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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >A directional model of tropospheric horizontal gradients in Global Positioning Systemand its application for particular weather scenarios
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A directional model of tropospheric horizontal gradients in Global Positioning Systemand its application for particular weather scenarios

机译:全球定位系统中对流层水平梯度的定向模型及其特定天气场景的应用

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Improper modeling of horizontal tropospheric gradients in GPS analysis induces errors in estimated parameters, with the largest impact on heights and tropospheric zenith delays. The conventional two-axis tilted plane model of horizontal gradients fails to provide an accurate representation of tropospheric gradients under weather conditions with asymmetric horizontal changes of refractivity. A new parametrization of tropospheric gradients whereby an arbitrary number of gradients are estimated as discrete directional wedges is shown via simulations to significantly improve the accuracy of recovered tropospheric zenith delays in asymmetric gradient scenarios. In a case study of an extreme rain event that occurred in September 2002 in southern France, the new directional parametrization is able to isolate the strong gradients in particular azimuths around the GPS stations consistent with the "V" shape spatial pattern of the observed precipitation. In another study of a network of GPS stations in the Sierra Nevada region where highly asymmetric tropospheric gradients are known to exist, the new directional model significantly improves the repeatabilities of the stations in asymmetric gradient situations while causing slightly degraded repeatabilities for the stations in normal symmetric gradient conditions. The average improvement over the entire network is -31%, while the improvement for one of the worst affected sites P631 is -49% (from 8.5 mm to 4.3 mm) in terms of weighted root-mean-square (WRMS) error and -82% (from -1.1 to -0.2) in terms of skewness. At the same station, the use of the directional model changes the estimates of zenith wet delay by 15 mm (-25%). Correspondence to: S. Masoumi, salim.masoumi@anu.edu.au
机译:GPS分析中水平对流层梯度的不当建模在估计参数中引起误差,对高度和对流层延迟的影响最大。常规的水平梯度的两轴倾斜平面模型不能在具有不对称水平变化的折射率的天气条件下提供对流层梯度的准确表示。通过模拟显示了对流层梯度的新参数化,其中估计任意数量的梯度是作为离散定向楔形的,以显着提高不对称梯度场景中恢复的对流层延迟的准确性。在法国南部2002年9月发生的极端雨季事件的情况下,新的定向参数化能够在GPS站周围与观察到的沉淀的“V”形状空间模式一致的GPS站围绕GPS站隔离强大的梯度。在已知高度不对称的对流层梯度存在高度不对称的对流层梯度的GPS站网络的另一个研究中,新的定向模型显着提高了不对称梯度情况下的站点的重点,同时在正常对称中导致站点的重复性略微降低梯度条件。整个网络的平均改善为-31%,而在加权根均方(WRMS)误差和 - 误差方面,最差影响点P631的改善为-49%(从8.5 mm至4.3 mm)在偏斜方面82%(从-1.1到-0.2)。在同一站,定向模型的使用将Zenith潮流延迟的估计变为15毫米(-25%)。对应于:S.Masoumi,Salim.Masoumi@anu.edu.au

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