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An Analysis of the Temporal and Spatial Variations of the Global Tropopause with COSMIC Radio Occultation Bending Angles

机译:用宇宙无线电掩护弯曲角度的全球对象流的时间和空间变化分析

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As the transition layer between the troposphere and the stratosphere, the structure of the tropopause is closely related to the weather and climate of the near-surface layer. The variation of the tropopause parameters including the height, the temperature and the pressure of the tropopause are sensitive indicators of climate variability and global change. Characterized by the advantages of high vertical resolution, low-cost, global coverage, and all-weather capability, the Global Positioning System (GPS) radio occultation (RO) technology provides rich observation data for the study of the global tropopause structure. The precise identification of the tropopause height is the prerequisite for the accurate determination of the tropopause temperature and pressure. The tropopause height identified from GPS RO temperature profile will be affected by the errors brought out by the assumptions and the prior atmosphere background applied in the inversion process of the temperature profile. To determine the tropopause height directly from RO bending angle profile is an effective way to avoid such errors. In this paper, the natural logarithm objective covariance transform method is used to identify the tropopause height from GPS RO bending angle profiles. With the GPS RO data from the Constellation Observing System for Meteorology, Ionosphere and Climate (COSMIC) mission, the spatial and temporal variations of the global tropopause parameters included height, temperature and pressure are analyzed. It is found that the latitudinal distribution characteristics of the tropopause parameters are distinct and the seasonal variation trends of the tropopause structure are significant. It is also found that the temporal and spatial distributions of the tropopause parameters are asymmetric over the northern and the southern hemispheres.
机译:由于对流层和同温层之间的过渡层,对流层顶的结构密切相关的天气和近表面层的气候。对流层参数,包括高度,温度和对流层顶的压力的变化是气候变化和全球变化敏感的指标。高垂直分辨率,成本低,全球覆盖和全天候作战能力的优势特点是,全球定位系统(GPS)无线电掩星(RO)技术为全球对流层顶结构的研究丰富的观测数据。对流层顶高度的精确识别是准确测定对流层的温度和压力的先决条件。从GPS RO温度曲线中确定的对流层高度将通过由假设和在的温度分布的反转过程中施加在现有气氛背景带出的误差的影响。要直接从RO弯曲角度轮廓确定对流层顶高度是为了避免这样的错误的有效方法。在本文中,自然对数的目标协方差变换方法被用于识别从GPS RO弯曲角型材对流层顶高度。与来自星座观测系统的GPS RO数据气象,电离层和气候(COSMIC)任务,包括高度,温度和压力的全球对流层顶参数的空间和时间变化进行了分析。据发现,对流层顶参数的纬向分布特性是不同的和对流层顶结构的季节变化趋势是显著。它也发现,对流层参数的时空分布是在北部和南部半球不对称。

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