of the annual cycle of precipitation in central and eastern Brazil such as the correct phase of dry and wet seasons, onset dates, duration of rainy season and total accumulated precipitation during the summer monsoon for the twentieth century runs. Nevertheless, poor representation of the total monsoonal precipitation over the Amazon and northeast Brazil is observed in a large majority of the models. Overall, MIROC3.2-hires, MIROC3.2-medres and MRI-CGCM3.2.3 show the most realistic representation of SAMS’s characteristics such as onset, duration, total monsoonal precipitation, and its interannual variability. On the other hand, ECHAM5, GFDL-CM2.0 and GFDL-CM2.1 have the least realistic representation of the same characteristics. For the A1B scenario the most coherent feature observed in the IPCC models is a reduction in precipitation over central-eastern Brazil during the summer monsoon, comparatively with the present climate. The IPCC models do not indicate statistically significant changes in SAMS onset and demise dates for the same scenario.  相似文献   

15.
The linkage between the Asian-Pacific oscillation(APO)and the precipitation over central eastern China in spring is preliminarily addressed by use of the observed data.Results show that they correlate very well,with the positive(negative)phase of APO tending to increase(decrease)the precipitation over central eastern China.Such a relationship can be explained by the atmospheric circulation changes over Asia and the North Pacific in association with the anomalous APO.A positive phase of APO,characterized by a positive anomaly over Asia and a negative anomaly over the North Pacific in the upper-tropospheric temperature,corresponds to decreased low-level geopotential height(H)and increased high-level H over Asia,and these effects are concurrent with increased low-level H and decreased high-level H over the North Pacific.Meanwhile,an anticyclonic circulation anomaly in the upper troposphere and a cyclonic circulation anomaly in the lower troposphere are introduced in East Asia,and the low-level southerly wind is strengthened over central eastern China.These changes provide advantageous conditions for enhanced precipitation over central eastern China.The situation is reversed in the negative phase of APO,leading to reduced precipitation in this region.  相似文献   

16.
In order to investigate changes in the East Asian summer monsoon (EASM) under the global warming, the MIROC3.2 (hires) coupled general circulation model (CGCM) developed by the Center for Climate System Research is utilized. The outputs of MIROC3.2 (hires) model have been analyzed using two scenarios; the 20th Century Climate in Coupled Models (20C3M) scenario and the Special Reports for Emissions Scenarios A1B (SRES A1B). Eight Intergovernmental Panel on Climate Change (IPCC) models are also analyzed to compare model performances. It is shown that the simulation skill of MIROC3.2 (hires) for the EASM is relatively superior to these IPCC CGCMs. It has been found that the intensified rain band and the extended duration of the EASM are anticipated with MIROC3.2 (hires) under the global warming in well accordance with previous studies. Especially, the precipitation due to the cumulus convection is predicted to increase more significantly than the precipitation by the large-scale condensation. Due to the increased land-sea thermal contrast in summer under the global warming, water vapor fluxes in the lower troposphere are enhanced. Consequently, the convective instability may be strengthened and thus it leads to the increase of precipitation by cumulus convection. Moreover, the upper tropospheric circulations associated with the EU pattern would lead to the larger interannual variability of precipitation over the EASM region in the future warm climate. In addition, it is found that the relationship between the sea surface temperature over the tropical Pacific Ocean in the wintertime and the summer rainfall over the East Asia may be weakened, suggesting that the predictability of the EASM might become more difficult under the global warming.  相似文献   

17.
利用空间均匀网格对中国夏季降水异常区域特性的初步分析   总被引:24,自引:1,他引:24  
王晓春  吴国雄 《气象学报》1996,54(3):324-332
用方差极大正交转动EOF(Varimax EOF)及点相关图法分析了夏季总降水(6、7、8月降水之和)及逐月降水的区域特性。使用的资料为全国范围47个5°×5°经纬度网格上的降水资料,分析时段为1959—1994年。分析结果表明,由于采用了空间均匀的格同资料,本分析除进一步证实了中国东部地区降水异常的区域特性外,也揭示了西部地区降水异常的区域特性及沿长江流域东西方向上降水异常的相互关系。夏季总降水异常最显著的区域特性是江淮流域与河套及华南反相关。另外沿长江流域,四川盆地的降水异常与青藏高原东部及江淮流域的降水异常也存在着反相关联系。西部地区的区域特性为青藏高原中东部南北两侧为负相关,并且青藏高原中东部南侧的降水异常与华北东部及东北南部为正相关。上述的空间模都有准2—3a及10a左右的周期。逐月降水的分析表明,6月份,江淮流域、华北东部及东北大部分地区为正相关。7月,河套地区与江淮流域的降水异常呈现一定的负相关联系,8月份降水异常的区域特性与夏季总降水异常的区域特性极其一致。  相似文献   

18.
关于我国北方干旱化及其转折性变化   总被引:6,自引:0,他引:6  
过去半个世纪,中国经历了北方的"西湿东干"和东部的"南涝北旱"的降水分布格局。近十几年来,这种降水长期变化的分布格局是维持还是发生了变化?针对这个问题,本文基于年降水观测数据、自矫正的帕尔默干旱指数scPDSI、地表湿润指数SWI及GRACE(Gravity Recovery and Climate Experiment)卫星数据反演的陆地水储量(TWS)对中国区域干旱化问题进行了再分析。结果表明,近16年(2001~2016年),中国东部地区(100°E以东)"南涝北旱"的格局正在发生显著的变化,长江上中游及江淮流域已转为显著的干旱化趋势,而华北地区的降水已转为增加趋势,东部"南旱北涝"的格局基本形成;北方过去的"西湿东干"也转变为"西干东湿"的空间分布特征。显然,中国区域的降水格局在2001年后发生了明显的年代尺度转折性变化,两种常用干旱指数scPDSI和SWI的分析也证明了这一点。但GRACE的陆地水储量(TWS)的分析却显示,最近16年来,中国东部"南涝北旱"的格局仍未发生变化,北方大部分地区仍然处于干旱化的时段,且有加剧的趋势,其原因有待于进一步研究。  相似文献   

19.
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   

20.
Regional Atmospheric Modeling System (RAMS) was applied to the study of the effect of the topographical altitude of the Tibetan Plateau (TP) on a severe drought event which took place in eastern China from November 2008 to January 2009. Two simulations of this drought event were conducted: a control simulation (CNTRL run) using original model settings and a sensitive simulation (TOPO run), where no change other than to reduce the TP topography by 50 %. The results show that the CNTRL simulation validates RAMS by reproducing this drought event fairly accurately. However, as part of the TOPO simulation, the total heat flux showed a decrease over most parts of the TP, latent heat flux underwent a significant increase over the southeastern TP, contrary to sensible heat, and a universal decrease over eastern China; this led to an increase in precipitation over the southeastern TP and a decrease in precipitation over eastern China. The decrease of total heat flux over the TP is collocated with an anomalous anticyclonic circulation from the TP to the coasts of southeastern China. Changes in atmospheric circulation and low-level water vapor transport pathways were consistent with changes in precipitation. In general, reducing the topographical altitude of the TP worsens drought in eastern China and moreover causes a significant decrease in precipitation over southern China.  相似文献   

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