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1.
C-FMCW雷达对江淮降水云零度层亮带探测研究   总被引:2,自引:2,他引:0       下载免费PDF全文
不同于体扫雷达探测降水系统,垂直指向雷达可探测降水云中粒子垂直演变的微物理过程。C波段调频连续波垂直指向雷达 (C-FMCW) 采用收发分置天线,数据垂直分辨率达15~30 m,时间分辨率达2~3 s,利用其2013年6—8月在安徽定远探测数据对降水云垂直结构特征及亮带中融化微物理过程进行研究。6次降水过程共计46 h中的39.1%数据具有清晰的亮带结构特征,期间降水占地面总降水量的15%;江淮雨季层状云、对流云和混合性降水系统中均出现零度层亮带,层状云中亮带长时间维持,对流降水系统移出后减弱阶段的亮带结构稳定,混合降水系统中的对流扰动加强冲破了亮带结构。以融化层中最大回波强度Zp所在高度进行融化层的粒子碰并增长和破碎减弱分层分析,上半层融化过程主要表现为碰并增长,下半层则是粒子破碎减弱。剔除了介电常数、下降速度引起的粒子浓度改变影响后,层状云和对流降水后期的回波强度加强表明融化增长程度接近,后者略强,混合降水云的融化增长最强。  相似文献   

2.
王洪  张佃国  王文青  王俊  李毅  王烁 《大气科学》2022,46(4):886-902
基于地基云雷达、微雨雷达和天气雷达等遥测设备观测资料,结合挂载KPR云雷达和DMT粒子测量系统的飞机平台,详细分析了山东积层混合云降水过程的云降水微物理结构特征。结果表明,积层混合云降水过程呈现层状云和对流云降水特征。零度层以上,5~6 km高度层内,对流云降水多普勒速度和谱宽均大于层状云,说明对流云降水环境垂直气流、粒子尺度等均大于层状云。对流云降水,云雷达和微雨雷达时空剖面上出现由衰减造成的“V”字形缺口,云雷达衰减程度大于微雨雷达,且随高度增加,衰减越大。层状云降水,零度层亮带附近,雷达反射率因子跃增高度比多普勒速度高80 m,多普勒速度跃增高度又比谱宽高20 m。降水云系零度层附近降水机制复杂,粒子形态有辐枝冰晶聚合物、针状冰晶聚合物和云滴;0°C层以上,5~6 km处,对流云降水的多普勒速度和谱宽均大于层状云降水,即对流云降水环境垂直气流、粒子尺度范围等均大于层状云降水。  相似文献   

3.
用雷达反射率作对流性降水和层状云降水自动分类   总被引:3,自引:3,他引:3  
为提高雷达定量测量降水的精度,利用武汉CINRAD/SA雷达反射率数据,研究提出了对流性降水和层状云降水自动分类算法(ACSS)。该算法在二维反射率结构场初步分类降水的基础上,识别亮带并从体扫描数据中提取降水的三维结构特征,然后对初步分类结果进行订正。试验表明,ACSS能较准确地实现对流性降水和层状云降水的自动分类,相对于只根据二维结构分类降水性能上有较大提高,主要表现在能正确识别出亮带特征明显的强层状云和对流核外沿的对流弱回波区。  相似文献   

4.
石家庄地区反射率因子垂直廓线特征分析   总被引:2,自引:1,他引:1  
利用自动雨量计数据整理成的10 min一次的雨量资料和s波段多普勒天气雷达体积扫描强度数据,对石家庄地区2004~2007年4次天气过程的实时雷达反射率因子垂直廓线的特征进行了分析.结果表明:层状云和混合性降水反射率因子垂直廓线有明显的零度层亮带;短时强降水过程的反射率因子垂直廓线不存在零度层亮带.冰雹过程中反射率凼子垂直廓线变化较大,降雹前反射率因子的极大值在中上层,降雹发生时反射率因子的极大值高度下降,降雹后反射率因子的极大值减弱.降雪过程的反射率因子垂直廓线零度层亮带不明显.在石家庄西部山区,由于零度层亮带的影响.对层状云和混合性降水回波强度和降水量估计偏高.对短时强降水过程的地面降水估计用反射率因子垂直廓线的方法比最低仰角法更加准确,在均匀性降水中可较好地改善地面雨量估算结果,有利于在山区和无雨量计的地区判断强对流天气的发生、发展和估算降水量的大小.  相似文献   

