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1.
The study presented herein investigated the main characteristics of carbon monoxideintraseasonal variability and evaluated its possible impact factors using the upper troposphere and lowerstratosphere (UT/LS) Aura Microwave Limb Sounder (MLS) observations over Tibetan Plateau and itsadjacent areas in summer (June to August) of 2005 and 2006. Observations show a persistent constituentextreme extending up into the UT/LS throughout summer, as well as a temporally reversed phase variationbetween the carbon monoxide and ozone in UT/LS. The intraseasonal oscillations (ISOs) of carbonmonoxide during summer are investigated by using methods of wavelet and band pass filter analysis. It isfound that ISOs over the Tibetan Plateau have periods of 10 to 20 days and 30 to 60 days. The formermainly appeared in upper troposphere while the latter in lower stratosphere. Further analysis shows thatthese two periods of ISOs in UT/LS are mainly in phase to the activities of convection over the south of theplateau and the variation of South Asia High, respectively. The above two factors and their dynamicalcoupling may be responsible for the tracer ISOs at different levels. 相似文献
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With the pros and cons of the traditional optimization and probability pairing methods thoroughly considered, an improved optimal pairing window probability technique is developed using a dynamic relationship between the base reflectivity Z observed by radar and real time precipitation I by rain gauge. Then, the Doppler radar observations of base reflectivity for typhoons Haitang and Matsa in Wenzhou are employed to establish various Z-I relationships, which are subsequently used to estimate hourly precipitation of the two typhoons. Such estimations are calibrated by variational techniques. The results show that there exist significant differences in the Z-I relationships for the typhoons, leading to different typhoon precipitation efficiencies. The typhoon precipitation estimated by applying radar base reflectivity is capable of exhibiting clearly the spiral rain belts and mesoscale cells, and well matches the observed rainfall. Error statistical analyses indicate that the estimated typhoon precipitation is better with variational calibration than the one without. The variational calibration technique is able to maintain the characteristics of the distribution of radar-estimated typhoon precipitation, and to significantly reduce the error of the estimated precipitation in comparison with the observed rainfall. 相似文献
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通过对青藏高原第二次大气科学试验(TIPEX)得到的当雄湍流资料的分析,讨论了青藏高原地区的近地层湍流特征.结果显示:速度分量、温度和湿度谱大多满足相似理论的-2/3次方律;高原上无因次垂直速度方差在中性时与前人在平原地区得到的结果比较接近,但高原上无因次水平风速方差值大于平原地区值.在强不稳定层结时,高原观测结果显示无因次垂直速度方差和无因次水平风速方差符合-1/3次方规律.在稳定层结时,风速三个分量的方差都随稳定度z/L的增大有所增大.无因次温度和湿度方差在强不稳定条件下服从-1/3次方规率.稳定条件下无因次温度方差随z/L略有下降趋势,而后趋于常数,无因次湿度方差无明显的规律.在干季以感热通量为主要地面热源,湿季两者贡献相当,潜热通量略大于感热通量.得出了不稳定层结、稳定层结情况下高原的无因次温度结构参数和湿度结构参数与z/L之间的关系,得到了中性层结时整体输送系数的实测结果. 相似文献
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多普勒雷达资料动态定量估测台风小时降水量的研究 总被引:5,自引:4,他引:5
在充分考虑传统的最优化方法和概率配对法优缺点的基础上,使用一种改进的最佳窗概率配对法计算Z-I关系中的系数A和b,得到了雷达测得的基本反射率因子Z和雨量计实时测到的小时降水量I的动态关系.利用温州多普勒雷达体扫资料和浙江省自动雨量站资料,使用该方法对"海棠"(Haitang)和"麦莎"(Matsa)两个台风分别进行了动态计算,得到了不同系数的Z-I关系,进而对两个台风的小时降水量进行了定量估测.使用变分技术对估测的小时降水量进行了校准.结果表明,不同台风Z-I关系的系数差别较大,因而造成台风小时降水量的很大不同.使用雷达基本反射率来估测台风小时降水量,能够清楚表现出台风的螺旋雨带和其中的中小尺度雨团,估测的台风小时降水量与实况基本接近.经过变分校准的估测降水量可以较好地表现出台风雨带与地面中尺度流场动力结构的对应关系.误差统计分析表明,变分校准后的估测台风小时降水量要明显好于变分校准前的估测台风小时降水量.变分校准法既保留了雷达估测台风小时降水量的分布特征,又使估测的台风小时降水雨量与实况的误差明显减小. 相似文献
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分别用 FAO Penman- Monteith公式 (模型 1 )、FAO Penman 修正式 (模型 2 )和国内Penman修正式 (模型 3)计算了泰安和西峰两地的参考作物蒸散量 ,对 3种方法的计算结果进行了比较 .模型 1得到的参考作物蒸散量大于后 2种模型 ,导致不同模型计算偏差的原因是 3种模型各自选用了不同的辐射项和动力项计算式 ,且计算偏差随季节和地理条件而变 .建议计算区域参考作物蒸散量用模型 1 ,计算单站逐日参考作物蒸散量 3种模型都可用 . 相似文献
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Based on 1961-2000 NCEP/NCAR monthly mean reanalysis datasets, vapor transfer and hydrological budget over the Tibetan Plateau are investigated. The Plateau is a vapor sink all the year round. In summer, vapor is convergent in lower levels (from surface to 500 hPa) and divergent in upper levels (from 400 to 300 hPa), with 450 hPa referred to as level of non-divergence. Two levels have different hydrologic budget signatures: the budget is negative at the upper levels from February to November, i.e., vapor transfers from the upper levels over the plateau; as to the lower, the negative (positive) budget occurs during the winter (summer) half year. Evidence also indicates that Tibetan Plateau is a "vapor transition belt", vapor from the south and the west is transferred from lower to upper levels there in summer, which will affect surrounding regions, including eastern China, especially, the middle and lower reaches of the Yangtze. Vapor transfer exerts significant influence on precipitation in summertime months. Vapor transferred from the upper layers helps humidify eastern China, with coefficient -0.3 of the upper budget to the precipitation over the middle and lower reaches of the Yangtze (MLRY); also, vapor transferred from east side (27.5°-32.5°N) of the upper level has remarkable relationship with precipitation, the coefficient being 0.41. The convergence of the lower level vapor has great effects on the local precipitation over the plateau, with coefficient reaching 0.44, and the vapor passage affects the advance and retreat of the rainbelt. In general, atmospheric hydrologic budget and vapor transfer over the plateau have noticeable effects on precipitation of the target region as well as the ambient areas. 相似文献
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