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Principle of Locality and Analysis of Radio Occultation Data

机译:局部性原理和无线电掩星数据分析

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摘要

A fundamental principle of local interaction of radio waves with a refractive spherical medium is formulated and illustrated using the radio occultation (RO) method of remote sensing of the atmosphere and the ionosphere of the Earth and the planets. In accordance with this principle, the main contribution to variations of the amplitude and the phase of radio waves propagating through a medium makes a neighborhood of a tangential point, where the gradient of the refractive index is perpendicular to the radio wave trajectory. A necessary and sufficient condition (a criterion) is established to detect the displacement of the tangential point from the radio ray perigee using analysis of the RO experimental data. This criterion is applied to the identification and the location of layers in the atmosphere and the ionosphere by the use of Global Positioning System RO data. RO data from the CHAllenge Minisatellite Payload (CHAMP) are used to validate the criterion introduced when significant variations of the amplitude and the phase of the RO signals are observed at the RO ray perigee altitudes below 80 km. The detected criterion opens a new avenue in terms of measuring the altitude and the slope of the atmospheric and ionospheric layers. This is important for the location determination of the wind shear and the direction of internal wave propagation in the lower ionosphere and possibly in the atmosphere. The new criterion provides an improved estimation of the altitude and the location of the ionospheric plasma layers compared with the backpropagation radio-holographic method previously used.
机译:使用遥测大气和地球与行星的电离层的无线电掩星法(RO),制定并说明了无线电波与折射球形介质的局部相互作用的基本原理。根据该原理,对通过介质传播的无线电波的幅度和相位变化的主要贡献是切线点附近,在该切点处折射率的梯度垂直于无线电波的轨迹。建立了必要的充分条件(准则),以使用RO实验数据的分析来检测切点从无线电射线近地点的位移。通过使用全球定位系统RO数据,该标准适用于大气层和电离层中层的识别和定位。当在低于80 km的RO射线近地点高度观测到RO信号的幅度和相位有明显变化时,可使用CHAllenge微型卫星有效载荷(CHAMP)的RO数据来验证引入的标准。检测到的标准为测量大气层和电离层的高度和坡度开辟了一条新途径。这对于确定风切变的位置以及内部电离层在下部电离层以及可能在大气中的传播方向非常重要。与先前使用的反向传播射线全息照相法相比,新标准对电离层等离子体层的高度和位置进行了改进的估计。

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