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1.
中国不同区域大气气溶胶化学成分浓度、组成与来源特征   总被引:6,自引:0,他引:6  
张小曳 《气象学报》2014,72(6):1108-1117
为获得中国不同区域大气气溶胶化学组成的总体"图景",进一步探讨污染治理方向,需要分区域评估其化学成分浓度水平、组成与来源特征。通过对近地层中国内陆大气气溶胶中6种主要化学成分(硫酸盐、硝酸盐、铵、有机碳、黑碳和矿物气溶胶)至少有1 a观测研究的评估分析,获得不同区域气溶胶化学成分质量浓度水平与组成的评估结果,认识到在气溶胶污染最严重的4大区域(即北京以南的华北与关中平原区域、以长三角为主体的华东区域、以珠三角为主体的华南区域以及四川盆地)的PM_(10)中矿物气溶胶(所占比例在20%38%)、硫酸盐(14%-24%)、有机碳(11%-18%)是3个主要组分;其中华北与关中平原气溶胶污染在中国最重,硫酸盐浓度在35—47μg/m~3(远高于北京(13—18μg/m~3))、有机碳28—45μg/m~3(约是北京(19—22μg/n~3)的1.8倍)、硝酸盐19—22μg/m~3(约是北京(9.9—12μg/m~3)的2倍)、铵14—16μg/m~3(仍然比北京(6.2-8.4μg/m~3)高1倍),黑碳在北京和北京以南城市的浓度差别不大(9.1—12μg/m~3)。这其中燃煤对硝酸盐和有机碳气溶胶的贡献超过50%,农业活动是铵的最重要来源。华东、华南和东北城市区域气溶胶化学成分浓度水平与北京相近,但四川盆地城市站各组分浓度均高于北京,污染较重。西北兰州城市站,除了黑碳浓度低很多、硝酸盐浓度稍高外,其他气溶胶化学成分浓度水平与北京相当。西北偏远区域沙漠站点,各种气溶胶化学成分的浓度都要远低于北京。青藏高原和云贵高原城市站气溶胶化学成分浓度与北京相比也明显偏低。不同区域气溶胶化学组成分析显示,燃煤、机动车、城市逸散性粉尘和农业活动是4个最需要关注的污染源,加强除发电行业外的燃煤脱硫,进一步消减燃煤氮氧化物、一次有机碳和挥发性有机物排放,并有效减少农业活动排放到大气中的氨,更有效限制硫酸盐和硝酸盐的形成是已有大气污染治理对策基础上,未来应特别关注的控制方向。  相似文献   

2.
城市近郊常受到城区污染物扩散和输送的影响,2010年7月21日至8月6日利用β射线颗粒物连续监测仪和黑碳仪对北京西北郊区PM2.5和黑碳气溶胶(BC)进行了连续观测。结果表明,北京西北郊区夏季PM2.5和BC的质量浓度分别是(133.16±81.64)、(2.89±1.62)μg/m3。受明显的山谷风的影响,来自观测点东南方的城区的气流使PM2.5和BC浓度升高,来自观测点西北方向的风则使PM2.5和BC浓度降低。受局地排放、区域输送和气象条件的共同影响,郊区的PM2.5和BC浓度表现出明显日变化特征,二者浓度在上午、傍晚和夜间显著上升。  相似文献   

3.
为了监测北京奥运主场馆附近大气颗粒物的污染状况以及评估奥运污染源减排措施对北京大气颗粒物质量浓度变化的影响,利用颗粒物在线监测仪器TEOM于2007年和2008年夏季,在奥运主场馆附近的中国科学院遥感应用研究所办公楼楼顶对大气颗粒物PM10和PM2.5进行了连续同步观测。结果表明,2007年夏季监测点附近大气PM10与PM2.5质量浓度的平均值分别为153.9和71.2μg.m-3,而2008年夏季PM10与PM2.5质量浓度的平均值分别为85.2和52.8μg.m-3。与奥运前一年同时段相比,奥运时段大气PM10和PM2.5的质量浓度分别下降44.5%和25.1%。对比分析奥运前后的2次典型污染过程发现,空气相对湿度的增加和偏南气流输送的共同影响易造成大气颗粒物的累积增长,而降雨的湿清除作用和偏北气流则会使大气颗粒物浓度迅速降低。在相近的气象条件下,奥运前后的污染过程中,大气细粒子的日均增长速率分别为25.1和13.9μg.m-3.d-1,而大气粗粒子的日均增长速率分别为20.8和2.2μg.m-3.d-1,奥运时段污染累积过程中大气粗、细粒子的增长速率分别显著低于和略低于奥运前同时段污染过程中颗粒物的增长速率。污染源减排措施的实施是奥运期间大气颗粒物质量浓度降低的主要原因,从控制效果来看,奥运期间实施的污染源减排措施对大气粗粒子的控制效果明显好于大气细粒子。  相似文献   

