首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 189 毫秒
1.
2021 年冬季(2021 年12 月—2022 年2 月)大气环流特征为:北半球极涡呈多极型分布,中高纬环流呈3 波型分布。位势高度距平场显示,东亚中纬度地区处于正距平区,西伯利亚脊偏强,而东亚大槽较常年同期偏弱,冷空气活动偏少、强度偏强。我国近海出现了 8 次 8 级以上大风过程, 其中冷空气大风过程4 次,冷空气和温带气旋共同影响的大风过程3 次,冷空气和台风共同影响的大风过程1 次。我国近海未出现大范围的海雾过程。西北太平洋和南海共生成 2 个热带气旋,且均达到超强台风级,其中 2122 号台风“雷伊”是历史上 12 月在南海海域达到超强台风级的 2 个台风之一,也是历史上直接袭击南沙群岛的最强台风,还是影响南海最晚的超强台风。另外,全球其他海域共生成热带气旋14 个。我国近海出现2. 0 m 以上大浪过程的天数有56 d,约占冬季总日数的62%。冬季,我国近海海域呈明显降温趋势,北部海域的降温幅度明显大于南部海域,冬季海面温度较常年整体偏高。  相似文献   

2.
2019年冬季(2019年12月—2020年2月)大气环流特征为:北半球的极涡呈偶极型分布,中高纬呈3波型分布,西风带槽脊较常年明显偏弱。位势高度距平场显示,东亚中纬度地区处于正距平区,东亚大槽强度弱,冷空气强度较常年同期偏弱,大风过程显著偏少,我国近海共出现7次明显的8级以上大风过程,冷空气和温带气旋共同影响的大风过程有2次,冷空气与热带气旋共同影响的大风过程有2次。浪高在2 m 以上的海浪过程有10次。近海出现大范围的海雾过程12次,海雾区域主要出现在渤海、渤海海峡、黄海北部和中部海域、琼州海峡及北部湾,出雾时段多集中于夜间至早晨。海面温度随时间逐渐降低,其从北到南的温度差在冬季由22 ℃加大到27 ℃。西北太平洋和南海共有1个台风生成。  相似文献   

3.
2022年春季(3—5月)北半球极涡呈单极型分布,形状狭长,极涡强度与历史同期相当。北半球中高纬度西风带呈4波型分布。3月,我国北方的大部分地区及北部海域受西北气流控制;4月,东亚大槽加深,高压脊区较历史同期偏强;5月,中高纬环流调整为“两槽两脊”型。我国近海出现12次大风过程,其中冷空气大风过程4次,冷空气和温带气旋共同影响的大风过程3次,温带气旋大风过程4次,冷空气与热带气旋共同影响的大风过程1次。近海共出现10次比较明显的海雾过程,其中3月4次,4月3次,5月3次。西北太平洋和南海有2个热带气旋生成,接近常年同期平均值;全球其他海域有12个热带气旋生成,较历史同期平均值偏少5.7个。近海浪高2.0 m以上的海浪过程有12次,总日数为44 d。春季各月我国近海海面温度整体呈上升趋势,北方海域升温幅度大于南方海域。  相似文献   

4.
2020年秋季(9—11月)大气环流特征表现为,北半球极涡呈单极型分布,中高纬环流呈4波型。9—11月,欧亚大陆中高纬环流经向度不断加大,冷空气势力增强。西太平洋副热带高压较历史平均偏强,热带气旋活动频繁。我国近海出现了19次8级以上大风过程,其中冷空气大风过程6次,台风大风过程4次,入海气旋大风过程1次,冷空气与热带气旋共同影响的大风过程7次,冷空气和温带气旋共同影响的大风过程1次。西北太平洋和南海共生成13个热带气旋,其中10月共有7个热带气旋生成,追平10月热带气旋生成数的历史最高纪录;全球其他海域共生成热带气旋26个。我国近海未出现2 m以上大浪过程的天数仅有12 d,约占秋季总日数的13%。秋季,我国近海海域呈明显降温过程,北部海域的降温幅度明显大于南部海域,受连续北上影响我国北部海域的热带气旋活动影响,9月黄海东部及东海东部的海面温度较气候态明显偏低。  相似文献   

5.
2019年秋季(9—11月)大气环流特征为:北半球极涡呈绕极型分布,中高纬度环流呈4波型。随月份增加,欧亚大陆中高纬度环流的经向度不断加大,冷空气势力增强,但仍较历史平均偏弱。西太平洋副热带高压较历史平均偏强,热带气旋活动频繁。我国近海出现了17 次8级以上大风过程,其中冷空气大风过程有9次,热带气旋大风过程4次,冷空气与热带气旋共同影响的大风天气过程3次,冷空气和温带气旋共同影响的大风过程1次。西北太平洋和南海共生成16个热带气旋,全球其他海域生成热带气旋 27个。我国近海浪高在2 m以上的海浪过程有9次。秋季,我国近海海域海面温度逐月下降,北部海域的降温幅度明显大于南部海域。  相似文献   

