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1.
敦煌地区大气气溶胶光学厚度的季节变化   总被引:5,自引:10,他引:5  
李韧  季国良 《高原气象》2003,22(1):84-87
讨论了利用太阳直接辐射资料反演大气气溶胶光学厚度的一种方法,并且用1981-1983年敦煌地区太阳直接辐射资料计算了该地区大气气溶胶光学厚度的季节变化特征,结果表明:敦煌地区大气气溶胶光学厚度冬季稳定,变化小,春季不稳定,变化幅度大,夏季次之;秋季较小。  相似文献   

2.
The aerosol number spectrum and gas pollutants were measured and the new particle formation (NPF) events were discussed in Nanjing. The results showed that the size distributions of aerosol number concen- trations exhibited distinct seasonal variations, implying the relations of particle sizes and their sources and sinks. The number concentrations of particles in the nuclei mode (10-30 nm), Aitken mode (30-100 nm), accumulation mode (100 -1000 nm) and coarse mode (〉1μm) varied in the order of summer 〉 spring 〉 autumn, summer 〉 autumn 〉 spring, autumn 〉 summer 〉 spring, and spring 〉 autumn 〉summer, re- spectively. The diurnal variation of total aerosol number concentrations showed three peaks in all observed periods, which corresponded to two rush hours and the photochemistry period at noon. In general, the NPF in summer occurred under the conditions of east winds and dominant air masses originating from marine areas with high relative humidity (50%-70%) and strong solar radiations (400 -700 W m-2). In spring, the NPF were generally accompanied by low relative humidity (14%-30%) and strong solar radiations (400-600 W m-2). The new particle growth rates (GR) were higher in the summertime in the range of 10- 16 nm h-1. In spring, the GR were 6.8-8.3 nm h-1. Under polluted air conditions, NPF events were seldom captured in autumn in Nanjing. During NPF periods, positive correlations between 10- 30 nm particles and 03 were detected, particularly in spring, indicating that NPF can be attributed to photochemical reactions.  相似文献   

3.
In this study, a regional air quality model system (RAQMS) was applied to investigate the spatial distributions and seasonal variations of atmospheric aerosols in 2006 over East Asia. Model validations demonstrated that RAQMS was able to reproduce the evolution processes of aerosol components reasonably well. Ground-level PM10 (particles with aerodynamic diameter ≤10 μm) concentrations were highest in spring and lowest in summer and were characterized by three maximum centers: the Taklimakan Desert (~1000 μg m-3), the Gobi Desert (~400 μg m-3), and the Huabei Plain (~300 μm-3) of China. Vertically, high PM10 concentrations ranging from 100 μg m-3 to 250 μg m-3 occurred from the surface to an altitude of 6000 m at 30o--45oN in spring. In winter, the vertical gradient was so large that most aerosols were restricted in the boundary layer. Both sulfate and ammonium reached their highest concentrations in autumn, while nitrate reached its maximum level in winter. Black carbon and organic carbon aerosol concentrations reached maximums in winter. Soil dust were strongest in spring, whereas sea salt exerted the strongest influence on the coastal regions of eastern China in summer. The estimated burden of anthropogenic aerosols was largest in winter (1621 Gg) and smallest in summer (1040 Gg). The sulfate burden accounted for ~42% of the total anthropogenic aerosol burden. The dust burden was about twice the anthropogenic aerosol burden, implying the potentially important impacts of the natural aerosols on air quality and climate over East Asia.  相似文献   