4.
上海市区和郊区黑碳气溶胶的观测对比   总被引:11,自引:0,他引:11       下载免费PDF全文
为了探讨上海市区和郊区黑碳气溶胶质量浓度、分布以及来源和输送等特征,利用上海浦东 (市区) 和东滩 (郊区河口湿地)2007年12月—2008年11月的黑碳气溶胶小时平均质量浓度数据,对比分析了两地黑碳气溶胶浓度在不同时间尺度上的变化特征以及气象要素对黑碳质量浓度的影响。结果表明:观测期间浦东和东滩两地黑碳气溶胶小时质量浓度平均值分别为3.8 μg·m-3,1.7 μg·m-3。两地黑碳气溶胶浓度具有类似的季节变化特征,均为冬季较高、夏季较低;同时浦东黑碳气溶胶浓度日变化呈现出明显的双峰结构,并具有显著的周末效应,体现了局地人为源排放的影响。受源排放影响为主的市区与受输送影响为主的郊区,黑碳气溶胶浓度在不同风向上与风速的关系表现出不同特征。  相似文献   

5.
2003年秋季西安大气中黑碳气溶胶的演化特征及其来源解析   总被引:34,自引:4,他引:30  
2003年9~11月在西安站点通过黑碳测量仪(Aethlometer)获得了大气细粒子中每5 min的黑碳气溶胶(BC)浓度,这些实时的BC浓度经过元素碳校对后,日平均浓度为10.2±5.8μg·m-3,其变化范围为1.8~27.5μg·m-3.BC浓度与污染指数(API)的变化具有良好的一致性(相关系数为0.64),表明BC是大气颗粒物污染的一个重要贡献.正常天气下,BC小时平均浓度呈三峰分布,这与机动车污染、居民活动和农村秸秆燃烧等来源相关联.通过降水天气下BC的浓度分布和BC浓度频次分布法,获得了西安大气中BC的本底浓度为4.5μg·m-3,以此估算了西安大气BC中不同来源的相对贡献,其中周边源对BC的贡献超过了1/3.这表明了该季节内城市周边农村秸秆燃烧对城市空气质量的显著贡献,需要进一步严格控制.  相似文献   

6.
乌鲁木齐大气黑碳气溶胶浓度变化特征及影响因素分析   总被引:1,自引:0,他引:1  
利用乌鲁木齐大气成分观测站2009年11月—2010年2月(2009年冬季)黑碳气溶胶(BC)质量浓度观测资料,同时结合该站观测的PM数据以及国内外其它地区的BC观测结果,分析了该地区黑碳气溶胶的变化特征及影响因素。结果表明:(1)BC日平均浓度为12.442±5.407μg.m-3,其变化范围为2.685~26.691μg.m-3。BC质量浓度与API指数的变化趋势基本一致,相关系数为0.660。(2)BC浓度的日变化具有明显的双峰值特征,其峰值区主要出现在上午和夜间,谷值区出现在凌晨和下午。逐日分布具有2~3 d到数天不等的急剧上升的变化,与天气过程活动周期基本吻合。(3)周一至周四BC平均浓度呈总体降低趋势,周五开始逐渐增加,总体的变化幅度不大,工作日和周末差别较小。(4)BC小时平均浓度出现频数符合对数正态分布,冬季本底浓度为6.146μg.m-3。(5)BC与PM10,PM2.5,PM1.0日平均浓度在0.001水平上均呈正相关,线性相关系数分别为0.526,0.538和0.548;BC在PM10,PM2.5,PM1.0中分别约占6.8%,8.2%和9.2%,表明BC是PM的重要组成部分。(6)乌鲁木齐城市冬季BC气溶胶浓度高于国内外部分城市,明显高于较为洁净的边远地区,远高于瓦里关本底站及南极观测的结果。  相似文献   

