卫星导航系统的恶劣天气事件和大气监测

IF 0.9 Q4 OPTICS Atmospheric and Oceanic Optics Pub Date : 2024-12-19 DOI:10.1134/S102485602470091X
O. G. Khutorova, M. V. Maslova, V. E. Khutorov
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引用次数: 0

摘要

全球卫星导航系统的大气监测通常用于估算大气整体水蒸气和测量卫星无线电信号的天顶对流层延迟及其梯度参数,具有高时间分辨率,表征大气中尺度不规则性。根据位于北纬55°-56°N的鞑靼斯坦共和国和莫斯科地区最近的卫星站的几百个灾害性天气事件的观测样本,这项工作显示了与对流灾害性天气事件相关的这些大气参数的显著变率。在恶劣天气条件下,卫星信号天顶对流层延迟场的不均匀性明显增强,表现为其梯度参数及其波动的增加,以及整体水汽的增加。如果一个观测站位于距离严重事件不超过20公里的地方,那么整体水蒸气的波动强度变化最强烈,这可以用对流单体的大小来解释。然而,即使一个台站与严重事件相隔200公里,与长期平均数据相比,也会观察到大气整体水蒸气的增加和不均匀性的扩大。
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Severe Weather Events and Atmospheric Monitoring from Satellite Navigation Systems

Atmospheric monitoring from global satellite navigation systems is usually used for estimating the atmospheric integral water vapor and measuring zenith tropospheric delay of satellite radio signals and its gradient parameters characterizing atmospheric mesoscale irregularities with a high temporal resolution. Based on a sample of several hundred severe weather events corresponding to available observations at the nearest satellite stations in the Republic of Tatarstan and Moscow region located at latitudes 55°–56° N, the work shows a significant variability of these atmospheric parameters associated with convective severe weather events. The inhomogeneity of the field of the zenith tropospheric delay of satellite signals is shown to strongly increase under the conditions of a severe weather event, which is manifested in the increase in its gradient parameters and their fluctuations, as well as in the growth of the integral water vapor. The intensity of fluctuations of the integral water vapor most strongly changes if a station is located not further than 20 km from a severe event, which is explained by the size of convective cells. However, even if a station is spaced up to 200 km apart from a severe event, an increase in the atmospheric integral water vapor and the amplification of inhomogeneity as compared to long-term average data are observed.

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来源期刊
CiteScore
2.40
自引率
42.90%
发文量
84
期刊介绍: Atmospheric and Oceanic Optics  is an international peer reviewed journal that presents experimental and theoretical articles relevant to a wide range of problems of atmospheric and oceanic optics, ecology, and climate. The journal coverage includes: scattering and transfer of optical waves, spectroscopy of atmospheric gases, turbulent and nonlinear optical phenomena, adaptive optics, remote (ground-based, airborne, and spaceborne) sensing of the atmosphere and the surface, methods for solving of inverse problems, new equipment for optical investigations, development of computer programs and databases for optical studies. Thematic issues are devoted to the studies of atmospheric ozone, adaptive, nonlinear, and coherent optics, regional climate and environmental monitoring, and other subjects.
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