4.
西北地区气溶胶光学特性及辐射影响   总被引:3,自引:1,他引:2  
利用SACOL(兰州大学半干旱气候与环境观测站)2006~2012年AERONET(全球气溶胶自动监测网)level 2.0和太阳短波辐射计资料,分析了中国西北地区气溶胶的光学特性与辐射影响。利用辐射传输模式SBDART(平面平行大气辐射传输模式)检验TOA(大气层顶)处辐射强迫为正的原因。BOA(地表)、TOA、Atmosphere(大气)的辐射强迫年均值分别是-59.43 W m-2、-17.03 W m-2、42.40 W m-2,AOD(光学厚度,550 nm)年均值0.37,α(波段的波长指数,440~675 nm)年均值0.91,变化趋势与AOD位相相反,当AOD为0.3~2.2时,α很小(0.0~0.2),表明粒子尺度很大。SSA(单次散射反照率,675 nm)年均值0.93,g(不对称因子,675 nm)年均值0.68,复折射指数(675 nm)实部年均值1.48,虚部0.007。复折射指数实部的年变化趋势与AOD一致,虚部与AOD反位相,所以西北地区多为粗模态散射性气溶胶。气溶胶对大气的加热率最大值出现在0~2 km,随高度递减。冬、夏半年在地表加热率分别是2.6 K d-1和0.6 K d-1;季节变化中,冬季、秋季、春季和夏季,在地表的加热率依次是2.5 K d-1、1.4 K d-1、1.2 K d-1和0.2 K d-1,主要因为秋季气溶胶的吸收性大于春季。地表反照率和SSA对TOA正辐射强迫贡献率分别是22.5%和77.5%。  相似文献   

5.
分析了MODIS卫星资料反演的2001年我国中东部地区气溶胶光学厚度的时空分布特征,并利用中尺度数值模式MM5对该地区硫酸盐气溶胶的直接辐射强迫及其气候效应进行了模拟。结果表明:2001年四川盆地、长江中下游地区、黄淮一带及两广等地区气溶胶光学厚度较大。各季光学厚度变化不同,全年以春季最大。地面温度响应呈现出明显的区域季节变化特征,主要表现为冬、春、秋季南方降温幅度明显,夏季北方降温幅度明显。就区域平均而言,2001年中东部地区晴空时气溶胶辐射强迫以春季最大,达-34.53 W/m2;夏季次之,达-22.76 W/m2;冬季再次,达-22.57 W/m2;秋季最小,达-20 W/m2。地面降温则以冬季最大,达-0.65℃;秋季次之,达-0.37 ℃;春季再次,达-0.34 ℃;夏季最小,达-0.09 ℃。  相似文献   

6.
文章利用国家卫星气象中心引进的以暗像元特性为基础的气溶胶光学厚度反演软件,对内蒙古地区2009年12月至2010年12月的EOS/MODIS气象卫星资料进行反演,计算0.55μm气溶胶光学厚度,并提取119个气象台站气溶胶光学厚度值按盟市进行月平均、年平均值统计分析,寻找气溶胶光学厚度的空间分布特征和时间变化规律。结果表明:(1)内蒙古地区气溶胶光学厚度存在非常明显的空间分布特征,最高值区主要集中在中部和西部地区,东部的大部地区基本没有最高值出现。(2)内蒙古地区气溶胶光学厚度存在明显的时间变化规律。从1月份逐渐增加,到6月和7月份达到全年最大值,再逐渐降低趋势;春季和夏季最大,而秋季和冬季最小,夏季>春季>秋季>冬季。  相似文献   

7.
塔克拉玛干沙漠地区气溶胶光学厚度卫星遥感产品验证   总被引:2,自引:0,他引:2  
基于塔克拉玛干沙漠地区地基太阳光度计数据,系统验证2007~2008年星载多角度成像光谱仪(MISR)、中分辨率成像光谱仪(MODIS)和臭氧监测仪(OMI)气溶胶反演产品,旨在定量评估这些产品在我国沙漠地区的气溶胶光学厚度(AOD)反演精度。结果表明:MODIS/AOD的相关系数在4种产品中最高(0.91),OMI/AOD次之(0.87),其次为MISR/AOD(0.84),OMI/UVAI相关系数偏低(0.51)。MISR/AOD均方根误差(0.14)和平均偏差(-0.06)在4种反演产品中最低。与地基观测相比,MISR/AOD、MODIS/AOD系统偏低,OMI/AOD、OMI/UVAI系统偏高。在相同比较条件下(地基观测气溶胶光学厚度值限定在2.0以内),MISR的均方根误差和平均偏差在4种反演产品中最低,且相关系数也较高(0.84)。尽管存在诸多不同,但3种探测器气溶胶反演产品均能较好地展示该地区的气溶胶季节变化。塔克拉玛干沙漠春、夏季AOD较大,秋、冬季AOD相对较小。ngstrm波长指数的结果表明,春季(3~5月)最小(均值为0.11),夏季(6~8月)次之,秋季(9~11月)和冬季(12月至次年2月)较大(均值达到0.61),这表明在春、夏季气溶胶粒子偏大,秋、冬季气溶胶粒子偏小。此外,通过研究2000~2010年AOD年际变化表明,由于塔克拉玛干沙漠地区属于沙尘源区,气溶胶类型较为单一,所以总体来说,变化趋势不是较为明显。从反演结果来看,2003年的气溶胶含量为此10年中最高,年均值达到0.32;2005年的气溶胶含量在这10年中最低,年均值为0.28。  相似文献   