6.
2021年春季(3—5月)的大气环流特征为:北半球极涡为偶极型分布,极涡较常年平均值偏强,中高纬度西风带呈现4波型。3月,南下冷空气活动偏弱,月内海雾过程频发。4月,北部海域受高压影响,低层形势场稳定,冷空气活动减弱。5月,我国近海受温带气旋影响出现大风天气。春季我国近海出现了5次8级以上大风过程,其中冷空气大风过程2次,冷空气和温带气旋共同影响的大风过程1次,温带气旋影响的大风过程2次。春季共有8次海雾过程,3月3次,4月2次,5月3次。近海浪高在2 m以上的海浪过程有8次,大浪日数偏少。西北太平洋和南海共生成2个台风。我国近海的海面温度整体呈上升趋势,东部和南部海域升温明显,南部和北部海域海面温度梯度増加。  相似文献   

7.
2018年秋季(9—11月)大气环流特征为:北半球极涡呈偶极型分布,中高纬度西风带呈5波型分布,且强度较夏季增强。9—10月,副热带高压位置偏西,强度偏强,热带气旋活动频繁;中高纬度西风带较为平直,槽脊活动不明显;11月,经向环流增大,冷空气势力增强。我国近海海域出现了13次8级以上的大风过程,其中6次主要是由冷空气和热带气旋共同影响造成的,冷空气大风过程有5次,热带气旋影响的大风过程有2次。我国近海浪高在2 m以上的海浪过程有10次。西北太平洋和南海共生成8个台风和1个热带低压,全球其他各大洋共有28个热带气旋,较常年偏多。海面温度整体呈下降趋势。未出现雷暴大风和大范围的海雾过程。  相似文献   

8.
聂高臻  黄彬 《山东气象》2022,42(1):74-82
2021年秋季(9—11月)北半球大气环流特征为:极涡整体呈单极型,中高纬环流呈5波型分布,欧亚地区西风带环流形势季节内调整大,副热带高压(以下简称“副高”)偏强,西伸明显。秋季我国近海大风过程主要由冷空气、温带气旋和热带气旋影响造成。在12次8级以上大风过程中,冷空气影响8次,温带气旋影响6次,台风影响4次。西北太平洋和南海共生成9个台风,其中5个台风进入我国近海,在东西带状分布的副高影响下,近海台风主要活跃于南部海域;全球其他海域共命名热带气旋18个。我国出现2 m以上大浪过程的日数为74 d,约占总日数的81%,大浪过程与大风过程联系密切。秋季我国近海海面温度整体偏高,随着冷空气的逐渐活跃,北部海区和沿岸海域海面降温迅速,沿岸海面温度梯度加大,我国近海海域中,海面温度梯度最大的区域出现在东海。  相似文献   

9.
2017年冬季(2017年12月—2018年2月)大气环流特征为:北半球极涡呈偶极型分布,中高纬度呈4波型。12月,亚洲中东部中高纬度环流经向度较大,有利于冷空气南下。2018年1月,西伯利亚冷高压较12月更强,冷空气自北向南影响我国近海。2月,冷空气活动减弱,有温带气旋入海并发展。我国近海出现了19次8级以上大风过程,其中冷空气大风过程14次,冷空气和温带气旋共同影响的大风过程2次,冷空气与热带气旋共同影响的大风过程1次,热带气旋大风过程2次。2 m以上的海浪过程有19次,未出现2 m以上大浪的天数仅有10 d。我国近海出现6次比较明显的海雾过程,出雾区域在北部湾附近海域,出雾时间在夜间—早晨时段。西北太平洋和南海共生成4个台风。海面温度整体呈下降趋势。  相似文献   

10.
2018年冬季(2018年12月—2019年2月)大气环流特征为:北半球极涡呈单极型分布,主体位于北冰洋上空偏向亚欧大陆一侧。12月,亚洲中东部中高纬环流经向度较大,利于冷空气南下;2019年1—2月,环流经向度减小,中高纬地区以纬向环流为主,冷空气势力减弱,东部及南部海区海雾过程增多。我国近海出现了17次8级以上大风过程,其中冷空气大风过程有13次,冷空气和温带气旋共同影响的大风过程有2次,冷空气与热带气旋共同影响的大风过程有1次, 温带气旋大风过程有1次。我国近海浪高在2 m以上的海浪过程有14次,2 m以上大浪的天数共计64 d。冬季共有10次比较明显的海雾过程,多在北部湾附近海域,出雾时间集中于夜间至早晨。南北海域海面温度之差为21~28 ℃,海面温度整体呈下降趋势。西北太平洋和南海有3个热带气旋活动。  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   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号