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1.
北京及其周边地区一次大雾的数值模拟及诊断分析   总被引:27,自引:7,他引:20  
利用美国国家大气研究中心研制的第5代中尺度模式系统MM5对2002年12月1~4日北京及其周边地区出现的一次大雾进行了数值模拟研究,模拟的雾出现和消散时间与实况一致。同时对雾形成和维持的机制进行了分析,讨论了雾发生发展阶段的物理过程,并对影响大雾过程的辐射条件做了敏感性试验。结果表明:形成大雾的主要原因是大气层结稳定,水汽充沛,地面的长波辐射冷却;近地面层微物理过程充分发展和雾顶的强烈辐射降温致使雾在垂直空间上出现爆发性发展;而太阳短波辐射对雾的减弱消散有着重要影响;深厚逆温层的维持对雾层长时间维持起着决定性作用。  相似文献   

2.
一次大雾形成过程的数值模拟分析   总被引:1,自引:1,他引:0  
利用非静力中尺度模式MM5V3对2009年11月30日到12月1日天津武清地区的一次大雾天气过程进行了数值模拟研究,这次大雾过程主要分布在天津、河北、山东地区,天津市武清县位于大雾的边缘位置.此次雾过程可以分为3个阶段.11月30日的17:00(北京时间,下同)至12月1日00:00是雾的形成阶段,12月1日00:00出现雾,00:00至09:00是雾的发展阶段,09:00之后是雾的消散阶段.模拟研究表明长波辐射降温使得温度下降并导致逆温层出现,同时由于暖湿气流输送,观测点处具有充足的水汽供应,促使了大雾的形成;在雾形成之后,逆温层的维持、持续的长波辐射降温有利于雾的不断发展;而后期辐散下沉运动明显,水汽不断向外辐散,使得雾逐渐消散.湍流对雾的影响是向上和向四周传输水汽,使得雾范围扩大,但如果太强,又会使得雾很快消散.  相似文献   

3.
利用地面气象观测资料、高空探测资料、NCEP再分析资料、芜湖市边界层风廓线雷达资料和高速公路气象观测站资料,分析了2012年3月6日安徽省沿长江东部大范围雾天气过程形成的环流背景及雾生消的物理条件。结果表明:安徽沿江东部地区此次春季大范围雾的性质为辐射雾,雾发生时雾区上空为西到西南风为主,无明显冷空气影响,地面为高压控制的均压场,有利于雾的生成和维持。由雾生消的物理条件可知,近地面水汽条件较好和长波辐射降温造成的水汽凝结是此次大范围雾形成的重要原因。地面辐射降温形成的近地面逆温层有利于雾的维持,且随着近地面逆温层的抬升,雾层变厚并发展。低空的逆温层则形成稳定的层结,阻止水汽向上传输。近地面风速大小合适,风垂直切变小,低层有湍流,中层无明显上升运动,构成雾形成的有利动力条件;而湿层变厚又阻止了水汽向高层交换,有利于雾的生成和维持。日出后,太阳辐射增强,有利于雾发生和维持的地面辐射降温、逆温和动力条件逐渐消失,雾逐渐消散。  相似文献   

4.
江苏一次冬季强浓雾天气持续和消散诊断分析   总被引:3,自引:3,他引:0  
本文利用常规气象观测资料、NCEP再分析资料及加密自动气象站资料对2006年12月24—27日江苏省持续了4 d的大雾天气进行分析,重点对强浓雾天气的持续和消散特征进行了诊断研究。结果表明:此次雾在辐射降温条件下形成,在暖平流作用下辐射雾转为平流雾并且增强;暖湿平流为雾的发展提供了有利的水汽和热力条件;中高层辐合下沉增温和低层弱上升运动,使得逆温层稳定维持,是浓雾持续不消有利的动力条件;雾消散阶段,低层正涡度平流南下,使大气层结出现位势不稳定,伴随着冷空气入侵,辐散下沉,垂直运动相应增大,逆温层彻底被破坏,动力和热力条件相配合最终导致雾消散。  相似文献   

5.
为进一步了解平流海雾的形成、发展和消散过程特点和机制,利用风廓线雷达、自动观测、探空、数值产品以及常规气象观测等资料,分析了2014年2月17—18日珠海三灶机场一次平流海雾过程的边界层温湿风三维演变特征及天气学成因。结果表明:边界层内暖湿平流输入、浅层辐合抬升、湍流加强、多层逆温结构以及夜间地面的辐射冷却有利于近地层饱和湿空气的凝结和逆温层的维持,是雾形成的主要物理机制;暖湿平流持续及湍流减弱或停歇是雾维持的原因;近地层偏北风干冷平流入侵并出现下沉气流及日间地面辐射增温使逆温层被破坏是雾消散的主要因素。  相似文献   

