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The Effects of Turbulence in an Absorbing Atmosphere on the Propagation of Microwave Signals Used in an Active Sounding System

机译:吸收大气中的湍流对有源探测系统中微波信号传播的影响

摘要

Proper and precise interpretation of radio occultation soundings of planetary atmospheres requires understanding the signal amplitude and phase variations caused by random perturbations in the complex index of refraction caused by atmospheric turbulence. This research focuses on understanding the turbulence and its impact on these soundings.From aircraft temperature, pressure and humidity measurements we obtained a parametric model for estimating the strength of the atmospheric turbulence in the troposphere. We used high-resolution balloon measurements to understand the spatial spectrum of turbulence in the vertical dimension.We also review and extend electromagnetic scintillation theory to include a complex index of refraction of the propagating medium. In contrast to when the fluctuations in only the real component of the index of refraction are considered, this work quantifies how atmospheric turbulent eddies contribute to the signal amplitude and phase fluctuations and the amplitude frequency correlation function when the index of refraction is complex. The generalized expressions developed for determining the signal's amplitude and phase fluctuations can be solved for planar, spherical or beam electromagnetic wave propagation.We then apply our mathematical model to the case of a plane wave propagating through a homogenous turbulence medium and estimate the amplitude variance for signals at various frequencies near the 22 GHz and 183 GHz water vapor absorption features. The theoretical results predict the impact of random fluctuations in the absorption coefficient along the signal propagation path on the signal's amplitude fluctuations. These results indicate that amplitude fluctuations arising from perturbations of the absorption field can be comparable to those when the medium has a purely real index of refraction. This clearly indicates that the differential optical depth approach devised by Kursinski et al. (2002) to ratio out the effects of turbulence on signals passing through a medium of a purely real index of refraction must be modified to include the effects of turbulent variations in the imaginary part of the refractivity.
机译:正确准确地解释行星大气的无线电掩星测深,需要了解由大气湍流引起的复杂折射率中的随机扰动引起的信号幅度和相位变化。这项研究的重点是了解湍流及其对这些声音的影响。从飞机的温度,压力和湿度测量中,我们获得了一个用于估计对流层大气湍流强度的参数模型。我们使用高分辨率气球测量来了解垂直方向上湍流的空间谱,还回顾并扩展了电磁闪烁理论,以包括传播介质的复杂折射率。与仅考虑折射率的实数部分的波动相比,这项工作量化了当折射率复杂时大气湍流对信号振幅和相位波动以及振幅频率相关函数的贡献。可以确定用于确定信号幅度和相位波动的通用表达式,以解决平面,球形或波束电磁波的传播问题,然后将我们的数学模型应用于平面波在均质湍流介质中传播的情况,并估算接近22 GHz和183 GHz水蒸气吸收特征的各种频率的信号。理论结果预测了沿信号传播路径的吸收系数中的随机波动对信号幅度波动的影响。这些结果表明,由吸收场的扰动引起的幅度波动可与当介质具有纯真实折射率时的幅度波动相当。这清楚地表明了Kursinski等人设计的差分光学深度方法。 (2002年),以平衡湍流对通过纯真实折射率介质传递的信号的影响,必须对其进行修改,使其在折射率的虚部包括湍流变化的影响。

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  • 作者

    Otarola Angel Custodio;

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  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 EN
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