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1.
热带气旋过程中海-气界面热量交换   总被引:4,自引:1,他引:3  
为探索热带气旋与海洋相互作用,采用国家海洋局南海分局Marex(马瑞克斯)数据浮标实测资料,计算了1986年南海的7个热带气旋海气界面热量交换值.结果表明:热带气旋海气界面热量交换强烈,主要贡献来自潜热通量;热带气旋环流内水温、气温均是下降趋势,气温下降更为明显;夏季热带气旋环流内,感热通量会出现负值,海面有效反射辐射通量出现减弱现象;秋季热带气旋环流内,感热通量和海面有效反射辐射通量显著加强;在热带气旋环流内,海面吸收的短波辐射通量均出现减弱现象;热带气旋环流内受到冷空气影响时,感热变得相当重要,热带气旋表现为对海洋的响应为主.  相似文献   

2.
热带西太平洋潜热通量异常影响华南6月降水的模拟研究   总被引:2,自引:0,他引:2  
通过统计分析和区域气候模式RegCM3的模拟试验,对热带西太平洋关键区潜热通量异常影响华南6月旱涝的机制进行研究。结果表明:(1) 华南6月的降水与热带西太平洋5月和6月的潜热通量都存在负相关关系,特别是与5月热带西太平洋关键区的潜热通量存在更为显著的滞后负相关。(2) 热带西太平洋关键区潜热通量异常是影响华南6月旱涝的重要因子,其概念模型是:5月和6月热带西太平洋潜热通量异常增高,在其西北侧对流层低层出现一个异常的气旋性环流,华南地区位于气旋性环流西侧,为东北风异常,不利于西南季风进入我国华南地区,水汽减少。同时,形成一个潜热通量异常区上升、而在华南地区下沉的垂直环流,华南降水减少,导致干旱发生。当5月和6月热带西太平洋潜热通量异常减少,在其北侧出现异常反气旋式环流,华南地区处于环流西侧,西南气流加强,有利于水汽输送。同时,出现一个热带西太平洋潜热通量区下沉、而华南地区上升的距平垂直环流,造成华南地区洪涝多雨。   相似文献   

3.
热带太平洋-印度洋海温异常综合模的数值模拟   总被引:1,自引:0,他引:1  
通过数值模拟及结果的合成分析,对热带太平洋-印度洋异常海温综合模态的三维热力结构、动力结构及其发生发展的可能机制进行了研究.数值模拟结果的分析表明,太平洋、印度洋海温异常的综合模态在表层、次表层的表现都很明显,即在赤道西印度洋、中东太平洋的海温偏高(低)时,赤道西太平洋、东印度洋的海温偏低(高),该模态还存在着显著的年变化特征、年际变化特征以及年代际变化特征.数值模拟的合成分析结果表明,异常的海表风应力引起表层洋流异常,表层洋流异常及由其引起的海表高度异常可导致次表层海水环流的异常,海洋环流异常导致的平流热输送异常是海温形成异常综合模态的主要原因之一,垂直输送是形成次表层海温综合模态的主要原因.平流热输送过程对海表温度变异的贡献是:在事件发生到盛期阶段促进了次表层海温异常综合模态的形成,在盛期到消亡阶段次表层的平流过程阻碍其进一步发展;短波辐射是海洋的主要热力来源,海表面异常的净短波辐射通量、潜热通量是表层海温形成异常模态的主要热力学原因,异常的海表面净短波辐射通量、潜热通量、感热通量在到达盛期阶段后抑制其进一步发展.  相似文献   

4.
热带印度洋海表热收支平衡极大地影响着周边的气候变化,对此的精确模拟是提高海气耦合模式模拟区域气候能力的重要一方面。本文使用不同数据来源的格点资料集OAFlux和NOCS-V2的海表通量产品,评估了FGOALS-g2和FGOALS-s2两个模式对热带印度洋海表热收支平衡的模拟结果。发现模拟净热通量存在海盆尺度的低估,来源于潜热通量的高估。相对而言FGOALS-s2模拟的辐射通量误差更大。模式无法模拟出净热通量的减少趋势,主因在于对潜热通量趋势模拟能力不足。  相似文献   

