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1.
利用CloudSat卫星资料分析云微物理和光学性质的分布特征   总被引:3,自引:0,他引:3  
利用2007年1月2010年12月高垂直分辨率CloudSat卫星的2B数据产品,对云微物理特征量(包括云中液态水/冰水含量、液态水/冰水路径、云滴有效半径等)以及云光学参数(云光学厚度等)的全球分布和季节变化进行了统计分析,并研究了云微物理性质对光学性质的影响。结果表明,冰水路径分布在北美南部、南美大陆、非洲大陆、澳大利亚和南亚的陆地上空,以及太平洋、大西洋和印度洋的洋面上空,高值区最大值达600 g·m-2以上;垂直方向上,高值区位于赤道地区8 km附近以及中纬度地区4~8 km高度上。液态水路径在300 g·m-2以上的高值区主要位于太平洋、印度洋和大西洋的中低纬度海域上空,垂直上液态水含量随高度递减。冰云有效半径在高纬度地区近地面层达200μm以上,在赤道附近4~8 km上有1个高值区,南北半球中纬度地区2~4 km上有2个高值区,最大值均达到80μm以上。在1 km以下的边界层水云有效半径值较大,达到12μm以上。总云光学厚度在全球大部分地区40,高值区普遍位于中高纬度的广阔地区和低纬度靠近大陆的洋面上空;垂直方向上,云光学厚度的高值集中在2 km以下的边界层。云光学厚度的分布受云量、云水含量和云滴有效半径的影响,云量大的地区基本为云光学厚度的大值区。  相似文献   

2.
2017年北京北部一次罕见强弓状飑线过程演变和机理   总被引:2,自引:0,他引:2  
罗琪  郑永光  陈敏 《气象学报》2019,77(3):371-386
2017年7月7日下午至午夜,河北西北部和北京中北部发生了一次罕见的最大瞬时风力将近12级并伴有大冰雹的强弓状飑线过程,其触发、演变和维持机制等具有较高研究价值。综合多种观测资料和NCEP分析资料,利用“配料法”分析了该次飑线过程的环境条件、触发、演变、风暴结构和弓形回波的形成与维持机制。飑线发生在500 hPa冷涡西南部的前倾槽和低空急流形势下;超过2000 J/kg的对流有效位能(CAPE)、强0—6 km和0—3 km风垂直切变为弓状飑线及其相关超级单体的生成和维持、大冰雹和地面强风的形成提供了有利条件;较低的湿球温度0℃层(~3.8 km)是有利于大冰雹形成的融化层高度;对流层中层高达30℃温度露点差与大的垂直减温率造成环境大气具有强的下沉对流有效位能(DCAPE),利于弓形回波和地面大风的形成。初始对流形成于西北风和西南偏西风之间的地面辐合线附近。地面大风和冰雹主要分布于低黑体亮温(TBB)和以正闪为主的闪电活跃处。雷达回波显示飑线先由线状对流系统发展成为团状超级单体对流系统,最后演变成弓状飑线。超级单体阶段和飑线阶段都有明显的回波悬垂、弱回波区、中气旋(飑线成熟后期为中涡旋)、强后侧入流及其伴随的入流缺口等;对流层中层急流和大的温度露点差是形成强下沉气流并发展出弓状特征的主要原因;大的对流有效位能和下沉对流有效位能以及强风垂直切变是飑线维持的原因。   相似文献   

3.
利用RPG HATPRO-G4微波辐射计和自动气象站观测资料,研究盛夏时节成都地区短时强降雨的水汽密度(VD)、相对湿度(RH)、整层水汽含量(IWV)演变特征,并探讨微波辐射计资料在短时强降雨中的应用。结果表明:盛夏时节成都地区无论是发生阵雨还是短时强降雨时,大气中水汽条件均较好,地面VD达19±3g·m-3,IWV在53kg·m-2以上,1~3km高度RH≥90%。降雨开始前1h地面VD与2倍的500hPa高度VD之和是否达到26.3g·m-3,可作为短时强降雨发生与否的指标,识别率达75%。短时强降雨发生前3h,持续的水汽辐合使3km高度处出现98%≤RH≤100%的湿层,该湿层随着降雨的临近而增厚,向下伸展至边界层。降雨刚发生时,4km以上相对湿度骤降,4km以下湿度略增加。降雨结束后,整层水汽含量会降低至与降雨发生前相近的值。   相似文献   