6.
利用逐5 min地面观测资料、探空资料、风云四号卫星云图以及NCEP 1°×1°再分析资料,分析2020年2月1—2日出现在榆林市的一次浓雾天气成因及维持机制。结果表明:此次浓雾属于辐射雾,发生在500 hPa为较平直纬向气流,700 hPa和850 hPa盛行弱偏北风,地面处于均压场中的大尺度环流背景下。大雾出现前雾区有降雪,降雪后空气湿度达到饱和,地面维持3 m/s以下弱偏北风,夜间辐射降温,气温下降至露点温度,饱和水汽凝结成小水珠,大雾得以形成和发展;雾区上空850 hPa上逆温层稳定存在,影响动量的垂直交换,使得水汽在近地层长时间集聚,是浓雾得以维持12 h的主要原因;日出后地面气温回升,近地面动量下传和冷空气入侵,垂直扩散增强,浓雾得以快速消散。分析浓雾期间动力和水汽条件发现,大雾出现前,水汽在雾区上空辐合,为大雾的形成提供了水汽基础;大雾维持阶段,雾区上空层结稳定,近地面有逆温层存在;大雾消散阶段,逆温层被破坏,低层转为辐散气流,浓雾快速消散。  相似文献   

7.
本文利用卫星资料,站点资料,再分析资料结合HYSPLIT-4模式对2008年1月8-10日发生在东海的一次海雾过程进行研究,观测分析表明:此次海雾是辐射冷却-平流雾,大尺度环流场为其发生了提供了背景场,冷暖空气相互作用冷凝成雾,海洋锋区决定了海上雾区"楔形"形状;在海雾形成前,已有接地的逆温层存在,逆温层使夜间辐射冷却,高空暖平流,低层冷空气渗入等多方面结果,低层湍流触发海雾形成,海雾形成于不接地的逆温层中,强湍流导致海雾的消散;海雾期间风速较小,风向不定,并且冬季海雾浅薄,雾顶高度在100m左右。以上结果有利于对冬季东海海雾的理解,以及为海雾预报提供新的思路。  相似文献   

8.
陕西冬季一次大雾天气的数值模拟和生消机制分析   总被引:3,自引:1,他引:2  
利用非静力平衡中尺度模式WRF、NCE P1°×1°再分析资料、高空地面资料,模拟分析2005年12月30—31日发生在陕西的大雾天气过程。结果表明,模拟结果和实况相似,尤其是雾的分布特征和生消时间。逆温层的发展、维持和近地层较高的相对湿度对雾的产生和发展起着重要作用;近地层的微风有利于雾产生、发展。地形追随坐标中0.85层(约1000m)以上的西北气流,有利于下沉增温,在低层形成逆温层。气温升高、湿度降低及逆温层的破坏是大雾消散的主要原因。  相似文献   

9.
南京冬季平流雾的生消机制及边界层结构观测分析   总被引:7,自引:0,他引:7  
利用系留飞艇边界层要素探测系统等设备,对2006年12月24q7日发生在南京地区的雾日边界层结构进行了综合探测,深入研究了这次平流雾的生消机制及边界层结构。结果表明:此次雾属于比较典型的平流雾,生成和维持主要决定于暖湿气流和系统性下沉运动,消散主要是干冷空气南下造成的;雾项下降阶段出现了双层结构,中层逆温是逆温主层,属于下沉逆温及平流逆温,主逆温层强中心始终位于雾顶附近或处于雾顶之下;风速随高度呈现多峰分布,中层急流与强度较弱的中上层和上层急流合并后,又与下层急流出现了一强一弱的波动;在风速较小时,风场趋于均匀化;雾消散时,低层风场趋于线性化;雾主要的水汽来源是暖湿气流;比湿场与风场有较好的时空分布对应性,主逆温层强中心也是逆湿强中心,风场与温度场共同主导了比湿场的时空分布。  相似文献   

10.
河南省一次大雾的数值模拟及生消机制分析   总被引:1,自引:0,他引:1  
应用非静力平衡中尺度模式MM5及NCEP资料和高空地面资料,模拟分析了2006年1月28日发生在河南省的一次大雾天气过程,结果发现:这次雾体最强的时段在日出后1~2h内,相对湿度下降的拐点滞后于气温回升的拐点2h左右;先出现贴地逆温再出现大雾,逆温最强的时段也是雾体最强的时段,逆温层顶始终覆盖在雾体上方;近地面的微风和风向的转变,有利于雾体的形成和向上发展,风向转变的时间也是雾体形成的时间;增温、减湿和逆温层的破坏是大雾消散的主要原因。  相似文献   