5.
用低阶大气环流谱模式就前期冬春季南海-热带东印度洋(10 oN~15 oS, 90~120 o E) 海温异常对南海夏季风的影响进行了数值试验。结果表明, 当南海-热带东印度洋海温异常偏暖时,其南北两侧大气低层出现异常气旋性环流,高层出现异常反气旋性环流,其东西两侧, 在南海-热带西太平洋大气低层出现强大的异常辐合,高层出现强大的异常辐散;在热带西印度洋大气低层为明显的辐散,高层为明显的辐合,得到了与Gill理论相一致的结论。此时大气低层赤道两侧异常气旋性环流阻挡了赤道索马里越赤道SW气流进入南海, 加强了赤道西风, 并明显减弱了澳大利亚越赤道SW气流,菲律宾以东的异常反气旋性环流加强了西太平洋副热带高压, 使其位置偏南偏西, 同时大气高层印度洋上空的异常东风加强了南亚高压, 从而导致南海夏季风强度减弱, 爆发可能推迟。在南海-热带东印度洋海温异常偏冷时,大气低层赤道两侧异常反气旋性环流减弱了赤道索马里越赤道SW气流, 加强了澳大利亚越赤道SW气流,菲律宾东北部的异常气旋性环流不利于其东侧的副热带高压发展, 同时大气高层印度洋上空的异常西风减弱南亚高压强度,有利于南海夏季风加强, 爆发可能提前。  相似文献   

6.
刘琳  于卫东  刁新源 《大气科学》2008,32(5):1083-1093
大气环流的变异是热带印度洋偶极子(IOD)事件研究中的一个重要问题。本文从风场旋度分量和散度分量角度出发,利用观测资料和大气环流模式,对IOD事件发生时热带印度洋海区上空的大气环流变化进行了分析,揭示出风场不同分量在IOD事件期间的变化特征。研究结果表明,热带印度洋大气环流系统在IOD事件期间,旋度分量和散度分量在垂直方向上呈现明显的一阶斜压形式,而在水平方向上呈现明显的对称分布特征。对低空(850 hPa)来说,无辐散流函数距平场在IOD事件正位相期间表现为关于赤道对称的一对反气旋式环流;无旋度分量在IOD事件正位相期间的响应表现为东印度洋辐散、西印度洋辐合;大气环流的两种分量场均可以在赤道印度洋地区产生距平意义下的纬向东风,正是这种形式的距平东风使得IOD事件依靠海气系统正反馈机制得以维持和发展。而高空(200 hPa)大气环流形式刚好与850 hPa相反。  相似文献   

7.
研究了前期热带海温分布型对6月西北太平洋异常环流的影响。结果表明,奇异值分解(SVD)的前期夏季、秋季至冬季热带海洋第一模态呈现出印度洋全海盆一致型海温异常和东太平洋西伸显著的ENSO事件,该模态与6月西北太平洋反气旋(气旋)环流场没有明显的关联。在第二模态中,前期热带太平洋海表温度呈现为ENSO正位相向负位相转换特征,印度洋海表温度变化呈现出赤道东南印度洋(90~110 °E,10 °S~0 °)显著的准IOD事件的变化特征。而这一联合模态与6月西北太平洋异常反气旋(气旋)环流场有显著关联。关联的可能原因是前期海温为El Ni?o和正IOD时,横跨热带印度洋-太平洋的沃克环流的减弱导致在西太平洋-海洋大陆的负降水异常,在Matsuno-Gill效应下西北太平洋形成反气旋异常环流。同时由于两大洋的共同作用和局地海气相互作用使得该环流加强并维持到6月。   相似文献   

