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91.
MJO对我国降水影响的季节调制和动力-统计降尺度预测   总被引:1,自引:0,他引:1  
吴捷  任宏利  许小峰  高丽 《气象》2018,44(6):737-751
利用1981—2016年中国区域CN05.1格点降水资料和EAR-Interim再分析资料,研究了季节循环对于热带大气季节内振荡(MJO)对我国降水影响的调制作用,并基于模式对MJO的预报建立了针对延伸期降水的动力-统计降尺度模型。结果表明,MJO对我国季节内降水异常的影响明显受到季节循环的调制。当MJO对流在热带印度洋活跃时,我国降水偏多的区域随季节由南向北推进;当MJO对流位于海洋性大陆地区时,在秋、冬季我国东部和高原大部分地区降水异常偏少,而到了春、夏季该关系反转。MJO对流和基本气流(特别是副热带西风急流)的位置和强度的变化所引起热带外环流响应的不同是造成这种季节性差异的重要原因。模式检验表明,BCC_AGCM2.2对目标候MJO的预报技巧可达18d以上,在此基础上利用模式预报MJO信息构建了随季节演变滚动的MJO动力-统计降尺度预测模型。独立样本检验表明,该模型在较长时效(10~20d)下对MJO高影响区低频降水异常的预报技巧高于模式的直接预报,特别是在MJO活跃时期对降水预报技巧的提升更加明显,这为MJO信号释用提供了新的思路。  相似文献   
92.
Climatologically, August is the month with the most tropical cyclone(TC) formation over the western North Pacific(WNP) during the typhoon season. In this study, the reason for abnormal TC activity during August is discussed—especially August 2014, when no TCs formed. The large-scale background of August 2014 is presented, with low-level large-scale easterly anomalies and anticyclonic anomalies dominating over the main TC genesis region, a weak monsoon trough system,and a strong WNP subtropical high(WPSH), leading to significantly reduced low-level convergence, upper-level divergence,and mid-level upward motion. These unfavorable large-scale conditions suppressed convection and cyclogenesis. In August2014, equatorial waves were inactive within the negative phase of the Madden–Julian Oscillation(MJO), with fewer tropical disturbances. Although the low-level vorticity and convection of those disturbances were partly promoted by the convective envelopes of equatorial waves, the integral evolution of disturbances, as well as the equatorial waves, were suppressed when propagating into the negative MJO phase. Moreover, the upper-level potential vorticity(PV) streamers associated with anticyclonic Rossby wave breaking events imported extratropical cold and dry air into the tropics. The peripheral tropospheric dryness and enhanced vertical wind shear by PV streamer intrusion combined with the negative MJO phase were responsible for the absence of TC formation over the WNP in August 2014.  相似文献   
93.
To date, the intraseasonal variation of raindrop size distribution(DSD) in response to the Madden–Julian Oscillation(MJO) has been examined only over the Indonesian Maritime Continent, particularly in Sumatra. This paper presents the intraseasonal variation of DSD over the Indian Ocean during the Cooperative Indian Ocean experiment on Intraseasonal Variability in the Year 2011(CINDY 2011) field campaign. The DSDs determined using a Joss–Waldvogel disdrometer,which was installed on the roof of the anti-rolling system of the R/V Mirai during stationary observation(25 September to 30 November 2011) at(8°S, 80.5°E), were analyzed. The vertical structure of precipitation was revealed by Tropical Rainfall Measuring Mission Precipitation Radar(version 7) data. While the general features of vertical structures of precipitation observed during the CINDY and Sumatra observation are similar, the intraseasonal variation of the DSD in response to the MJO at each location is slightly different. The DSDs during the active phase of the MJO are slightly broader than those during the inactive phase, which is indicated by a larger mass-weighted mean diameter value. Furthermore, the radar reflectivity during the active MJO phase is greater than that during the inactive phase at the same rainfall rate. The microphysical processes that generate large-sized drops over the ocean appear to be more dominant during the active MJO phase, in contrast to the observations made on land(Sumatra). This finding is consistent with the characteristics of radar reflectivity below the freezing level, storm height, bright band height, cloud effective radius, and aerosol optical depth.  相似文献   
94.