5.
利用辽宁阜新国家站(121.7458°E,42.0672°N)的毫米波云雷达(8 mm)和微雨雷达(12.5 mm)对2020年8月12-13日东北冷涡影响下的一次降水过程进行了观测,分析了云降水的垂直结构特征并探讨了降水机制。结果表明:本次过程中,云水平方向发展不均匀,以层状云和层积混合云为主,云内有时还嵌有对流泡。云降水阶段性变化明显,先后出现了层状云降水、层积混合云降水和对流云降水。层状云降水和层积混合云降水均表现出明显的亮带特征,但层积混合云降水的雷达回波强度、回波顶高和降水强度明显大于层状云降水。对流云降水的雷达回波会因强降水而产生明显衰减,因此回波顶高不能表示出实际的云顶情况。层状云降水阶段,云雷达反射率随高度降低增长缓慢,雨滴在下落过程中受蒸发和碰并的共同作用,反射率降低。与层状云降水相比,层积混合云降水的碰并效应强,且由于前期降水对近地面的增湿作用,使云下蒸发弱。对流云降水阶段,反射率的增长主要发生在冰水混合层,有利于大滴的产生,拓宽了云滴谱,提高了碰并效率。  相似文献   

6.
利用2013年8月北京C波段双偏振多普勒天气雷达体扫数据、探空资料和地面雨量站资料,获得反射率因子垂直廓线(vertical profile of reflectivity,VPR)识别零度层亮带,比较平均反射率因子垂直廓线(mean VPR,MVPR)、显著反射率因子垂直廓线(apparent VPR,AVPR)和显著相关系数垂直廓线(apparent vertical profile of correlation coefficient,AVPCC)3种零度层亮带订正方法的效果,并利用地面雨量站资料进行定量降水估计(quantity precipitation estimation,QPE)验证订正效果。结果表明:采用MVPR和0℃层高度能有效识别零度层亮带,零度层亮带厚度为0.8~1.5 km;经3种方法订正后,零度层亮带影响区得到了不同程度的抑制,其中MVPR法订正效果最差,基本未能减弱零度层亮带的影响,AVPR法和AVPCC法的订正效果较好,明显减弱了零度层亮带影响区的回波强度,订正后回波更均匀。利用地面雨量站数据进行QPE验证表明:经零度层亮带订正后雷达估测的降水与地面雨量站实测降水更接近,也表明AVPR法和AVPCC法效果更好。  相似文献   

7.
为分析层状云垂直微物理结构,了解雷达参数特征,揭示降水机制,利用机载Ka波段云雷达和DMT(Droplet Measurement Technologies)粒子测量系统,针对2019年11月17日山东冷锋层状云系开展从云顶至云底的垂直探测。结果表明:观测云层由高层云(3100~4500 m高度)和雨层云(800 ~2600 m高度)两部分组成。高层云过冷水含量较低,平均值为0.0026 g·m-3,最大值为0.008 g·m-3,云内冰晶通过水汽凝华增长,平均浓度为8.2 L-1,最大直径为900 μm,平衡谱状态下冰晶浓度与雷达反射率因子具有较好相关性,相关系数最大为0.84。雨层云过冷水含量丰富,最大含水量为0.354 g·m-3,过冷水区平均雷达反射率因子为7.48 dBZ,多普勒速度为-2.3 m·s-1,速度谱宽为0.7 m·s-1;雨层云中上部以冰晶为主,下部为暖区融化粒子,冰晶通过凇附过程增长,平均浓度为208 L-1,最大直径为450 μm;雷达反射率因子随高度降低至1500 m不断增大,在1200~1500 m高度保持不变,1200 m高度以下减小,未出现明显0℃亮带,速度谱宽随高度降低增大。  相似文献   

8.
The vertical structure and microphysics of Typhoon Kompasu that caused a lot of damage associated with strong winds and heavy rainfall over the Seoul metropolitan area on 1~2 September 2010 were examined primarily from wind profiler measurements. Four different periods that represent a stratiform, outer rainband, inner rainband, and eyewall region during passage of Typhoon Kompasu from 1200 to 2300 UTC 1 September were selected based on bright band intensities and vertical profiles of radar reflectivities and Doppler velocities. The bright band signatures observed in all of these periods indicated that the structure of Kompasu was basically stratiform in a weakening phase. Maximum rainfall rates up to 50 mm hr?1 at the surface and mean wind speeds greater than 30 m s?1 in the 2–4 km layer were observed in the eyewall region. Unlike the other regions that showed nearly zero vertical air motions or weak downdrafts below a melting layer, a mean updraft of ~1 m s?1 was analyzed only in the eyewall region, which suggests that the updrafts may have enhanced drop growth that led to increasing surface rainfall rates. For each region, the vertical mean characteristics of rainfall parameters retrieved from wind profiler spectra below the melting layer were also examined. The rain properties between the inner and outer rainband were similar although they were apart with a distance of more than 100 km (> 2 hrs in time). The averaged mass-weighted mean diameters within the rainbands were larger than those in the stratiform and eyewall regions. A weaker bright band in the eyewall region suggests the presence of a relatively larger number of rimed particles associated with the updrafts around the melting layer. A stronger bright band was present in the rainbands, which indicates more active aggregation right above the melting layer.  相似文献   