8.
印度洋潜热通量对南海夏季风爆发的影响   总被引:2,自引:0,他引:2  
利用OAFlux热通量资料和ERA-Interim高度场资料,分析了热带印度洋区域潜热通量的变化与南海夏季风爆发之间的关系,初步探讨了热带印度洋潜热通量变化对南海夏季风爆发早晚的影响过程。结果表明,2月热带印度洋区域的潜热通量与南海夏季风爆发之间存在密切的联系,当2月热带印度洋区域潜热通量较常年偏多(少)时,当年南海夏季风爆发偏晚(早)。当2月热带印度洋的潜热通量异常偏多(少)时,海洋向大气释放更多(少)的潜热,潜热通量通过对流凝结作用对大气加热形成大气热源,再通过大气环流逐渐影响2—4月的高度场,使得南海上空的850 hPa高度场出现异常偏高(低),即副热带高压偏强(弱)。异常强(弱)的副热带高压结合孟加拉湾弱(强)的异常西南风,造成南海夏季风爆发偏晚(早)。因此可以认为热带印度洋2月的潜热通量变化是影响南海夏季风爆发的重要因素。   相似文献   

9.
本文利用1951—2010年NCEP/NCAR再分析月平均资料研究了热带海表面温度对南亚高压与西太平洋副热带高压发展变化的影响,得到以下主要结论:在两高压强年与暖海温年(两高压弱年与冷海温年)里,冬、春两季赤道印度洋、太平洋海温距平呈现显著的正?负?正(负?正?负)的厄尔尼诺(拉尼娜)现象,中南半岛附近的对流层高层产生异常西风(东风)气流,有利于(不利于)南侧异常反气旋环流的产生,从而促进(阻碍)南亚高压发展;菲律宾海域的对流层产生异常下沉(上升)气流,有利于(不利于)西北侧异常反气旋环流的产生,从而促进(阻碍)低层西太副高的发展。夏季,热带印度洋的暖海温(冷海温)有效地增加(降低)了当地的对流效应,使大气对流层温度增暖(减低),影响南亚高压与西太平洋副热带高压的发展。  相似文献   

10.
利用欧洲中期天气预报中心的ERA5再分析资料,分析中高纬度大尺度环流异常对2022年盛夏长江中下游地区大范围极端高温事件的影响。结果表明,此次极端高温异常主要受到东亚副热带异常反气旋和北部异常气旋的影响。该经向偶极型环流异常与北大西洋涛动(North Atlantic Oscillation,NAO)和英国-鄂霍次克海走廊型遥相关型(British-Okhotsk Corridor,BOC)密切相关。NAO正位相关联的副热带急流波列有利于副热带反气旋的形成。同时,正位相的BOC与丝绸之路遥相关耦合,有利于经向偶极型环流模态的形成。在该环流模态的影响下,对流层高层的南亚高压和西风急流明显增强且东伸,中低层西太平洋副热带高压增强西伸。异常高压控制下的下沉气流以及西风急流出口区右侧的下沉气流通过绝热下沉增温与晴空短波辐射增温,促进地表气温升高,进而引发极端高温异常。  相似文献   

11.
This paper analyzes the possible influence of boreal winter Arctic Oscillation/North Atlantic Oscillation (AO/ NAO) on the Indian Ocean upper ocean heat content in summer as well as the summer monsoonal circulation. The strong interannual co-variation between winter 1000-hPa geopotential height in the Northern Hemisphere and summer ocean heat content in the uppermost 120 m over the tropical Indian Ocean was investigated by a singular decomposition analysis for the period 1979–2014. The second paired-modes explain 23.8% of the squared covariance, and reveal an AO/NAO pattern over the North Atlantic and a warming upper ocean in the western tropical Indian Ocean. The positive upper ocean heat content enhances evaporation and convection, and results in an anomalous meridional circulation with ascending motion over 5°S–5°N and descending over 15°–25°N. Correspondingly, in the lower troposphere, significantly anomalous northerly winds appear over the western Indian Ocean north of the equator, implying a weaker summer monsoon circulation. The off-equator oceanic Rossby wave plays a key role in linking the AO/NAO and the summer heat content anomalies. In boreal winter, a positive AO/NAO triggers a down-welling Rossby wave in the central tropical Indian Ocean through the atmospheric teleconnection. As the Rossby wave arrives in the western Indian Ocean in summer, it results in anomalous upper ocean heating near the equator mainly through the meridional advection. The AO/NAO-forced Rossby wave and the resultant upper ocean warming are well reproduced by an ocean circulation model. The winter AO/NAO could be a potential season-lead driver of the summer atmospheric circulation over the northwestern Indian Ocean.  相似文献   