By adopting characteristic index data for the Western Pacific Subtropical High (WPSH) from the National Climate Center of China, U.S. National Centers for Environmental Prediction-National Center for Atmospheric Research (NCEP/NCAR) reanalysis data, and the National Oceanic and Atmospheric Administration (NOAA) sea surface temperature (SST) data, we studied the WPSH variability considering the background of climate warming by using a Gaussian filter, moving averages, correlation analysis, and synthetic analysis. Our results show that with climate warming over the past 60 years, significant changes in the WPSH include its enlarged area, strengthened intensity, westward extended ridge point and southward expanded southern boundary, as well as enhanced interannual fluctuations in all these indices. The western ridge point of the WPSH consistently varies with temperature changes in the Northern Hemisphere, but the location of the ridgeline varies independently. The intensity and area of the WPSH were both significantly increased in the late 1980s. Specifically, the western ridge point started to significantly extend westward in the early 1990s, and the associated interannual variability had a significant increase in the late 1990s; in addition, the ridgeline was swaying along the north-south-north direction, and the corresponding variability was also greatly enhanced in the late 1990s. With climate warming, the SST increase becomes more weakly correlated with the WPSH intensity enhancement but more strongly correlated with the westward extension of the ridge point in the equatorial central and eastern Pacific Ocean in winter, corresponding to an expanding WPSH in space. In the northern Pacific in winter, the SST decrease has a weaker correlation with the southerly location of the ridgeline but also a stronger correlation with the westward extension of the ridge point. In the tropical western Pacific in winter, the correlations of the SST decrease with the WPSH intensity enhancement, and the westward extension of the ridge point is strengthened. These observations can be explained by strengthened Hadley circulations, the dominant effects of the southward shift, and additional effects of the weakened ascending branch of the Walker circulation during warm climatological periods, which consequently lead to strengthened intensities, increased areas, and southward expansions of the WPSH in summer.  相似文献   
95.
马悦  梁萍  李文铠  何金海 《气象》2018,44(12):1593-1603
本文基于2001—2010年上海市11个基本气象站的逐日降水量和澳大利亚气象局的逐日大气低频振荡(MaddenJulian Oscillation,MJO)指数(包括RMM1和RMM2)资料,选取MJO指数作为预报因子,上海地区梅汛期降水量作为预报对象,建立了基于时空投影法(spatial-temporal projection model,STPM)的上海地区梅汛期降水延伸期预报模型。利用该模型对近6年(2011—2016年)的梅汛期降水进行回报试验,其预报技巧评估结果表明:该模型对未来10~25 d的降水具有较好预报效果,可较准确地预报出梅汛期3/4左右的降水量级和降水发生时段。其中,预报时效为10~20 d的预报技巧较高,而提前21~25 d的预报技巧略有下降。总体而言,基于MJO活动的STPM预报模型在上海地区梅汛期延伸期降水预报中具有较好的参考价值。  相似文献   
96.
The South China Sea Summer Monsoon(SCSSM) onset is characterized by an apparent seasonal conversion of circulation and convection. Accordingly, various indices have been introduced to identify the SCSSM onset date. However,the onset dates as determined by various indices can be very inconsistent. It not only limits the determination of onset dates but also misleads the assessment of prediction skills. In 2021, the onset time as identified by the circulation criteria was 20May, which is 12 days e...  相似文献   
97.
热带气旋对副热带高压短期时间尺度变化的影响   总被引:9,自引:1,他引:9  
罗哲贤 《气象学报》2001,59(5):549-559
文中用NCEP/NCAR逐日资料对西太平洋副热带高压的短期时间尺度演化进行了诊断研究,接 着对诊断结果进行了理论分析,并用一个正压原始方程模式实施数值试验。结果表明, 副热 带高压南侧东风气流中的热带气旋及其频散生成高值系统与副热带高压的相互作用,可以形 成台风北上副热带 高压断裂后的纬向非对称流型和脊线与纬圈斜交的现象;同时讨论了存在这种相互作用的约 束条件。  相似文献   
98.