8.
利用MODIS光学厚度遥感产品研究北京及周边地区的大气污染   总被引:53,自引:2,他引:53  
对2001年在北京地区利用太阳光度计观测的气溶胶光学厚度和NASA发布的MODIS气溶胶产品进行了比较,验证了这一卫星遥感产品的可靠性;比较了2001年MODIS气溶胶光学厚度(AOD)产品和由空气污染指数(API)计算的每日平均可吸入颗粒物(PM10)浓度,得到了比较高的相关系数,证实该气溶胶产品可用于污染分析.将北京地区AOD与气象能见度观测资料进行比较,得到了不同季节的气溶胶"标高".利用统计的不同季节的气溶胶标高,从光学厚度的季节分布得到了能见度(能见距离)的季节分布.气溶胶光学厚度图像的个例分析表明,除局地排放外,周边区域(主要为西南和南向)的输送对北京市区的空气污染贡献份额较大.卫星遥感气溶胶可以比较直观地再现污染物的区域分布和输送,不仅为研究全球气候变化也为研究区域环境的空气质量提供了一种有效手段.  相似文献   

9.
李健  王澄海 《干旱气象》2014,(5):733-737
利用郑州机场近9 a(2004-2012年)地面气象观测资料,分析了能见度的年、季节和日变化特征,并统计了低能见度出现的天数。结果表明:郑州机场年平均能见度仅为4 219 m,平均每年上升约69 m,秋季上升速率最快,冬季最慢,出现小于1500 m、800 m和600 m能见度的天数均呈下降趋势;能见度月际变化特征十分明显,春季平均能见度最好,秋季和冬季较差,低能见度出现的天数以秋、冬季较多,春、夏季较少;日变化特征除夏季外,春、秋、冬季能见度都呈现双峰双谷型变化,能见度16时最佳,凌晨4时最差。  相似文献   

10.
利用2008年5月16日至2009年4月17日太湖地区多光谱旋转遮光辐射仪(multi—filter ro—tating shadow—band radiometer,简称MFRSR)的观测资料进行反演,得出415、500、615、675和870nm5个波段大气气溶胶光学厚度(aerosol optical depth,简称AOD)及各季节浑浊度系数和波长指数的统计结果。结果表明,5个波段AOD的最大值分别为1.9、1.6、1.3、1.2和1.0;它们谱分布的半宽度分别为0.90、0.70、0.55、0.45和0.25;AOD频率分布极大值处所对应的AOD值分别为0.750、0.550、0.475、0.425和0.425。5个波段AOD的平均值在春季最大,夏季次之,除870nm外,均为冬季最小。浑浊度系数变化范围为0~1.25,其中大于0.2的占97%以上,大于0.4的占66%以上。春季、夏季、秋季和冬季的波长指数变化范围分别为0~3.0、0~2.8、0.2~2.0和0.2~2.0,表明太湖地区大气污染较为严重,且受人为源的影响显著。相对于秋冬季,春夏季有较大粒径的气溶胶粒子存在。  相似文献   