4.
利用1981—2013年中国160站逐月降水资料、NCEP/NCAR逐月再分析资料及NOAA海表温度资料,研究了华南前汛期降水年代际异常的时空特征及其可能成因。结果表明:1)华南前汛期降水在1992前后发生由异常偏少转为偏多的显著年代际转折,最显著异常中心位于广西东北部和广东北部。2)1990年代初发生的对流层高层南冷北暖(40°N附近为界)、对流层下暖上冷的年代际转折,使得高低层环流场均出现了有利于北方干、湿冷空气和孟加拉湾、西太平洋暖湿水汽在华南区域交汇并辐合上升的形势,造成华南前汛期降水发生偏少转偏多的显著年代际转折。年代际转折的前后两个时段中,位于热带的孟加拉湾槽、东亚沿岸EAP遥相关型波列中的西太平洋副高、阿拉斯加湾附近的脊,以及中纬度贝加尔湖以西以南脊的强度或位置均具有显著差异,故这些环流系统的年代际异常是华南前汛期降水年代际异常的重要原因。3)南太平洋关键区海温在1990年代初开始呈现增暖趋势,在偏暖(偏冷)时期,华南低空受异常气旋(异常反气旋)环流控制,对流层上层西风急流偏弱偏南(偏强偏北),造成华南地区降水异常偏多(偏少)。  相似文献   

5.
对云中微物理过程的研究是研究云降水形成过程和人工影响降水的重要基础,目前对积层混合云的对流区/对流泡中的微物理结构了解甚少。本文利用河北省“十三五”气象重点工程——云水资源开发利用工程的示范项目(2017~2019年)“太行山东麓人工增雨防雹作业技术试验”飞机和地面雷达观测数据,重点分析研究了2017年5月22日一次典型稳定性积层混合云对流泡和融化层的结构特征。研究结果表明,此次积层混合云高层存在高浓度大冰粒子,冰粒子下落过程中的增长在不同区域存在明显差异,在含有高过冷水含量的对流泡中,冰粒子增长主要是聚并和凇附增长,而在过冷水含量较低的云区以聚并增长为主。由于聚并增长形成的大冰粒子密度低,下落速度小,穿过0℃层时间更长,出现大量半融化的冰粒子,使融化现象更为明显。镶嵌在层状云中的对流泡一般处于0℃~-10℃(高度4~6 km)层之间,垂直和水平尺度约2 km,最大上升气流速度可达5 m s-1。对流泡内平均液态水含量是周围云区的2倍左右,小云粒子平均浓度比周围云区高一个量级,大粒子(直径800 μm以上)的浓度也更高。在具有较高过冷水含量的对流泡中降水形成符合“播撒—供给”机制,但在过冷水含量较低的区域并不符合这一机制。  相似文献   

6.
2007年3月3—5日辽宁省暴雪和大风天气的中尺度分析   总被引:3,自引:2,他引:1  
使用中尺度数值模式WRFV2.2.1对辽宁省2007年3月3-5日的暴雪和大风天气过程进行了数值模拟,结合10min一次的地面自动观测站资料和数字化多普勒天气雷达探测资料,研究了中尺度重力波的结构及其环境场特征,探讨了波动的激发机制.对流层上层中尺度重力波生成在350-250 hPa(约9-11 km),周期为2-3h,水平波长30-40 km,波动沿水平方向传播约9h.地面气压扰动振幅约为2 hPa,周期为2-3 h,波动由西南向东北方向传播,方向与地面风向相反.沿波的传播方向,地面观测的逐时降水量呈波动特征,周期约为2h.对流层上层中尺度重力波减弱后,雷达降水回波强度出现显著的波动特征.对流层上层中尺度重力波生成在朝向脊区传播的高空急流出口区下方,300 hPa环境场具有显著的切变不稳定特征.波动生成在理查逊数小于0.25的地区,在中尺度重力波生成的高度上,暖平流强,风速低,风切变大.中尺度重力波生成地区出现显著的不平衡气流,拉格朗日罗斯贝数大于0.7,水平散度倾向出现明显的大值,其中-▽w·(e)v/(e)v的量级明显大于其他各项,表明对流层上层重力波的生成及发展与环境场的显著风切变有关.  相似文献   

7.
长江三角洲地区对流层臭氧的变化趋势   总被引:6,自引:0,他引:6       下载免费PDF全文
根据TOR卫星数据分析,我国长江三角洲地区对流层O3柱含量的长期变化就全年和大多数月份而言均为增长趋势,1978-2000年间其年均值的增长趋势为0.82 DU/10 a。这种长期变化趋势所引起的气候效应及其对大气氧化性的影响值得进一步研究。结果表明,长江三角洲地区对流层O3柱含量的季节变化与该地区的临安区域大气本底站的地面O3季节变化有着显著的相关关系,临安站的观测数据具有区域代表性。  相似文献   

