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Measurements of, and propagation models for the wide-band HF channel

机译:宽带HF通道的测量和传播模型

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Modelling of the ionospheric transfer function for HF radio propagation is a difficult task, since the nature of the ionosphere is very dynamic and sometimes stochastic. By using a frequency hopper as a channel probe, one can follow the dynamics of a wide-band channel. This gives a better means to interpret the channel's behaviour, than a narrow-band probe. Thus, one has a useful experimental base for designing a wide-band model for the deterministic part of the transfer function. The approach for the modelling work is to use a combination of theoretical considerations and measured conditions. The theoretical expressions used are derived from a sech/sup 2/-model of the electron density profile; see Lundborg et al. (1994), and Vogler and Hoffmeyer (1988). The state of the ionosphere, used as input in the models, is obtained with a chirp sounder, producing oblique ionograms every fifth minute. The authors see that different fading phenomena, observed with the frequency hopper, can be categorised simply by checking where the frequency hopping (FH) band is situated in the oblique ionogram. Hence, if the information on the state of the ionosphere is available (ionogram or prediction program), when modelling (or using) the channel one can to some degree, predict the fading in different frequency bands.
机译:HF无线电繁殖的电离层传递函数的建模是一项艰巨的任务,因为电离层的性质非常动态,有时是随机的。通过使用跳频作为通道探头,可以遵循宽带通道的动态。这提供了更好的方法来解释频道的行为,而不是窄带探针。因此,一个有一种用于设计传递函数的确定性部分的宽带模型的有用实验基础。建模工作的方法是使用理论考虑和测量条件的组合。所用的理论表达式源自电子密度曲线的SECH / SUP 2 / -MODEL;见Lundborg等。 (1994),Vogler和Hoffmeyer(1988年)。用作模型中的输入的电离层的状态是用Chirp发声器获得的,每五分钟产生斜离子图。作者看到,通过跳频观察的不同衰落现象可以简单地通过检查跳频(FH)频带位于倾斜离子图中的位置来进行分类。因此,如果有关电离层的状态的信息可获得(离子光谱或预测程序),则在向一定程度上建模(或使用)通道时,预测不同频带中的衰落。

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