11.
The semi-annual oscillation (SAO) in sea-level pressure at high southern latitudes is the consequence of a twice-yearly contraction (and strengthening) and expansion (and weakening) of the storm track between 50 and 65°S, with the contracted phases in spring and autumn. In this study the extent to which inter-annual variability of the SAO is correlated with inter-annual variability in mid- to lower-stratospheric circulation at 60°S was determined using NCEP/NCAR Reanalysis 1 data for the period 1979?C2009. The second harmonic of the annual cycle of an SAO index was used to assess SAO amplitude and phase (the date of the first peak of the second harmonic). Zonal mean zonal wind at 60°S was used as an index for atmospheric circulation. The results show that year-to-year variability in the SAO amplitude is significantly correlated with mid-stratospheric (10?hPa) circulation variability in late summer/early autumn (February?CMarch) and late winter/early spring (August?CSeptember). However, variability in the SAO phase is significantly correlated with mid-stratospheric circulation variability in spring (September?CNovember). These maxima in significant correlations at 10?hPa propagate down to the surface in approximately one month. The characteristics of upward planetary wave propagation alone do not explain the late summer/early autumn and spring maxima in correlations. Evidence is shown that internal reflection of stationary wave-number 1 is important for explaining the strong correlations in late summer/early autumn, but that large variability during polar vortex break-up dominates the spring correlations. The results may be important for understanding seasonal differences in how stratospheric ozone depletion influences tropospheric circulation.  相似文献   

12.
中国降水的季节性   总被引:1,自引:0,他引:1  
姚世博  姜大膀  范广洲 《大气科学》2017,41(6):1191-1203
本文使用一套基于中国气象局所属的2416个台站数据所得的高分辨降水资料,对1961~2013年中国降水季节性进行了研究。就全国平均而言,各季节降水占全年降水百分率最高的为夏季(56.5%),春季(19.3%)和秋季(18.9%)次之,冬季(5.3%)最少;针对不同地区,各季节降水百分率存在很大差异,例如华南春季降水最多、东北至高原一线秋季降水大于春季降水。春、夏两季降水百分率高值(低值)区域略呈现出降水百分率减少(增多)趋势,秋季整体上略微减少,冬季则显著增加;季节降水百分率的变率整体表现为夏季大而冬季小,其西部的变率与地形为显著负相关,东部变率的大值区位置随季节变化;秋冬两季的降水百分率变率有显著增加,各季节不同地区变率的变化趋势存在明显差异。  相似文献   

13.
北京乡村地区分粒径气溶胶OC及EC分析   总被引:2,自引:0,他引:2       下载免费PDF全文
利用北京上甸子区域大气本底站2004年观测的分粒径大气气溶胶资料,分析了气溶胶中有机碳 (OC) 及元素碳 (EC) 的质量浓度水平、季节变化、尺度分布特征、OC与EC比值及其相关性。结果显示:上甸子站总悬浮颗粒物 (TSP) 中OC平均质量浓度为7.5~31.5 μg·m-3,EC质量浓度为1.4~6.6 μg·m-3;PM2.1(粒径小于2.1 μm) 中OC质量浓度为4.0~19.1 μg·m-3,EC质量浓度大约为0.8~4.3 μg·m-3。冬季OC及EC质量浓度明显高于其他季节,其中冬、夏、秋季OC及EC峰值粒径出现为0.65~2.1 μm,但在春季峰值粒径移至2.1~4.7 μm。观测期间,OC与EC质量浓度比值平均为4~6,该比值略高于文献报道的我国一些城市地区的观测结果。  相似文献   

14.
近60a来南京季节变化特征分析   总被引:2,自引:1,他引:1  
潘航 《气象科学》2011,31(6):742-746
利用1951年1月-2010年12月南京市逐日气温观测资料,依据张宝堃应用候平均气温稳定通过某一临界值划分四季的标准,建立了近60 a南京的季节平均气温的时间序列,分析了近60a南京春、夏、秋、冬四季开始、结束及持续时间的变化特征,给出了季节气温的变化趋势以及候平均与入季时间、季节持续时间的相关分析.结果表明:近60a,南京入冬时间推迟,入夏时间提前.冬季变短,缩短的平均速率为2.9 d/10a;夏季变长,增加的平均速率为4.1d/10a;秋季变短,缩短的平均速率为1.5d/10a;春季略有些变长.南京冬、春季平均气温升高,且冬季气温升高更为显著,而夏、秋季平均气温下降,秋季气温下降略明显于夏季.冬季最低气温有升高的趋势,夏季最高气温与年较差有下降的趋势.春季入季时间与春季的平均气温成正相关,而秋季的入季时间与秋季平均气温成负相关;夏季的平均最低气温和平均气温与夏季的长度成负相关,冬季的平均最高气温和冬季的长度成正相关.  相似文献   