7.
长春秋冬季大气黑碳气溶胶的特征分析   总被引:16,自引:4,他引:12       下载免费PDF全文
应用黑碳观测仪于2007年10月-2008年1月对长春市黑碳气溶胶进行了观测和分析。结果表明, 长春市秋冬季每小时平均黑碳浓度达16.042 μg·m-3, 最大值可达181.014 μg·m-3, 说明长春市的黑碳污染已达到很严重的程度; 冬季黑碳浓度高于秋季; 黑碳浓度具有明显的日变化特征, 一天有两个峰值, 分别在08:00~09:00和17:00~20:00; 近地层大气垂直温度梯度与黑碳浓度有很好的对应关系; 机动车尾气排放、 冬季采暖和工业用煤等造成了空气中较高的黑碳浓度; 经常出现的低层大气层结逆温更使得低层大气中的较高含量的黑碳不易扩散是冬季黑碳浓度高的原因之一。  相似文献   

8.
2006年北京春季气溶胶吸收系数的分离研究   总被引:3,自引:0,他引:3  
对2006年春季北京城区大气气溶胶中沙尘和黑碳气溶胶吸收系数的波长指数及其对总吸收系数的贡献进行了估算。结果表明:2006年春季北京城市地区测点,黑碳气溶胶吸收系数随波长的变化呈指数递减,假设某些天的气溶胶吸收无沙尘的贡献,估算的波长幂指数a=-0.92。另外,计算了北京3次浮尘天气下沙尘气溶胶对吸收系数(520 nm波段)的贡献,计算表明,在浮尘天气影响期间,沙尘气溶胶对吸收系数的贡献平均为32.8%,黑碳气溶胶仍是浮尘影响期间城市气溶胶吸收消光的主要物质。  相似文献   

9.
庄炳亮  王体健  李树 《高原气象》2009,28(5):1095-1104
将区域气候模式(RegCM3)与对流层大气化学模式(TACM)耦合, 建立区域气候化学模拟系统(RegCCMS), 用以模拟研究中国地区黑碳气溶胶的空间分布、 第一间接辐射强迫及其气候效应。利用RegCCMS模式对2003年1月和7月进行模拟, 结果表明, 我国黑碳气溶胶主要集中在四川、 河北、 山东等地, 1月份浓度最高值中心在四川, 达到4 μg·m-3; 而在7月则出现在华中地区, 高值中心值为3.5 μg·m-3。地面浓度的季节差异不是很明显。1月和7月由黑碳气溶胶所造成的第一间接辐射强迫全国平均值分别为-0.389 W·m-2和-1.18 W·m-2, 局部地区达到-4~-4.5 W·m-2。敏感性试验结果表明, 考虑黑碳气溶胶的第一间接气候效应后, 使得近地面气温下降, 降水减少, 1月变化的平均值分别为-0.025K和-0.0027 mm·d-1, 7月变化的平均值分别为-0.16K和-0.095 mm·d-1, 在不同季节和地区, 气温和降水的变化存在明显差异。  相似文献   

10.
北京PM1中的化学组成及其控制对策思考   总被引:5,自引:0,他引:5       下载免费PDF全文
通过分析北京城区2007年夏季和秋季、2008年冬季和春季4个季节PM1中硫酸盐、硝酸盐、铵盐、有机物和黑碳等气溶胶化学组成,结合对我国及全球主要区域PM10中上述气溶胶组分及矿物气溶胶组成的评估,发现因受干旱区产生的沙尘和城市逸散性粉尘的共同影响,整个亚洲大陆,尤其是我国的矿物气溶胶浓度与欧美国家城市区域气溶胶总和的平均值相当或更高。我国在重视控制PM2.5等细粒子污染的同时,不应忽视对PM2.5~PM10之间粗粒子的控制力度;北京城区春、夏、秋、冬的PM1平均质量浓度分别约为94,74,66 μg·m-3和91 μg·m-3,全年平均约为81 μg·m-3,其中有机物气溶胶约占41%,硫酸盐占16%,硝酸盐占13%,铵盐占8%,黑碳和氯化物分别占11%和3%,细矿物气溶胶约贡献7%。对于PM2.5污染的控制,关键是消减PM1中主要气溶胶粒子的排放与转化,其中对有机物的控制更为重要,尽管对于北京而言进一步污染控制的难度已经很大。从科学上来说,即使我国的控制措施能百分之百实现,也很难稳定地达到欧美国家的空气质量水平,因为我国本底矿物气溶胶的浓度较高。应进一步评估各项控制措施的适用性,并制定考虑我国人群健康状况的PM2.5空气质量标准。  相似文献   