11.
Using the International Comprehensive Ocean-Atmosphere Data Set(ICOADS) and ERA-Interim data, spatial distributions of air-sea temperature difference(ASTD) in the South China Sea(SCS) for the past 35 years are compared,and variations of spatial and temporal distributions of ASTD in this region are addressed using empirical orthogonal function decomposition and wavelet analysis methods. The results indicate that both ICOADS and ERA-Interim data can reflect actual distribution characteristics of ASTD in the SCS, but values of ASTD from the ERA-Interim data are smaller than those of the ICOADS data in the same region. In addition, the ASTD characteristics from the ERA-Interim data are not obvious inshore. A seesaw-type, north-south distribution of ASTD is dominant in the SCS; i.e., a positive peak in the south is associated with a negative peak in the north in November, and a negative peak in the south is accompanied by a positive peak in the north during April and May. Interannual ASTD variations in summer or autumn are decreasing. There is a seesaw-type distribution of ASTD between Beibu Bay and most of the SCS in summer, and the center of large values is in the Nansha Islands area in autumn. The ASTD in the SCS has a strong quasi-3a oscillation period in all seasons, and a quasi-11 a period in winter and spring. The ASTD is positively correlated with the Nio3.4 index in summer and autumn but negatively correlated in spring and winter.  相似文献   

12.
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   

13.
Various features of the atmospheric environment affect the number of migratory insects, besides their initial population. However, little is known about the impact of atmospheric low-frequency oscillation(10 to 90 days) on insect migration. A case study was conducted to ascertain the influence of low-frequency atmospheric oscillation on the immigration of brown planthopper, Nilaparvata lugens(Stl), in Hunan and Jiangxi provinces. The results showed the following:(1) The number of immigrating N. lugens from April to June of 2007 through 2016 mainly exhibited a periodic oscillation of 10 to 20 days.(2) The 10-20 d low-frequency number of immigrating N. lugens was significantly correlated with a low-frequency wind field and a geopotential height field at 850 h Pa.(3) During the peak phase of immigration, southwest or south winds served as a driving force and carried N. lugens populations northward, and when in the back of the trough and the front of the ridge, the downward airflow created a favorable condition for N. lugens to land in the study area. In conclusion, the northward migration of N. lugens was influenced by a low-frequency atmospheric circulation based on the analysis of dynamics. This study was the first research connecting atmospheric low-frequency oscillation to insect migration.  相似文献   

14.
The atmospheric and oceanic conditions before the onset of EP El Ni?o and CP El Ni?o in nearly 30 years are compared and analyzed by using 850 hPa wind, 20℃ isotherm depth, sea surface temperature and the Wheeler and Hendon index. The results are as follows: In the western equatorial Pacific, the occurrence of the anomalously strong westerly winds of the EP El Ni?o is earlier than that of the CP El Ni?o. Its intensity is far stronger than that of the CP El Ni?o. Two months before the El Ni?o, the anomaly westerly winds of the EP El Ni?o have extended to the eastern Pacific region, while the westerly wind anomaly of the CP El Ni?o can only extend to the west of the dateline three months before the El Ni?o and later stay there. Unlike the EP El Ni?o, the CP El Ni?o is always associated with easterly wind anomaly in the eastern equatorial Pacific before its onset. The thermocline depth anomaly of the EP El Ni?o can significantly move eastward and deepen. In addition, we also find that the evolution of thermocline is ahead of the development of the sea surface temperature for the EP El Ni?o. The strong MJO activity of the EP El Ni?o in the western and central Pacific is earlier than that of the CP El Ni?o. Measured by the standard deviation of the zonal wind square, the intensity of MJO activity of the EP El Ni?o is significantly greater than that of the CP El Ni?o before the onset of El Ni?o.  相似文献   

15.
正The Taal Volcano in Luzon is one of the most active and dangerous volcanoes of the Philippines. A recent eruption occurred on 12 January 2020(Fig. 1a), and this volcano is still active with the occurrence of volcanic earthquakes. The eruption has become a deep concern worldwide, not only for its damage on local society, but also for potential hazardous consequences on the Earth's climate and environment.  相似文献   

16.
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   

17.
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   

18.
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   

19.
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   

20.
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