12.
印度洋海气热通量交换研究   总被引:13,自引:0,他引:13  
周天军  张学洪 《大气科学》2002,26(2):161-170
基于综合海洋大气资料集(COADS)资料的研究表明,热带印度洋的海气热通量交换具有明显的区域性特征,在部分海域,如冬季热带印度洋的中东部、夏季的热带西印度洋和北印度洋,它主要表现为海洋对大气的强迫.海洋对大气的这种强迫,主要是通过潜热加热实现的.与潜热加热相比,感热加热尽管是一个小量,但感热异常与表层海温的显著相关,较之潜热明显超前.无论冬季还是夏季,热带印度洋都存在大面积海域,其SST变化难以通过海气热通量交换来解释.  相似文献   

13.
In the study authors analyzed the interannual relationship between the Arctic Oscillation (AO)/North Atlantic Oscillation (NAO) and the tropical Indian Ocean (TIO) precipitation in boreal winter for the period 1979–2009. A significant simultaneous teleconnection between them is found. After removing the El Niño/Southern Oscillation and Indian Ocean dipole signals, the AO/NAO and the TIO precipitation (0°–10°S, 60°–80°E) yield a correlation of +0.56, which is also consistent with the AO/NAO-outgoing longwave radiation correlation of ?0.61. The atmospheric and oceanic features in association with the AO/NAO-precipitation links are investigated. During positive AO/NAO winter, the Rossby wave guided by westerlies tends to trigger persistent positive geopotential heights in upper troposphere over about 20°–30°N and 55°–70°E, which is accompanied by a stronger Middle East jet stream. Meanwhile, there are anomalous downward air motions, strengthening the air pressure in mid-lower troposphere. The enhanced Arabian High brings anomalous northern winds over the northern Indian Ocean. As a result the anomalous crossing-equator air-flow enhances the intertropical convergence zone (ITCZ). On the other hand, the anomalous Ekman transport convergence by the wind stress curl over the central TIO deepens the thermocline. Both the enhanced ITCZ and the anomalous upper ocean heat content favor in situ precipitation in the central TIO. The AO/NAO-TIO precipitation co-variations in the IPCC AR4 historical climate simulation (1850–1999) of Bergen Climate Model version 2 were investigated. The Indian Ocean precipitation anomalies (particularly the convective precipitation along the ITCZ), in conjunction with the corresponding surface winds and 200 hPa anticyclonic atmospheric circulation and upper ocean heat contents were well reproduced in simulation. The similarity between the observation and simulation support the physical robustness of the AO/NAO-TIO precipitation links.  相似文献   

14.
印度洋对ENSO事件的响应:观测与模拟   总被引:11,自引:3,他引:8  
观测事实显示,在El Ni(n~)o期间,伴随着赤道中东太平洋表层海温(SST)的升高,热带印度洋SST出现正距平.作者利用海气耦合模式模拟了印度洋对ENSO事件的上述响应,并进而讨论了其物理机制.所用模式为法国国家科研中心Pierre-Simon-Laplace 全球环境科学联合实验室(IPSL)发展的全球海气耦合模式.该模式成功地控制了气候漂移,能够合理再现印度洋的基本气候态.观测中与ENSO相关的热带印度洋SST变化,表现为全海盆一致的正距平,并且这种变化要滞后赤道中东太平洋SST变化大约一个季度,意味着它主要是对东太平洋SST强迫的一种遥响应,模式结果也支持这一机制,尽管模式中的南方涛动现象被夸大了,使得模拟的与ENSO相关联的SST正距平的位置南移,阿拉伯海和孟加拉湾被负距平(而不是正距平)所控制.研究表明,东太平洋主要通过大气桥影响潜热释放来影响印度洋SST变化.赤道东太平洋El Ni(n~)o事件的发展,导致印度洋上空风场异常自东而西传播;伴随着风场的变化,潜热发生相应变化,并最终导致SST异常的发生.非洲东海岸受索马里急流控制的海域,其SST的变化不能简单地利用热通量的变化来解释.证据显示,印度洋的增暖是ENSO事件发生的结果而不是其前期信号.  相似文献   