15.
Abstract

Weather observations made at Eureka, on Ellesmere Island in the Canadian High Arctic, have been archived since 1953. The time series, averages, and seasonal cycles of surface temperature, pressure, dew point, relative humidity, cloud cover, wind speed, and direction are presented for the period from 1954 to 2007. Also shown are the time series and averages for the 500 mb temperature, 900 to 500 mb thickness, 500 mb wind speed, and various boundary‐layer stability parameters. Some of the main trends found are 1) an annual average surface warming of 3.2°C since 1972, with summer exhibiting the least warming, 2) a reduction in the frequency of strong anticyclonic events in the winter, 3) a reduction in surface wind speeds except in the summer, 4) a 1.0°C warming in the 500 mb temperature since 1961, with the greatest warming occurring in the spring and summer, and 5) a 10% increase in precipitable water all year round since 1961 but dominated by the spring, summer, and autumn seasons. The importance of open water in the Arctic Ocean for summer temperatures and humidity, of the North Atlantic Oscillation for winter interannual pressure variability, and of precipitable water for winter temperatures are highlighted in this climatology.  相似文献   

16.
北京地区日最大边界层高度的气候统计特征   总被引:1,自引:0,他引:1  
使用北京气象站探空观测数据和地面气温观测数据,以干绝热曲线法估算1984~2013年逐日最大边界层高度,同时计算对应的边界层平均风速和通风量。统计分析这3个边界层参量的平均特征,并利用2001~2012年的空气污染指数(API),探讨大气污染与边界层参量的关系。结果表明:(1)日最大边界层高度的30年月均值以春季和夏初(3~6月)最高,约1600 m;夏季和秋初(7~10月)次之,约1300 m;冬季(11月、12月和1月)最低,约1000~1200 m。(2)夏季,日最大边界层高度不同数值的频率大致为对称分布,峰值处于1000~1600 m范围;秋、冬季,频率分布系统性地向低值一方偏斜,600~800 m的出现频率大大增加;春季边界层高度的变化极大。(3)各季边界层平均风速以夏季为最小。(4)一年中春季通风量最大,秋季次之,冬季较低,夏季最小。(5)秋、冬季,北京中度和重污染个例(API200)集中分布于弱风、低边界层和小通风量条件,反映污染物局地累积的作用;春季污染个例半数以上以高风速、高通风量为特征,反映沙尘类外部输入性污染的作用。  相似文献   

17.
临安大气气溶胶理化特性季节变化   总被引:4,自引:2,他引:4       下载免费PDF全文
分别利用碳成分分析仪、离子色谱仪和原子吸收光谱仪等获取浙江省临安地区大气气溶胶在春、夏、秋、冬四季的质量浓度、离子与碳成分特性,并对不同粒径气溶胶成分分布特点作了较详细分析。结果表明:气溶胶质量浓度、可溶性离子浓度以及碳成分浓度具有明显的季节变化趋势。整个尺度范围内,气溶胶质量浓度季节变化特点为春季浓度最高,达到534 μg/m3;冬季次之,质量浓度为117.21 μg/m3;夏季浓度最低,平均为65.7 μg/m3;秋季质量浓度98.6 μg/m3。可溶性离子成分在气溶胶中所占比例具有明显的季节性,其中夏季最高为49.4%,春季最低为11.3%。硫酸根离子SO42-和氨根离子NH4+和硝酸根离子NO3- 3种离子浓度之和约占离子总量的75%~83%。受温度影响,硝酸根离子NO3-浓度随季节变化幅度较大,夏季平均浓度为1.7 μg/m3, 冬季平均浓度为11.5 μg/m3,是夏季浓度的6.8倍。碳浓度分布特点显示,气溶胶中元素碳浓度春季最高,夏季最低。有机碳浓度春季最高,冬季最低。气溶胶粒度分布特点也非常明显。四季中粒径小于11 μm(PM11)的气溶胶均占气溶胶总量的90%以上,粒径小于2.1 μm(PM2.1)的气溶胶占到气溶胶总量的53%以上。可溶性离子在粒径小于2.1 μm气溶胶颗粒中,以硫酸根离子、氨根离子和硝酸根离子为主。碳成分尺度分布特征为颗粒越小,有机碳及元素碳浓度越高。  相似文献   

