将无人机螺旋桨反射的雷达信号数学模型应用于双向雷达中的反合成孔径雷达法

E. C. Plotnitskaya, S. R. Heister, V. I. Veremyev
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引用次数: 0

摘要

导 言区分位于雷达系统同一空间分辨率单元内的目标包括确定目标数量和识别目标。识别和区分与雷达剖面(光谱、测距、方位角等)分析直接相关。利用反合成孔径雷达(ISAR)方法获得的旋转无人机部件的雷达图像尤其引人关注。这种剖面图在确定无人机设计特征方面具有很高的参考价值。在开发基于 ISAR 的无人机螺旋桨雷达剖面图构建算法时,有必要清楚了解螺旋桨叶片表面各点的运动情况。这种了解可以通过构建无人机螺旋桨反射信号的数学模型来实现。建立无人机螺旋桨反射信号的数学模型,将其应用于双稳态雷达中的 ISAR 方法。在所考虑的模型中,螺旋桨叶片由一组点反射器表示,这些点反射器位于穿过叶片前后边缘的两条线上。在建立反射信号模型时,考虑了无人机的平移运动、螺旋桨叶片的旋转以及它们在空间中的偏移所导致的反射信号相位结构的变化。建立了无人机螺旋桨反射信号的数学模型,并将其应用于双稳态雷达中的 ISAR 方法。模拟了从一个螺旋桨叶片、一个螺旋桨和一组无人机螺旋桨反射的信号。分析了两种叶片表示形式下反射信号的时间和频谱结构。所建立的数学模型可用于在双稳态雷达系统中通过反合成孔径雷达方法建立无人机螺旋桨图像的算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mathematical Model for a Radar Signal Reflected from Drone Propellers as Applied to the Method of Inverse Synthetic Aperture Radar in Bistatic Radar
Introduction. The distinction of targets located in the same spatial resolution cell of a radar system includes the determination of the number of targets and their recognition. Recognition and distinction are directly related to the analysis of radar profiles (spectral, range, azimuth, etc.). Radar images of rotating drone elements obtained with the method of inverse synthetic aperture radar (ISAR) present particular interest. Such profiles are highly informative in terms of defining the drone design characteristics. When developing algorithms for constructing radar profiles of drone propellers based on ISAR, it is necessary to have a clear understanding of the movements of various points on the propeller blade surfaces. This understanding can be achieved by constructing a mathematical model for a signal reflected from drone propellers.Aim. To develop a mathematical model for a signal reflected from drone propellers in application to the method of ISAR in bistatic radar.Materials and methods. In the model under consideration, the propeller blade is represented by a set of point reflectors located along two lines passing through the front and rear edges of the blade. When developing the reflected signal model, variation in the phase structure of the reflected signal arising due to the translational motion of the drone and the rotation of its propeller blades, as well as their offset in space.Results. A mathematical model for a signal reflected from drone propellers in application to the method of ISAR in bistatic radar was developed. Signals reflected from one propeller blade, from one propeller, and from a set of drone propellers were simulated. The temporal and spectral structures of the reflected signals for two variants of blade representation were analyzed.Conclusion. The developed mathematical model can be used when developing an algorithm for constructing images of drone propellers by the method of inverse synthetic aperture radar in a bistatic radar system.
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