11.
The spatial and temporal variations of daily maximum temperature(Tmax), daily minimum temperature(Tmin), daily maximum precipitation(Pmax) and daily maximum wind speed(WSmax) were examined in China using Mann-Kendall test and linear regression method. The results indicated that for China as a whole, Tmax, Tmin and Pmax had significant increasing trends at rates of 0.15℃ per decade, 0.45℃ per decade and 0.58 mm per decade,respectively, while WSmax had decreased significantly at 1.18 m·s~(-1) per decade during 1959—2014. In all regions of China, Tmin increased and WSmax decreased significantly. Spatially, Tmax increased significantly at most of the stations in South China(SC), northwestern North China(NC), northeastern Northeast China(NEC), eastern Northwest China(NWC) and eastern Southwest China(SWC), and the increasing trends were significant in NC, SC, NWC and SWC on the regional average. Tmin increased significantly at most of the stations in China, with notable increase in NEC, northern and southeastern NC and northwestern and eastern NWC. Pmax showed no significant trend at most of the stations in China, and on the regional average it decreased significantly in NC but increased in SC, NWC and the mid-lower Yangtze River valley(YR). WSmax decreased significantly at the vast majority of stations in China, with remarkable decrease in northern NC, northern and central YR, central and southern SC and in parts of central NEC and western NWC. With global climate change and rapidly economic development, China has become more vulnerable to climatic extremes and meteorological disasters, so more strategies of mitigation and/or adaptation of climatic extremes,such as environmentally-friendly and low-cost energy production systems and the enhancement of engineering defense measures are necessary for government and social publics.  相似文献   

12.
Observed daily precipitation data from the National Meteorological Observatory in Hainan province and daily data from the National Centers for Environmental Prediction/National Center for Atmospheric Research (NCEP/NCAR) reanalysis-2 dataset from 1981 to 2014 are used to analyze the relationship between Hainan extreme heavy rainfall processes in autumn (referred to as EHRPs) and 10–30 d low-frequency circulation. Based on the key low-frequency signals and the NCEP Climate Forecast System Version 2 (CFSv2) model forecasting products, a dynamical-statistical method is established for the extended-range forecast of EHRPs. The results suggest that EHRPs have a close relationship with the 10–30 d low-frequency oscillation of 850 hPa zonal wind over Hainan Island and to its north, and that they basically occur during the trough phase of the low-frequency oscillation of zonal wind. The latitudinal propagation of the low-frequency wave train in the middle-high latitudes and the meridional propagation of the low-frequency wave train along the coast of East Asia contribute to the ‘north high (cold), south low (warm)’ pattern near Hainan Island, which results in the zonal wind over Hainan Island and to its north reaching its trough, consequently leading to EHRPs. Considering the link between low-frequency circulation and EHRPs, a low-frequency wave train index (LWTI) is defined and adopted to forecast EHRPs by using NCEP CFSv2 forecasting products. EHRPs are predicted to occur during peak phases of LWTI with value larger than 1 for three or more consecutive forecast days. Hindcast experiments for EHRPs in 2015–2016 indicate that EHRPs can be predicted 8–24 d in advance, with an average period of validity of 16.7 d.  相似文献   