8.
天津“6.25”大冰雹过程的中尺度特征及成因   总被引:4,自引:0,他引:4       下载免费PDF全文
利用地面加密自动站、天津塘沽多普勒雷达、FY-2C静止卫星以及NCEP/NCAR再分析资料,对2008年6月25日下午天津地区一次罕见大冰雹过程风暴系统发展演变、结构特征和形成原因进行了观测分析和诊断研究。结果表明:此次大冰雹过程是在华北冷涡背景下,前倾结构的高空槽使高层干冷空气叠加在低层暖湿空气上,导致不稳定层结发展。中尺度对流系统由3个β-中尺度对流云团先后2次合并而成的α-中尺度对流系统,呈近似圆形结构。风雹发生前,天津地区大气层结呈现出强的对流性不稳定;700 hPa与近地面之间的风速差达到20 m/s,0~3 km垂直风切变明显增大;当上述有利的热力和动力条件形成后,在地面辐合线和干冷空气侵入的触发机制下,就造成了本次大冰雹过程。同时,由多单体合并而成的超级单体风暴,在其发展成熟阶段,多普勒雷达图上呈现出弓型回波、低层弱回波区和中高层悬垂回波区及三体散射结构;塘沽地区降雹前,垂直液态水含量出现一次明显的跃增。  相似文献   

9.
一例长生命史雷暴云分裂过程的回波特征   总被引:9,自引:8,他引:1  
在对平凉冰雹云演变规律研究中,发现一例长生命史强雷暴云分裂成两个不同移动方向的单体雹云。结合探空资料和环境风场,分析了此个例强雷暴云分裂过程的回波特征。结果表明,在强风切变环境中,u与v分量呈反相关,且随高度增强,低层1~3km为弱气旋旋转,中层3~8km为强反气旋旋转,上层8km以上是强气旋旋转。这对右移雷暴云发展中有优势引导作用,导致强雷暴云上层偏向分离发展,分裂发生在强雹暴云有强下沉气流阶段。分裂后,左、右移单体各自维持发展,并产生降雹。整个雷暴发展演变过程维持长生命期,回波特征有四个不同阶段。  相似文献   

10.
近地面O3变化化学反应机理的数值研究   总被引:34,自引:1,他引:33  
杨昕  李兴生 《大气科学》1999,23(4):427-438
利用中尺度气象模式(MM5)及区域化学模式(RADM)对中国地区近地面O3变化化学反应机理进行了数值模拟研究。主要研究了近地面O3变化与其主要前体物NMHC(非甲烷烃)、NOx、CO等之间复杂相互作用关系。主要结论为:(1) 污染地区近地面O3变化主要受光化学作用控制;而清洁地区地面O3变化主要受大气背景O3浓度影响。(2)NMHC和NOx的变化对HO2和OH自由基的影响是十分复杂的,O3的反馈作用对自由基的影响是不可忽视的。(3)在高NOx污染地区的地面上空可能出现高O3污染。(4)在O3光化学反应机理中同样存在线性相关关系。  相似文献   

11.
Using radiosonde and satellite observations, we investigated the trends of air temperature changes over the Tibetan Plateau (TP) in comparison with those over other regions in the same latitudes from 1979 to 2002. It is shown that Over the TP, the trends of air temperature changes in the upper troposphere to lower stratosphere were out of phase with those in the lower to middle troposphere. Air temperature decreased and a decreasing trend appeared in the upper troposphere to lower stratosphere. The amplitude of the annual or seasonal mean temperature decreases over the TP was larger than that over the whole globe. In the lower to middle troposphere over the TP, temperature increased, and the increasing trend was stronger than that over the non-plateau regions in the same latitudes in the eastern part of China. Meanwhile, an analysis of the satellite observed ozone data in the same period of 1979-2002 shows that over the TP, the total ozone amount declined in all seasons, and the ozone depleted the most compared with the situations in other regions in the same latitudes. It is proposed that the difference between the ozone depletion over the TP and that over other regions in the same latitudes may lead to the difference in air temperature changes. Because of the aggravated depletion of ozone over the TP, less (more) ultraviolet radiation was absorbed in the upper troposphere to lower stratosphere (lower to middle troposphere) over the TP, which favored a stronger cooling in the upper troposphere to lower stratosphere, and an intenser heating in the lower to middle troposphere over the TP. Therefore, the comparatively more depletion of ozone over the TP is possibly a reason for the difference between the air temperature changes over the TP and those over other regions in the same latitudes.  相似文献   