18.
Based on daily precipitation data from 524 meteorological stations in China during the period 1960–2009, the climatology and the temporal changes (trends, interannual, and decadal variations) in the proportion of seasonal precipitation to the total annual precipitation were analyzed on both national and regional scales. Results indicated that (1) for the whole country, the climatology in the seasonal distribution of precipitation showed that the proportion accounted for 55 % in summer (June–August), for around 20 % in both spring (March–May) and autumn (September–November), and around 5 % in winter (December–February). But the spatial features were region-dependent. The primary precipitation regime, “summer–autumn–spring–winter”, was located in central and eastern regions which were north of the Huaihe River, in eastern Tibet, and in western Southwest China. The secondary regime, “summer–spring–autumn–winter”, appeared in the regions south of the Huaihe River, except Jiangnan where spring precipitation dominated, and the southeastern Hainan Island where autumn precipitation prevailed. (2) For the temporal changes on the national scale, first, where the trends were concerned, the proportion of winter precipitation showed a significantly increasing trend, while that of the other three seasons did not show any significant trends. Second, for the interannual variation, the variability in summer was the largest among the four seasons and that in winter was the smallest. Then, on the decadal scale, China experienced a sharp decrease only in the proportion of summer precipitation in 2000. (3) For the temporal changes on the regional scale, all the concerned 11 geographic regions of China underwent increasing trends in the proportion of winter precipitation. For spring, it decreased over the regions south of the Yellow River but increased elsewhere. The trend in the proportion of summer precipitation was generally opposite to that of spring. For autumn, it decreased over the other ten regions except Inner Mongolia with no trend. It is noted that the interannual variability of precipitation seasonality is large over North China, Huanghuai, and Jianghuai; its decadal variability is large over the other regions, especially over those regions south of the Yangtze River.  相似文献   

19.
采用西南地区巫溪大官山同一坡面10个不同海拔高度梯度观测站2019~2020年逐小时温湿观测资料,分析了气温、气温直减率、日较差和相对湿度的梯度变化特征。结果表明:观测期间,气温随海拔升高而降低,海拔2000 m以上区域秋、冬季常出现逆温或同温现象;年平均气温递减率为0.57℃/100 m,最大值出现在3月和9月,分别为0.63℃/100 m和0.62℃/100 m,2月最低为0.49℃/100 m;日较差总体随海拔升高而减小,但在海拔1065~1222 m,出现了日较差随海拔升高而快速下降的突变区;年、春季在海拔1222~2180 m,秋季在海拔1222~2550 m,出现了日较差相对稳定层,其它季节不太明显。在海拔1670 m以下区域,年相对湿度为78.5%,夏季最大(85.3%),秋季次之(82%),冬季再次(74.3%),春季最低(72.3%);随着海拔升高云雾出现频率增大,年和各季相对湿度均随之增大;海拔1670~1930 m为突变区间,相对湿度迅速增加,在海拔1930~2550 m,年、春、夏、秋季处于云中的时间较多,相对湿度变化不大;冬季由于云层低,海拔较高的区域常处于云的上方,相对湿度随海拔升高反而有所减小。   相似文献   

20.
It is well established that aerosols affect the climate in a variety of ways. In order to understand these effects, we require an insight into the properties of aerosols. In this paper we present a study of aerosol properties such as aerosol optical depth (AOD), single scattering albedo (SSA) and aerosol radiative forcing (ARF) over mega city of Lahore (Pakistan). The data from Aerosol Robotic Network (AERONET) have been used for the period December 2009 to October 2011. The seasonal average values of AOD, asymmetry parameter (ASY) and volume size distribution in coarse mode were observed to be highest in summer. On the other hand, the average values of Angstrom exponent (AE) and imaginary part of refractive index (RI) were found to be maximum in winter. The average value of real part of RI was found to be higher in spring than in all other seasons. The SSA exhibited an increasing trend with wavelength in the range 440 nm–1020 nm in spring, summer and fall indicating the dominance of coarse particles (usually dust). However, a decreasing trend was found in winter in the range 675 nm–1020 nm pointing towards the dominance of biomass and urban/industrial aerosols. As far as aerosol radiative forcing (ARF) is concerned, we have found that during the spring season ARF was lowest at the surface of Earth and highest at top of the atmosphere (TOA). This indicates that the atmosphere was warmer in spring than in all the remaining seasons.  相似文献   

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