9.
CINRAD-SA/SB零度层亮带识别方法   总被引:3,自引:1,他引:2       下载免费PDF全文
该文提出一种使用S波段多普勒天气雷达回波三维特征和反射率因子垂直廓线(vertical profile of reflectivity,VPR)来自动识别零度层亮带的方法(简称3DVPR-BBID),并利用2003年6月22日—7月11日和2007年7月合肥雷达资料、2008年6月广州雷达资料以及相应的探空资料,同仅使用VPR识别零度层亮带的方法(简称VPR-BBID)进行比较。结果表明:VPR-BBID和3DVPR-BBID在大部分情况下能够有效识别零度层亮带的存在,而且3DVPR-BBID能够减少VPR-BBID产生的误识别。在同探空资料观测的零度层高度的比较中,两种方法确定的零度层高度同实况比较接近,进一步分析表明:3DVPR-BBID确定的零度层高度比VPR-BBID确定的更接近观测值。  相似文献   

10.
雷达定量估测降水的亮带自动消除改进方法   总被引:2,自引:0,他引:2       下载免费PDF全文
层状云降水中,0 ℃层融化效应会引起雷达反射率因子局部增大,若不进行订正,则会高估雷达估测的降水.本文提出一种基于新一代天气雷达反射率因子垂直廓线的0 ℃层亮带自动识别与订正算法,以减小因亮带造成的降水高估.本研究首先对降水类型进行分类,在SHY95的基础上增加了垂直方向的反射率因子三维特征,避免亮带的反射率因子高值区被误识别为对流云区;其次,在层状云区识别出一个可能的亮带影响区,在其中查找亮带,采用旋转坐标系法精确的识别亮带的顶、底高度;最后,利用最小二乘法拟合亮带上、下层的斜率,平滑垂直廓线(VPR,Vertical Profile of Reflectivity)的显著突出部分.将该方法应用于北京地区2010—2011年10次包含亮带的降水过程,得到的亮带订正后的均方根误差ERMS、平均绝对误差ERMA、平均相对误差BRM值较初值均有显著减小(分别减小1.538 mm,0.417和0.468).结果表明,该方法能够有效地识别与订正亮带,使得定量测量降水精度有所提高.  相似文献   

11.
Data from a long term measurement of Micro Rain Radar (MRR) at a mountain site (Daegwallyeong,DG, one year period of 2005) and a coastal site (Haenam, HN, three years 2004–2006) in South Korea were analyzed to compare the MRR measured bright band characteristics of stratiform precipitation at the two sites. On average, the bright band was somewhat thicker and the sharpness (average gradient of reflectivity above and below the reflectivity peak) was slightly weaker at DG, compared to those values at HN. The ...  相似文献   

12.
利用极化雷达分析层状云中水凝物粒子性状分布   总被引:11,自引:1,他引:10  
使用中国科学院大气物理研究所的X波段双线极化雷达系统探测资料, 讨论了双极化雷达各种观测参量所反映的水凝物粒子的物理本质。提出了对存在融化层的层状云使用雷达探测变量确定零度层高度以及结合地面温度反演温度廓线的方法。在存在融化层的层状云中, 对雷达探测资料在层状云降水期间的RHI资料进行分层统计, 结合国际上已有的研究结果, 获得了几种主要水凝物粒子的极化雷达参数 (即反射率、 差分反射率、 单位差分传播相移、 相关系数) 范围; 在此基础上使用模糊逻辑方法, 对水凝物粒子进行分类, 分类结果反映了层状云的相态结构分布特点。最后, 根据两个实例, 使用反射率、 差分反射率衰减订正后的数据, 结合层状云的基本特点, 分析了层状云的垂直结构和粒子的相态结构以及层状云中可能的降水机制, 并使用反演的粒子分布结构代替雷达反射率因子结构对降水微物理过程进行了讨论, 结果验证了顾震潮 (1980) 在20世纪60年代提出的层状云降水的三层概念模型。本文结果为使用双极化雷达研究云降水机制提供了方法, 表明双极化雷达在云降水物理的研究中具有广阔的应用前景。  相似文献   

