A Novel UAV Air-to-Air Channel Model Incorporating the Effect of UAV Vibrations and Diffuse Scattering

Drones Pub Date : 2024-05-12 DOI:10.3390/drones8050194
Wenzhe Qi, Ji Bian, Zili Wang, Wenzhao Liu
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Abstract

In this paper, we propose a geometric channel model for air-to-air (A2A) unmanned aerial vehicle (UAV) communication scenarios. The model is established by incorporating line-of-sight, specular reflection, and diffuse scattering components, and it can capture the impacts of UAV vibrations induced by the propeller’s rotation. Based on UAV heights and ground scatterer density, a closed-form expression is derived to jointly capture the zenith and azimuth angular distributions of diffuse rays. The power of diffuse rays is modeled according to the grazing angle of the rays and the electrical properties and roughness of the ground materials. Key statistics, including the temporal autocorrelation function, spatial cross-correlation function, Doppler power spectrum density, and coherence time are derived, providing an in-depth understanding of the time-variant characteristics of the channel. The results indicate that the presented model is capable of capturing certain A2A channel characteristics, which align with the corresponding theoretical analysis. The findings suggest that the scattering effect of the A2A channel is significantly influenced by the altitude of the UAV. Additionally, it is shown that UAV vibrations can introduce extra Doppler frequencies, notably decreasing the temporal correlation and coherence time of the channel. This effect is more prominent when the system operates at high-frequency bands. The effectiveness of the presented model is confirmed through a comparison of its statistics with those of an existing model and with available measurement data.
包含无人机振动和漫散射效应的新型无人机空对空信道模型
本文提出了一种适用于空对空(A2A)无人飞行器(UAV)通信场景的几何信道模型。该模型结合了视距、镜面反射和漫散射成分,可以捕捉螺旋桨旋转引起的无人机振动的影响。根据无人机高度和地面散射体密度,推导出一个闭式表达式,以共同捕捉漫射光线的天顶角和方位角分布。漫射光线的功率是根据光线的掠过角以及地面材料的电特性和粗糙度来建模的。得出的关键统计数据包括时间自相关函数、空间交叉相关函数、多普勒功率谱密度和相干时间,从而深入了解了信道的时变特性。结果表明,所提出的模型能够捕捉 A2A 信道的某些特征,这与相应的理论分析相吻合。研究结果表明,A2A 信道的散射效应受无人机高度的显著影响。此外,研究还表明,无人机的振动会带来额外的多普勒频率,明显降低信道的时间相关性和相干时间。当系统在高频段运行时,这种影响更为明显。通过将模型的统计数据与现有模型和现有测量数据进行比较,证实了所提出模型的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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