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1.
本文利用直减率反演云底高度的计算方法,联合星载主、被动探测资料开展了中国东海、南海上空暖云云底高度反演研究,同时对暖云的分布特征进行了统计。结果表明受大气层结稳定程度影响,夜间的反演效果优于白天。两种资料的云顶高度较一致时,反演效果好,该方法具有可行性。  相似文献   
2.
Based on combined Cloud Sat/CALIPSO detections, the seasonal occurrence of deep convective clouds(DCCs) over the midlatitude North Pacific(NP) and cyclonic activity in winter were compared. In winter, DCCs are more frequent over the central NP, from approximately 30°N to 45°N, than over other regions. The high frequencies are roughly equal to those occurring in this region in summer. Most of these DCCs have cloud tops above a 12 km altitude, and the highest top is approximately 15 km. These wintertime marine DCCs commonly occur during surface circulation conditions of low pressure, high temperature, strong meridional wind, and high relative humidity. Further, the maximum probability of DCCs,according to the high correlation coefficient, was found in the region 10°–20° east and 5°–10° south of the center of the cyclones. The potential relationship between DCCs and cyclones regarding their relative locations and circulation conditions was also identified by a case study. Deep clouds were generated in the warm conveyor belt by strong updrafts from baroclinic flows. The updrafts intensified when latent heat was released during the adjustment of the cyclone circulation current. This indicates that the dynamics of cyclones are the primary energy source for DCCs over the NP in winter.  相似文献   
3.
基于CloudSat资料的冷涡对流云带垂直结构特征   总被引:3,自引:0,他引:3       下载免费PDF全文
利用CloudSat卫星资料、NCEP再分析资料和FY-2C卫星可见光云图分析了2006年7月20—24日我国东北一次冷涡过程不同时期对流云的垂直结构以及云内中小尺度的结构,发现在冷涡发展阶段的初期,暖锋对流结构表现为孤立的回波系统多,强对流深厚,对流系统体现为孤立、深厚的特征。在冷涡发展成熟阶段,回波强度比冷涡发展初期的对流系统有所减弱,且为浅薄的对流系统。冷涡系统影响下发展的锢囚锋回波系统顶部呈现独特的结构特征:东南部为干冷空气侵入造成的回波区, 中部为锢囚锋主体对流区, 西北部为暖锋遇冷锋抬升作用形成的回波区。在锢囚锋尾部存在冰水含量与液态水含量分层现象,干冷空气侵入层在5 km高度左右,在干冷空气侵入层上部为冰水含量分布的弱回波区,下部为液态水分布的弱回波区。在冷涡成熟阶段,对流系统分布在冷涡外沿,表现为孤立的对流系统,冰水含量多的对流系统主要在冷涡的北面,而液态水主要分布在冷涡中心零度层以下。  相似文献   
4.
Abstract

This study presents a semi‐analytic non‐iterative solution for the Monin‐Obukhov similarity equations under unstable surface conditions. The solution is represented in terms of the non‐dimensional Monin‐Obukhov stability parameter z/L. This parameter is given as a function of the bulk Richardson number and other surface parameters including the heat and momentum roughness lengths which are generally assumed to be different in this formulation. The proposed formulations give results that are both quantitatively and qualitatively consistent with the fully iterated numerical solution for a wide range of surface parameters.  相似文献   
5.
利用CloudSat 卫星资料,选取冰粒子的等效半径(IER)、数浓度(INC)、含水量(IWC),统计分析了层云、层积云微物理量的垂直分布和季节变化。层云/层积云小粒子(0~50 μm)、中等粒子(50~80 μm)、大粒子(≥80 μm)出现频率分别为18.7%/16.3%、77.6%/62.6%、3.7%/21.2%。在IER 垂直分布上,层云小、中等粒子在云层中部出现较多,层积云小粒子在云层上部出现较多,中等、大粒子在云层中部出现较多。层云/层积云INC低值段(0~50 L-1)、中值段(50~100 L-1)、高值段(≥100 L-1)出现频率分别为90.1%/76.5%、9.6%/19.5%、0.3%/4.1%。在INC垂直分布上,层云低、中值段在云层中部出现较多,层积云低、中值段分别在云层中部、上部出现较多。层云/层积云IWC低值段(0~50 mg·m-3)、中值段(50~100 mg·m-3)、高值段(≥100 mg·m-3)出现频率分别为96.7%/82.8%、3.2%/13.4%、0.1%/3.7%。在IWC垂直分布上,层云低值段在云层中部出现较多,层积云低、中值段分别在云层中部、上部出现较多。  相似文献   
6.