13.
Cloud microphysical data observed with PMS probes have been combined with radar and other in-situdata collected by a NOAA P-3 aircraft that flew through the stratiform and transition regions of a mesoscaleconvective complex(MCC).The combined data have been analyzed with respect to the mescscale structureof the storm systems.The characteristics of ice particles in the transition and stratiform regions were quitediffereat.The ice particle concentrations in the transition region were about 4 to 6 times that found in thestratiform region,and the size of ice particles in the stratiform region was about twice that in the transitionregion.The relatively lower radar reflectivity in the transition region is a result of smaller particle sizes.Themain precipitation particle growth mechanisms are riming and aggregation in the transition region ard theaggregation process predominates in the stratiform region referred from the microphysical structures.The ag-gregation starts in the upper,colder lev(?)ls but becomes more efficient as the particles approach the melting layer.  相似文献   

14.
The structure of radar echo in stratiform cloud which was found in mei-yu frontal cloud system is generally inhomogeneous, especially in the structure of bright band echoes. The inhomogeneous structure of warm region in stratiform cloud and the shower feature of precipitation are closely related to the inhomogeneous structure of bright band and convective cells embedded in stratiform cloud.During Summer time the mei-yu cloud system is an important precipitating system in the southern part of China. To study its structure is of great significance for weather forecast and understanding the physical processes of cloud and precipitation. Therefore, we have observed mei-yu frontal cloud system by use of 711 type radar (3 cm) and airplane at Tunxi, Anhui Province since 1979. It was found that the structure of stratiform cloud, especially the structure of its warm region appears to be inhomogeneous1),2). This is a significant feature of cloud structure in mei-yu frontal cloud system. In this paper, we shall further analyse this inhomogeneous structure of stratiform cloud and study its effect on the precipitation.  相似文献   

15.
This study investigates microphysical properties from wind profiler Doppler spectra observed within a precipitation system that produced high rainfall rates up to 40 mm hr?1 near the southern coast of the Korean Peninsula on 25~26 June 2010. A 1290-MHz wind profiler located in the National Center for Intensive Observation of Severe Weather at Boseong, Korea, observed a widespread stratiform region and short-lived convective cells from 1850 UTC 25 to 0200 UTC 26 June 2010. By using a spectral model applied to observed profiler spectra, rainfall parameters and raindrop size distributions were retrieved below a melting layer during this period. Three representative periods during precipitation were selected based on intensities of bright band and characteristics in vertical profiles of radar reflectivity and Doppler velocity. During a brief convective period (~30 min), radar reflectivity tended to be proportional to vertical air motion (positive upward), suggesting that updrafts up to ~3 m s?1 over a large vertical extent through the melting layer probably contributed to increasing rainfall rates at the surface. In reflectivityrainfall rate distributions, large drop spectra (high reflectivity) were analyzed within downdrafts and small drop spectra (low reflectivity) within updrafts, similar to the large and small drop spectra but found in stratiform and convective regions, respectively, in previous studies. This indicates that the degree of spread between reflectivity and rainfall rate may be strongly dependent on positive and negative magnitudes of vertical air motion. For three categories of vertical air motion (i.e., updrafts, neutral, and downdrafts), physical relations between the retrieved rainfall parameters were examined.  相似文献   

16.
三维雷达反射率资料用于层状云和对流云的识别研究   总被引:8,自引:0,他引:8  
肖艳姣  刘黎平 《大气科学》2007,31(4):645-654
基于层状云和对流云的雷达反射率分布的三维形态特征,提出了识别层状云和对流云的6个候选识别参数,它们分别是:组合反射率及其水平梯度,反射率因子等于35 dBZ的回波顶高及其水平梯度、垂直累积液态水含量及其密度。通过分析候选识别参数分布图和选取的反射率垂直剖面图,用人机交互方式挑选“真实的”层状云和对流云区,统计这6个候选识别参数分布的概率密度特征;最后确定把分布概率密度更集中的组合反射率水平梯度、35 dBZ的回波顶高的水平梯度和垂直累积液态水含量密度作为识别参数,利用模糊逻辑法进行层状云和对流云的识别。用三个个例进行了识别试验,并把用模糊逻辑法识别的结果与用改进的巅峰值法识别的结果进行了比较,结果表明:用模糊逻辑法和改进的巅峰值法都能合理地识别大部分层状云和对流云;由于改进的巅峰值法只考虑了反射率分布的二维形态特征,它容易把对流核的外围识别成层状云,把厚实的层状云识别成对流云,而考虑了反射率分布的三维形态特征的模糊逻辑法在这两个方面有很大改善。  相似文献   