15.
Satellite observations reveal a much stronger intraseasonal sea surface temperature (SST) variability in the southern Indian Ocean along 5-10oS in boreal winter than in boreal summer. The cause of this seasonal dependence is studied using a 2?-layer ocean model forced by ERA-40 reanalysis products during 1987-2001. The simulated winter-summer asymmetry of the SST variability is consistent with the observed. A mixed-layer heat budget is analyzed. Mean surface westerlies along the ITCZ (5-10oS) in December-January-February (DJF) leads to an increased (decreased) evaporation in the westerly (easterly) phase of the intraseasonal oscillation (ISO), during which convection is also enhanced (suppressed). Thus the anomalous shortwave radiation, latent heat flux and entrainment effects are all in phase and produce strong SST signals. During June-July-August (JJA), mean easterlies prevail south of the equator. Anomalies of the shortwave radiation tend to be out of phase to those of the latent heat flux and ocean entrainment. This mutual cancellation leads to a weak SST response in boreal summer. The resultant SST tendency is further diminished by a deeper mixed layer in JJA compared to that in DJF. The strong intraseasonal SST response in boreal winter may exert a delayed feedback to the subsequent opposite phase of ISO, implying a two-way air-sea interaction scenario on the intraseasonal timescale. Citation: Li, T., F. Tam, X. Fu, et al., 2008: Causes of the intraseasonal SST variability in the tropical Indian ocean, Atmos. Oceanic Sci. Lett., 1, 18-23  相似文献   

16.
基于1979~2019年日本气象厅提供的地表感热与大气环流再分析资料,美国国家海洋和大气管理局提供的月均海表温度数据和国家气象信息中心提供的月降水数据,分析了夏季伊朗高原感热和热带印度洋海温与同期塔里木盆地降水的可能联系。奇异值分解分析表明,两个地区热力异常均与塔里木盆地夏季降水联系紧密,可以通过影响500 hPa风场和水汽输送来调制塔里木盆地夏季降水的变化。当伊朗高原感热和热带印度洋海温均偏强(弱)时,对应中亚上空受异常气旋(反气旋)控制,蒙古高原上空为反气旋(气旋)控制,二者共同作用塔里木盆地上空盛行异常偏南(北)风,形成有利(不利)的动力条件;同时印度半岛上空受异常反气旋(气旋)环流控制,中亚上空为异常气旋(反气旋),阿拉伯海水汽可(不可)由以上两个系统两步输送至新疆上空,导致盆地夏季降水整体偏多(少)。当伊朗高原和热带印度洋热力异常反相变化时,盆地降水空间差异性较大,部分区域降水偏多,部分地区降水偏少。  相似文献   

17.
This study aims to explore the relative role of oceanic dynamics and surface heat fluxes in the warming of southern Arabian Sea and southwest Indian Ocean during the development of Indian Ocean Dipole (IOD) events by using National Center for Environmental Prediction/National Center for Atmospheric Research (NCEP/NCAR) daily reanalysis data and Global Ocean Data Assimilation System (GODAS) monthly mean ocean reanalysis data from 1982 to 2013, based on regression analysis, Empirical Orthogonal Function (EOF) analysis and combined with a 2? layer dynamic upper-ocean model. The results show that during the initial stage of IOD events, warm downwelling Rossby waves excited by an anomalous anticyclone over the west Indian Peninsula, southwest Indian Ocean and southeast Indian Ocean lead to the warming of the mixed layer by reducing entrainment cooling. An anomalous anticyclone over the west Indian Peninsula weakens the wind over the Arabian Sea and Somali coast, which helps decrease the sea surface heat loss and shallow the surface mixed layer, and also contributes to the sea surface temperature (SST) warming in the southern Arabian Sea by inhibiting entrainment. The weakened winds increase the SST along the Somali coast by inhibiting upwelling and zonal advection. The wind and net sea surface heat flux anomalies are not significant over the southwest Indian Ocean. During the antecedent stage of IOD events, the warming of the southern Arabian Sea is closely connected with the reduction of entrainment cooling caused by the Rossby waves and the weakened wind. With the appearance of an equatorial easterly wind anomaly, the warming of the southwest Indian Ocean is not only driven by weaker entrainment cooling caused by the Rossby waves, but also by the meridional heat transport carried by Ekman flow. The anomalous sea surface heat flux plays a key role to damp the warming of the west pole of the IOD.  相似文献   