为准确评估基于相对湿度廓线法反演云边界高度的有效性,以CloudSat和CALIPSO联合探测结果为基准,对2008年1月至2009年1月COSMIC无线电掩星和探空仪的云底高与云顶高反演结果进行定量对比验证,结果表明:CloudSat、掩星和探空仪检测到高云的比例差异较大,掩星和探空仪云检测效率相近,但云检测质量掩星优于探空仪,云层沿高度的发生概率同样掩星与CloudSat具有更好的一致性;陆地与海洋地区掩星和探空仪云底高反演精度大于云顶高,且反演精度与云层高度有关,二者对不同类型云的边界高度具有不同的反演优势,云底高发生概率掩星和探空仪与CloudSat都有很好的一致性,但云顶高概率掩星与CloudSat的吻合程度更好;CloudSat云边界高度随纬度升高而减小,其与掩星和探空仪的反演偏差同样是低纬大于中高纬,且具有不同的季节分布特点.此外,三者检测的底层云中低云所占比例从冬季到夏季逐渐减小,顶层云中云顶高于10 km的比例从冬季到夏季却逐渐增加.  相似文献   
7.
作为空中水资源的重要组成部分,云在地球水循环过程和气候系统中扮演着重要角色,不同高度的云因其物理特性和动力过程的不同而对人工增水作业具有不同的指示意义. 采用2007年1月至2008年12月的美国宇航局(NASA)云卫星(CloudSat) 2B-CLDCLASS资料,从不同类型云的高度分布特征分析了新疆阿尔泰山、天山和昆仑山区的云水资源情况.结果表明:各个季节三大山区高层云所占比例均较大,在20%以上,其中,天山山区和昆仑山区雨层云所占比例也较大,在15%以上. 三大山区不同云的云顶和云底高度年变化趋势基本一致,昆仑山区各类型云的平均云顶和云底的高度最大,阿尔泰山区的最低.  相似文献   
8.
Arctic clouds strongly influence the regional radiation balance, temperature, melting of sea ice, and freezing of sea water. Despite their importance, there is a lack of systematic and reliable observations of Arctic clouds. The CloudSat satellite launched in 2006 with a 94 GHz Cloud Profiling Radar (CPR) may contribute to close this gap. Here we compare one of the key parameters, the cloud liquid water path (LWP) retrieved from CloudSat observations and from microwave radiometer (MWR) data taken during the ASCOS (Arctic Summer Cloud Ocean Study) cruise of the research vessel Oden from August to September 2008. Over the 45 days of the ASCOS cruise, collocations closer than 3 h and 100 km were found in only 9 d, and collocations closer than 1 h and 30 km in only 2 d. The poor correlations in the scatter plots of the two LWP retrievals can be explained by the patchiness of the cloud cover in these two days (August 5th and September 7th), as confirmed by coincident MODIS (Moderate-resolution Imaging Spectroradiometer) images. The averages of Oden-observed LWP values are systematically higher (40–70 g m−2) than the corresponding CloudSat observations (0–50 g m−2). These are cases of generally low LWP with presumably small droplets, and may be explained by the little sensitivity of the CPR to small droplets or by the surface clutter.  相似文献   
9.
云水含量和云结构参量是天气预报、高山区水循环过程分析的基础。基于2012-2015年夏季CloudSat卫星遥感资料的2B-CLDCLASS、2B-GEOPROF和2B-GEOPROF-LIDAR,结合中国第二次冰川编目数据及气象资料,对祁连山地区疏勒南山冰川区与非冰川区云水含量和云类型特征进行分析。结果表明:(1)云水含量的垂直分布受下垫面和云类型的影响,主要表现为有冰川覆盖的高山上空降水云类型以深对流云为主,无冰川覆盖的高山上空降水云类型以雨层云为主。(2)疏勒南山地区高含水量主要分布在5 km以下的中低层云中,且冰川区气流垂直运动较非冰川区活跃。(3)疏勒南山冰川区云水含量平均值为0.07 g·m^-3,非冰川区云水含量平均值为0.17 g·m^-3,云水的空间变化在一定程度上能够反映降水和水汽的分布状况。  相似文献   
10.
In this study, the micro- and macro-physical properties, thermal structure and precipitation characteristics of cyclone eye walls and their surrounding spiral clouds were analysed with CloudSat and TRMM data for five tropical cyclones (TCs) in 2013. The results show that the ice-phase clouds of a mature TC are mainly above 5 km. With increasing altitude, the cloud droplet effective radius decreases, and the particle number concentration increases. Ice water content first increases and then decreases with increasing height. In the eye area, in addition to the well-known warm-core area, another warm core is also apparent around the eye at a height of 8 to 15 km. The horizontal distribution of precipitation is characterized by large-scale stratiform precipitation mixed with independent convective precipitation. The height of precipitation is mostly below 7.5 km, and the heavy rain is mainly below 5 km. When the peripheral convective clouds are strong enough, ice particles would be generated, thus providing conditions that are favourable for the formation of precipitation below.  相似文献   
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