17.
吉林省一次层状云降水宏微观特征的观测研究   总被引:5,自引:0,他引:5  
利用长春2004年7月5日一次降水过程的飞机观测资料,结合天气图、卫星云图及雷达回波等资料,综合分析了本次热带气旋影响下降水过程中云系的宏微观特征.研究表明,降水性层状云微观垂直结构配置可以分为4个发展层:云顶附近是核化和凝华增长区;-4~-7 ℃为云滴和冰粒子活跃增长层;0~-4 ℃为固态粒子聚合及云滴蒸发层;0 ℃层以下是雨滴碰并增长和云滴凝结增长区.2D-P观测的粒子的平均直径、最大直径、峰值直径的峰值集中在融化层附近,与融化层回波亮带对应.用同一种形式的密度分布函数N(r)=mrfexp(-ar br2-cr3)来拟合暖层小云滴、大云滴和雨滴的谱分布,拟合结果与观测的谱分布吻合较好,拟合出的平均直径、均方根直径、数浓度以及含水量与观测值也较接近,相对误差小.  相似文献   

18.
在积云中,大多数云粒子的直径在7到10微米之间,而在层云中,大多数云粒子的直径不超过2微米.云滴有效半径与云中行星边界层(PBL)及PBL上层的气溶胶数浓度(Na)呈负相关.在1500米以上的高液态水含量区域,云滴浓度(Nc)变化不大,Na含量降低.高雷达反射率对应于大的FCDP云粒子浓度和小的气溶胶粒子浓度.积云中的...  相似文献   

19.
This study investigates the cloud macro- and micro-physical characteristics in the convective and stratiform regions and their different responses to the seeding for mixed convective-stratiform clouds that occurred in Shandong province on 21 May 2018, based on the observations from the aircraft, the Suomi National Polar-Orbiting Partnership (NPP) satellite, and the high-resolution Himawari-8 (H8) satellite. The aircraft observations show that convection was deeper and radar echoes were significantly enhanced with higher tops in response to seeding in the convective region. This is linked with the conversion of supercooled liquid droplets to ice crystals with released latent heat, resulting in strengthened updrafts, enhanced radar echoes, higher cloud tops, and more and larger precipitation particles. In contrast, in the stratiform cloud region, after the Silver Iodide (AgI) seeding, the radar echoes become significantly weaker at heights close to the seeding layer, with the echo tops lowered by 1.4–1.7 km. In addition, a hollow structure appears at the height of 6.2–7.8 km with a depth of about 1.6 km and a diameter of about 5.5 km, and features such as icing seeding tracks appear. These suggest that the transformation between droplets and ice particles was accelerated by the seeding in the stratiform part. The NPP and H8 satellites also show that convective activity was stronger in the convective region after seeding; while in the stratiform region, a cloud seeding track with a width of 1–3 km appears 10 km downstream of the seeding layer 15 minutes after the AgI seeding, which moves along the wind direction as width increases.  相似文献   

20.
华南汛期作为我国雨季爆发的第一阶段一直是预报与研究的热点问题,对其降水-云宏微观垂直特性的认识还不够深入。双频星载雷达资料对强、弱降水三维探测进行优化,并补充对洋面降水的探测。借助这两方面优势,对华南对流性、层云性两类主要降水类型的垂直特征进行统计,分析降水反射率因子与降水粒子垂直分布、亮带特征与垂直分层降水贡献,对比华南陆地在回波顶高方面与南海洋面的异同,最后针对华南前后汛期的降水垂直分布特征进行分析。(1)对流性降水反射率因子快速增长区域主要发生在低层,层云性降水反射率因子快速增长区域位于亮带层附近。(2)当发生强降水时,对流性降水的粒子浓度并不是总高于层云性降水,但前者粒子半径大于后者;强层云性降水往往来自于大小均一的粒子聚集,并没有形成更大直径的液滴。(3)华南陆地回波顶高季节变化较南海洋面强烈,浅薄对流降水发生频率受季风影响从春至秋存在先增后减特征,深对流发生频率在夏季增幅显著。南海地区回波顶高虽无明显季节变化但在3 km和5.5 km存在明显的双峰特征。(4)前汛期对流性降水的高浓度、大尺度的粒子更利于向更高高度发展,而层云性降水粒子浓度及半径的垂直分布在华南前后汛期无明显差异。前后汛期回波顶高异同主要出现在广西中部,广东中部和沿海地区。   相似文献   

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