18.
Based on 15 Coupled Model Intercomparison Project (CMIP) phase 3 (CMIP3) and 32 CMIP phase 5 (CMIP5) models, a detailed diagnosis was carried out to understand what compose the biases in simulation of the Indian Ocean basin mode (IOBM) and its capacitor effect. Cloud-radiation-SST (CRS) feedback and wind-evaporation-SST (WES) feedback are the two major atmospheric processes for SST changes. Most CMIP models simulate a stronger CRS feedback and a weaker WES feedback. During boreal fall of the El Niño/Southern Oscillation developing year and the following spring, there are weak biases of suppressed rainfall anomalies over the Maritime Continent and anomalous anticyclone over South Indian Ocean. Most CMIP models simulate reasonable short wave radiation (SWR) and weaker latent heat flux (LHF) anomalies. This leads to a weak bias of atmospheric processes. During winter, however, the rainfall anomalies are stronger due to west bias, and the anomalous anticyclone is comparable to observations. As such, most models simulate stronger SWR and reasonable LHF anomalies, leading to a strong bias of atmospheric processes. The thermocline feedback is stronger in most models. Though there is a deep bias of climatology thermocline, most models capture reasonable sea surface height-induced SST anomalies. Therefore, the effect of oceanic processes offset the weak bias of atmospheric processes in spring, and the tropical Indian Ocean warming persists into summer. However, anomalous northwest Pacific (NWP) anticyclone is weaker due to weak and west bias of the capacitor effect. The unrealistic western Pacific SST anomalies in models favor the westward extension of Rossby wave from the Pacific, weakening the effect of Kelvin wave from the Indian Ocean. Moreover, the western Pacific warming forces the NWP anticyclone move farther north than observations, suggesting a major forcing from the Pacific. Compared to CMIP3, CMIP5 models simulate the feedbacks more realistically and display less diversity. Thus, the overall performance of CMIP5 models is better than that of CMIP3 models.  相似文献   

19.
本文分别研究了印度洋海温信息区和海-气能量输送的年、季分布特征,讨论了印度洋热带地区海-气相互作用的一般形态。得出,印度洋海温可划出三个信息区,在20°s附近和阿拉伯海10°N附近各有—个东西向的最大海-气能量输送区。它们都有明显的季节变化,印度洋重要海区是阿拉伯海和东赤道印度洋,因为该两个海区不仅能表征印度洋海洋热状况的基本性质,而且是印度洋海-气相互作用过程的关键海区。   相似文献   

20.
热带太平洋和印度洋热源对大气影响的季节变化特征   总被引:2,自引:0,他引:2  
本文利用1970—1979年COADS2°×2°格点月平均资料,计算了30°S—30°N热带太平洋和印度洋洋面上的有效长波辐射、感热和潜热通量以及它们的季节变化和年变化。结果指出:在冬季半球热带海洋外侧有大量的长波辐射、感热和潜热向大气输送,输送通量的季节变化大;热带太平洋地区西北部热通量的季节变化最大,赤道洋面地区热通量的年变化最小,潜热是洋面上热量输送的最大项,季节变化也最大;感热的输送量虽不及有效长波辐射,但其季节变化与有效长波辐射的变化相当;赤道地区是有效长波辐射和潜热通量的低值区,暖池地区是有效长波辐射的低值中心,靠近秘鲁海域的东南赤道太平洋是感热通量的负值区;热带太平洋西北部和阿拉伯海、孟加拉湾地区的热通量及年、季变化与亚洲季风有密切的关系,同时对我国和南亚地区的气候有重要的影响。   相似文献   

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