低地球轨道卫星网络中联合太赫兹通信和大气传感:物理层设计

Sergio Aliaga, Ali J. Alqaraghuli, J. Jornet
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引用次数: 7

摘要

随着技术的进步,人们对太赫兹(0.1-1THz)频段的兴趣不断增长,使通信能够以更高的数据速率进行,基于太赫兹的传感系统的现有使用激发了联合通信和传感系统(JCS)的探索。这种系统可以用于下一代卫星星座,用于互联网回传,同时执行研究大气气体等科学功能。事实上,这两种应用所采用的硬件即使不完全相同,也是高度相似的,这为设计一种可以同时进行通信和感知的新波形提供了可能性。在本文中,我们探讨了差分吸收雷达(DAR),传统上用于天气传感,作为与啁啾扩频(CSS)调制相结合的潜在候选者。我们提出了一个低地球轨道卫星的场景,其中CSS调制可以优于传统的PSK调制,同时可以通过DAR检索大气的水蒸气密度分布。通过仿真研究了通信和遥感应用的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Joint Terahertz Communication and Atmospheric Sensing in Low Earth Orbit Satellite Networks: Physical Layer Design
As the interest in the Terahertz (0.1-1THz) band grows with the technological advancements that enable communication at higher data rates, the existing use for THz-based sensing systems motivate exploration of Joint Communication and Sensing systems (JCS). Such systems can be used for the next generation of satellite constellations for the purposes of internet-backhauling, while performing scientific functions such as studying atmospheric gases. The fact that the hardware employed for both applications is highly similar, if not identical, opens the possibility of designing a new waveform that can jointly communicate and sense at the same time. In this paper, we explore Differential Absorption Radars (DAR), traditionally used for weather sensing, as a potential candidate to be operated in combination with a Chirp Spread Spectrum (CSS) modulation. We present a scenario with a satellite at Low Earth Orbit (LEO) where the CSS modulation could outperform traditional PSK modulations while making it possible to retrieve water vapor density profiles of the atmosphere with DAR. Performance of both communication and remote sensing applications are studied through simulation.
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