12.
张人禾  周顺武 《气象学报》2008,66(6):916-925
利用台站探空观测资料和卫星观测资料,分析了1979—2002年青藏高原上空温度的变化趋势。结果表明:高原地区上空平流层低层和对流层上层的温度与对流层中低层具有反相变化趋势。平流层低层和对流层上层降温,温度出现降低趋势,降温幅度无论是年平均还是季节平均都比全球平均降温幅度更大。高原上空对流层中低层增温,温度显示出增加的趋势,并且比同纬度中国东部非高原地区有更强的增温趋势。对1979—2002年卫星臭氧资料的分析表明,青藏高原上空臭氧总量在每个季节都呈现出明显的下降趋势,并且比同纬度带其他地区下降得更快。由于青藏高原上空臭氧有更大幅度的减少,造成高原平流层对太阳紫外辐射吸收比其他地区更少,使进入对流层的辐射更多,从而导致高原上空平流层低层和对流层上层降温比其他地区更强,而对流层中低层增温更大。因此,高原上空比其他地区更大幅度的臭氧总量减少可能是造成青藏高原上空与同纬度其他地区温度变化趋势差异的一个重要原因。  相似文献   

13.
By using the 2-D stratospheric-tropospheric dynamic-radiative-chemical coupled model,somesensitivity experiments have been done,which are interactions among ozone,radiation andtemperature,vapor effects,as well as effects of source and sink.The result of temperatureexperiment shows that feedback interaction among ozone,radiation and temperature,mainlyoccurs in the upper and middle stratosphere,the maximum of ozone concentration decrease is 1ppm,the maximum of temperature change is 6 K,and the maximum of total ozone change is 20DU.From the experiment of water vapor,we can see that the area of the middle and high latitudesof the Northern Hemisphere is sensitive to vapor change.When the maximum difference betweenboth surface sources is in the Antarctic,the maximum of ozone change is also there.Because thecharacter of surface varies with latitude,dry deposition is different in different latitudes.Thechange of dry deposition makes ozone in boundary layer quite obvious,especially in both poles.The maximum change of total volume ozone in experiments of vapor,source and sink is more than12 DU.  相似文献   

14.
By using the 2-D stratospheric-tropospheric dynamic-radiative-chemical coupled model,some sensitivity experiments have been done,which are interactions among ozone,radiation and temperature,vapor effects,as well as effects of source and sink.The result of temperature experiment shows that feedback interaction among ozone,radiation and temperature,mainly occurs in the upper and middle stratosphere,the maximum of ozone concentration decrease is 1ppm,the maximum of temperature change is 6 K,and the maximum of total ozone change is 20 DU.From the experiment of water vapor,we can see that the area of the middle and high latitudes of the Northern Hemisphere is sensitive to vapor change.When the maximum difference between both surface sources is in the Antarctic,the maximum of ozone change is also there.Because the character of surface varies with latitude,dry deposition is different in different latitudes.The change of dry deposition makes ozone in boundary layer quite obvious,especially in both poles.The maximum change of total volume ozone in experiments of vapor,source and sink is more than 12 DU.  相似文献   

15.
The role of atmospheric ozone to protect the living organisms and vegetation from the harmful effects of ultraviolet irradiation is well known. Depletion of the ozone layer is a great threat to the human society. In this paper we have discussed the lethal effects of ozone depletion and have presented the ozone and UV-B scenarios from 1979 to 2005 at different Indian latitudes using satellite data. The erythemal UV irradiance data obtained from Nimbus-7 and Earth probe total ozone mapping spectrometer (TOMS) and the tropospheric and stratospheric ozone data obtained from the convective cloud differential (CCD) method have been used to study the variability of erythemal UV irradiance and the stratospheric and tropospheric column ozone, respectively, over a period from 1979 to 2005. The observed results along with the expected upper and lower tolerance limits for tropospheric and stratospheric ozone, respectively, for different Indian latitudes, which have been estimated statistically using monthly mean CCD ozone data from 1979 to 2005 have been discussed in detail.  相似文献   

16.
Summary Using high altitude rocketsonde data for Thumba (8.5 N, 76.9E) and Balasore (21.5 N, 86.9E) and the stratalert messages for high latitudes for the winter (December–March) 1984–1985, an examination has been made to study the perturbations in the temperature and winds in the tropical middle atmosphere and their linkage with the dynamical events occurring over the high-latitude middle atmosphere during that winter.The results of analysis indicated occurrence of strong cooling in the mesosphere over a period of seven days (5–12 December 1984) and the depth of the cooling layer was 15 km. This incident was followed by a strong warming over a period of seven days (12–19 December 1984) and the depth of the warming layer was 13 km. The major warming event, which occurred over high latitudes during the later part of December and the first week of January, was followed by the cooling in the mesosphere and warming in the stratosphere at Thumba. Also the zonal winds were strong easterly and the meridional winds were northerly in the upper stratosphere and the lower mesosphere over tropics during the same period. Weaker zonal winds/stronger easterly winds were generally noticed to be associated with coolings/warmings over tropics.With 7 Figures  相似文献   

