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On the Role of the Ionospheric Parameters B0 and B1 in the Matching of Calculated and Experimental Values of MUF

机译:电离层参数B0和B1在MUF计算值和实验值匹配中的作用

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Despite certain limitations, the RI model is widely used in the interpretation and prediction of oblique propagation characteristics, for example, MUF. A special role is played by the adaptation (assimilation) of the model to the current diagnostics data, which makes it possible to correct the model in real time. The most widely used adaptation is to the main parameters of the ionosphere foF2 and hmF2. With the possibility of measuring the total electron content TEC, the values of this parameter are used for adaptation through the definition of foF2 using, for example, the equivalent slab thickness of the ionosphere or other approaches. However, in almost all cases there is a residual deviation of the calculated values of the MUF from the experimental MOFs, which is attributed to the difference in the shapes of the model and real N(h)-profiles. In this paper, to eliminate the residual deviation, the values of the B0 and B1 parameters are used, determining the shape of the N(h)- profiles of the lower ionosphere, which is close to real. One of the most quiet days was chosen on February 13, 2014 on the Dickson-Pevek path of oblique sounding. It is shown that the use of B0 and B1 can reduce the residual discrepancy, but does not remove it completely. The reason is the lack of accuracy in determining B0 and B1 in the high-latitude zone.
机译:尽管有某些限制,RI模型仍广泛用于斜传播特性(例如MUF)的解释和预测。模型对当前诊断数据的适应(同化)扮演着特殊角色,这使得实时校正模型成为可能。最广泛使用的适应方法是电离层foF2和hmF2的主要参数。为了测量总电子含量TEC,可以使用例如电离层的等效平板厚度或其他方法通过foF2的定义来使用此参数的值进行调整。但是,在几乎所有情况下,MUF的计算值与实验MOF都存在残余偏差,这是由于模型和实际N(h)轮廓的形状不同而引起的。在本文中,为了消除残留偏差,使用了B0和B1参数的值,确定了下部电离层的N(h)-轮廓的形状,该形状接近真实。 2014年2月13日,在Dickson-Pevek倾斜测深路径上,选择了最安静的日子之一。结果表明,使用B0和B1可以减少残余差异,但不能完全消除。原因是在高纬度地区确定B0和B1时缺乏准确性。

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