孙淑清  马淑杰 《气象学报》2001,59(6):719-729
文中结合 1 998年长江流域的洪涝过程研究了太平洋的活动特征 ,探讨了副热带高压活动与海温的关系 ,以及视热源、水汽汇的特征与副高活动的关系等。首先描述了 1 998年太平洋副热带高压的基本特征 ,给出了它异常的季节位置、强度和形态 ,及其与长江流域降水异常的关系。SVD分析表明 ,1 997至 1 998年的 El Nino过程的演变特征所对应的太平洋副热带高压的最佳耦合模态是 :主体强而位置偏南 ,特别是其西部。赤道辐合带也偏弱 ;1 998年夏季副热带高压的基本特征正符合该模态的特征。热带地区东西向的垂直环流明显地出现东太平洋的异常上升气流与西太平洋的下沉距平气流。视热源、水汽汇的分布能很好地描写副热带高压区的季节位置和强度。副热带高压区为明显的 Q1<0的辐射冷却区和 Q2 <0的变干区。这种特征也有助于副热带高压区的维持。同样 ,视热源、水汽汇的分布也能很好地解释副热带高压区的季节内异常活动。在长江流域持续暴雨期和间隙期 ,Q1,Q2 所指示的副热带高压与雨带的相对位置有很大的差异。不同的热力结构能较好地解释副热带高压区的迅速南落 ,由此造成长江流域的二度梅  相似文献   
99.
南海夏季风爆发早晚的经向环流异常的机理研究   总被引:1,自引:0,他引:1  
南海夏季风爆发与东亚地区的局地经向环流密切相关.本文利用线性局地经向环流诊断模式,定量诊断分析了1979~2003年5月1~15日的局地经向环流及其在夏季风爆发早晚年的差异,分析找出了在该关键时段对经向环流异常有正贡献的主要因子,从而确立影响季风爆发的相应天气过程及贡献机制.结果表明,在季风爆发早年期间,局地经向环流异常呈现为"Hadley环流"形态:上升运动(下沉运动)影响南海中北部(江淮地区),低空非地转南风(北风)影响南海中南部(华南和江南地区).季风爆发晚年的情况则与季风爆发早年相反.对造成经向环流异常的各个因子进行定量分析发现,经向分布不均匀的潜热加热的贡献作用最大,其次是温度平流和西风动量输送过程,与越赤道气流有关的边界效应则对南海中南部的低空南风有一定贡献.相应的天气学分析表明,季风爆发偏早年的副热带高空急流强度偏强且位置偏南,其动量输送过程导致对流层上层出现非地转南风、急流轴南侧(北侧)的华南(华北)地区出现高空辐散(辐合)和低层辐合上升(辐散下沉).与此同时,中纬度西风带扰动的南下和副热带高压脊从南海地区的撤出,中低层温度平流导致华中地区冷却和南海中北部增暖,进一步加强低纬地区上升、中纬地区下沉的经向环流异常.华南地区异常的非地转北风与南海中南部异常的非地转南风,显著加强了南海中北部的低空水汽辐合和对流潜热释放,从而激发出强烈上升运动.由此可见,中低纬天气系统配置能有效调节中国东部及南海地区的潜热加热和冷暖平流的南北分布,从而引起与季风爆发对应的局地经向环流的显著变化.  相似文献   
100.
夏季MJO持续异常的主要特征分析   总被引:2,自引:1,他引:1  
严欣  琚建华 《大气科学》2016,40(5):1048-1058
在MJO传播过程中,其活动中心并不总是规律地沿赤道东传。本文通过资料分析发现,夏季MJO的活动中心会出现东传停滞的情况,表现为MJO在赤道太平洋持续异常活跃或者在印度洋持续异常活跃两种形式。为更好描述MJO这种东传不明显的异常特征,本文定义了一个描述MJO持续异常的指数,并据此对夏季MJO持续异常的主要特征进行分析。通过小波分析的方法,发现夏季MJO持续异常时其振荡周期会出现缩短或变弱。通过对MJO持续异常状况下的大气环流进行合成对比分析后发现,夏季MJO的持续异常会对热带大气环流造成显著的影响。具体表现为:MJO夏季在赤道太平洋(印度洋)持续活跃的时候,赤道沃克环流减弱(增强),西太平洋哈得来环流增强(减弱),西太平洋副高位置偏北(偏南),赤道太平洋(印度洋)高层辐散且对流活跃。  相似文献   
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