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首页> 外文期刊>Terahertz Science and Technology, IEEE Transactions on >Global Distribution of Water Vapor and Cloud Cover—Sites for High-Performance THz Applications
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Global Distribution of Water Vapor and Cloud Cover—Sites for High-Performance THz Applications

机译:水蒸气和云层的全球分布—高性能太赫兹应用的场所

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Absorption of terahertz radiation by atmospheric water vapor is a serious impediment for radio astronomy and for long-distance communications. Transmission in the THz regime is dependent almost exclusively on atmospheric precipitable water vapor (PWV). Though much of the Earth has PWV that is too high for good transmission above 200 GHz, there are a number of dry sites with very low attenuation. We performed a global analysis of PWV with high-resolution measurements from the Moderate Resolution Imaging Spectrometer (MODIS) on two NASA Earth Observing System (EOS) satellites over the year of 2011. We determined PWV and cloud cover distributions and then developed a model to find transmission and atmospheric radiance as well as necessary integration times in the various windows. We produced global maps over the common THz windows for astronomical and satellite communications scenarios. Notably, we show that, up through 1 THz, systems could be built in excellent sites of Chile, Greenland, and the Tibetan Plateau, while Antarctic performance is good to 1.6 THz. For a ground-to-space communication link up through 847 GHz, we found several sites in the Continental United States where mean atmospheric attenuation is less than 40 dB, which is not an insurmountable challenge for a link.
机译:大气水蒸气吸收太赫兹辐射是射电天文学和长距离通信的严重障碍。在太赫兹范围内的传输几乎完全取决于大气中可沉淀的水蒸气(PWV)。尽管地球上大部分地区的PWV太高,无法实现200 GHz以上的良好传输,但仍有许多干燥地点的衰减非常低。 2011年,我们用中分辨率成像光谱仪(MODIS)的两颗NASA地球观测系统(EOS)卫星进行了高分辨率测量,对PWV进行了全局分析。我们确定了PWV和云层分布,然后开发了一个模型在各个窗口中查找透射率和大气辐射率以及必要的积分时间。我们在通用的THz窗口上绘制了天文和卫星通信场景的全球地图。值得注意的是,我们表明,高达1 THz的系统可以在智利,格陵兰和青藏高原的绝佳地点建造,而南极洲的性能可以达到1.6 THz。对于高达847 GHz的地对空通信链路,我们在美国大陆发现了几个站点,这些站点的平均大气衰减小于40 dB,这对于链路而言并非是不可克服的挑战。

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