17.
The effect of the stratospheric ozone depletion on the thermal and dynamical structure of the middle atmosphere is assessed using two 5-member ensembles of transient GCM simulations; one including linear trends in ozone, the other not, for the 1980–1999 period. Simulated temperatures and observations are in good agreement in terms of mean values, autocorrelations and cross correlations. Annual-mean and seasonal temperature trends have been calculated using the same statistical analysis. Simulations show that ozone trends are responsible for reduced wave activity in the Arctic lower stratosphere in February and March, confirming both the role of dynamics in controlling March temperatures and a recently proposed mechanism whereby Arctic ozone depletion causes the reduction in wave activity entering the lower stratosphere. Changes in wave activity are consistent with an intensification of the polar vortex at the time of ozone depletion and with a weakened Brewer–Dobson circulation: A decrease of the dynamical warming/cooling associated with the descending/ascending branch of the wintertime mean residual circulation at high/low latitudes has been obtained through the analysis of temperature observations (1980–1999). Ozone is responsible of about one third of the decrease of this dynamical cooling at high latitudes. An increase in the residual mean circulation is seen in the observations for the 1965–1980 period.  相似文献   

18.
Temperature trends in the upper stratosphere are investigated using satellite measurements from Stratospheric Sounding Unit(SSU) outputs and simulations from chemistry–climate models(CCMs) and the Coupled Model Intercomparison Project Phase 6(CMIP6). Observational evidence shows a lack of cooling in the Antarctic, in contrast to strong cooling at other latitudes, during austral winter over 1979–97. Analysis of CCM simulations for a longer period of1961–97 also shows a significant contrast in the...  相似文献   

19.
Sixteen years (1994 – 2009) of ozone profiling by ozonesondes at Valentia Meteorological and Geophysical Observatory, Ireland (51.94° N, 10.23° W) along with a co-located MkIV Brewer spectrophotometer for the period 1993–2009 are analyzed. Simple and multiple linear regression methods are used to infer the recent trend, if any, in stratospheric column ozone over the station. The decadal trend from 1994 to 2010 is also calculated from the monthly mean data of Brewer and column ozone data derived from satellite observations. Both of these show a 1.5 % increase per decade during this period with an uncertainty of about ±0.25 %. Monthly mean data for March show a much stronger trend of?~?4.8 % increase per decade for both ozonesonde and Brewer data. The ozone profile is divided between three vertical slots of 0–15 km, 15–26 km, and 26 km to the top of the atmosphere and a 11-year running average is calculated. Ozone values for the month of March only are observed to increase at each level with a maximum change of +9.2?±?3.2 % per decade (between years 1994 and 2009) being observed in the vertical region from 15 to 26 km. In the tropospheric region from 0 to 15 km, the trend is positive but with a poor statistical significance. However, for the top level of above 26 km the trend is significantly positive at about 4 % per decade. The March integrated ozonesonde column ozone during this period is found to increase at a rate of ~6.6 % per decade compared with the Brewer and satellite positive trends of ~5 % per decade.  相似文献   

20.
To analyze the mechanism by which water vapor increase leads to cooling in the stratosphere, the effects of water-vapor increases on temperature in the stratosphere were simulated using the two-dimensional, interactive chemical dynamical radiative model (SOCRATES) of NCAR. The results indicate that increases in stratospheric water vapor lead to stratospheric cooling, with the extent of cooling increasing with height, and that cooling in the middle stratosphere is stronger in Arctic regions. Analysis of the radiation process showed that infrared radiative cooling by water vapor is a pivotal factor in middle-lower stratospheric cooling. However, in the upper stratosphere (above 45 km), infrared radiation is not a factor in cooling; there, cooling is caused by the decreased solar radiative heating rate resulting from ozone decrease due to increased stratospheric water vapor. Dynamical cooling is important in the middle-upper stratosphere, and dynamical feedback to temperature change is more distinct in the Northern Hemisphere middle-high latitudes than in other regions and signiffcantly affects temperature and ozone in winter over Arctic regions. Increasing stratospheric water vapor will strengthen ozone depletion through the chemical process. However, ozone will increase in the middle stratosphere. The change in ozone due to increasing water vapor has an important effect on the stratospheric temperature change.  相似文献   

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