13.
Based on the measurements obtained at 64 national meteorological stations in the Beijing–Tianjin–Hebei (BTH) region between 1970 and 2013, the potential evapotranspiration (ET0) in this region was estimated using the Penman–Monteith equation and its sensitivity to maximum temperature (Tmax), minimum temperature (Tmin), wind speed (Vw), net radiation (Rn) and water vapor pressure (Pwv) was analyzed, respectively. The results are shown as follows. (1) The climatic elements in the BTH region underwent significant changes in the study period. Vw and Rn decreased significantly, whereas Tmin, Tmax and Pwv increased considerably. (2) In the BTH region, ET0 also exhibited a significant decreasing trend, and the sensitivity of ET0 to the climatic elements exhibited seasonal characteristics. Of all the climatic elements, ET0 was most sensitive to Pwv in the fall and winter and Rn in the spring and summer. On the annual scale, ET0 was most sensitive to Pwv, followed by Rn, Vw, Tmax and Tmin. In addition, the sensitivity coefficient of ET0 with respect to Pwv had a negative value for all the areas, indicating that increases in Pwv can prevent ET0 from increasing. (3) The sensitivity of ET0 to Tmin and Tmax was significantly lower than its sensitivity to other climatic elements. However, increases in temperature can lead to changes in Pwv and Rn. The temperature should be considered the key intrinsic climatic element that has caused the "evaporation paradox" phenomenon in the BTH region.  相似文献   

14.
Storms that occur at the Bay of Bengal (BoB) are of a bimodal pattern, which is different from that of the other sea areas. By using the NCEP, SST and JTWC data, the causes of the bimodal pattern storm activity of the BoB are diagnosed and analyzed in this paper. The result shows that the seasonal variation of general atmosphere circulation in East Asia has a regulating and controlling impact on the BoB storm activity, and the “bimodal period” of the storm activity corresponds exactly to the seasonal conversion period of atmospheric circulation. The minor wind speed of shear spring and autumn contributed to the storm, which was a crucial factor for the generation and occurrence of the “bimodal pattern” storm activity in the BoB. The analysis on sea surface temperature (SST) shows that the SSTs of all the year around in the BoB area meet the conditions required for the generation of tropical cyclones (TCs). However, the SSTs in the central area of the bay are higher than that of the surrounding areas in spring and autumn, which facilitates the occurrence of a “two-peak” storm activity pattern. The genesis potential index (GPI) quantifies and reflects the environmental conditions for the generation of the BoB storms. For GPI, the intense low-level vortex disturbance in the troposphere and high-humidity atmosphere are the sufficient conditions for storms, while large maximum wind velocity of the ground vortex radius and small vertical wind shear are the necessary conditions of storms.  相似文献   

15.
正While China’s Air Pollution Prevention and Control Action Plan on particulate matter since 2013 has reduced sulfate significantly, aerosol ammonium nitrate remains high in East China. As the high nitrate abundances are strongly linked with ammonia, reducing ammonia emissions is becoming increasingly important to improve the air quality of China. Although satellite data provide evidence of substantial increases in atmospheric ammonia concentrations over major agricultural regions, long-term surface observation of ammonia concentrations are sparse. In addition, there is still no consensus on  相似文献   

16.
正AIMS AND SCOPE Atmospheric and Oceanic Science Letters (AOSL) publishes short research letters on all disciplines of the atmosphere sciences and physical oceanography. Contributions from all over the world are welcome.SUBMISSIONAll submitted  相似文献   

17.
18.
<正>With the support of specialized funds for national science institutions,the Guangzhou Institute of Tropical and Marine Meteorology,China Meteorological Administration set up in October 2008 an experiment base for marine meteorology and a number of observation systems for the coastal boundary layer,air-sea flux,marine environmental elements,and basic meteorological elements at Bohe town,Maoming city,Guangdong province,in the northern part of the South China Sea.  相似文献   

19.
《大气和海洋科学快报》2014,7(6):F0003-F0003
AIMS AND SCOPE
Atmospheric and Oceanic Science Letters (AOSL) publishes short research letters on all disciplines of the atmosphere sciences and physical oceanography. Contributions from all over the world are welcome.  相似文献   

20.
《大气和海洋科学快报》2014,(5):F0003-F0003
AIMS AND SCOPE Atmospheric and Oceanic Science Letters (AOSL) pub- lishes short research letters on all disciplines of the atmos- phere sciences and physical oceanography. Contributions from all over the world are welcome.  相似文献   

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