月球表面到地球的MIMO激光链路容量分析

Hungsun Son, R. Schwarz, Marcus T. Knopp, D. Giggenbach, A. Knopp
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引用次数: 0

摘要

月球探测预计将在未来几十年内发展。为科学目的从月球向地球传输数据的需求将很快超过传统通信系统的能力。我们提出将多输入多输出(MIMO)技术应用于自由空间光通信(FSO),以进一步提高月地连接的容量。然而,FSO链路的MIMO容量取决于激光器和光学接收器的几何排列。由于月球和地球的相对运动,这种几何形状和容量会随着时间的推移而变化。我们分析了这些容量的变化,并提出了一种地球上的自适应阵列几何形状来控制接收望远镜的阵列方向。特别是,我们表明地球上的均匀线性阵列(ULA)根据月球的通过而旋转,随着时间的推移保持了容量增益。通过解析推导出了ULA的最优方位。此外,我们提出了一个由全球多个分布式光学地面站(OGSs)组成的系统设计,以获得永久覆盖。仿真结果表明,该系统在大多数情况下都能提供持续的高容量增益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Capacity Analysis of a MIMO Laser Link From Lunar Surface to Earth
Moon explorations are expected to develop over the next decades. The demand of data transfer from the Moon to Earth for scientific purposes will soon exceed the capacity of conventional communication systems. We propose the application of multiple input multiple output (MIMO) to free-space optical communication (FSO) to further increase the capacity of Moon-Earth connections. However, the MIMO capacity of FSO links depends on the geometrical arrangement of the lasers and optical receivers. This geometry and, thus, the capacity change over time due to the relative motion of the Moon and the Earth. We analyze these capacity variations and propose an adaptive array geometry on Earth to control the array orientation of the receiving telescopes. In particular, we show that the rotation of the uniform linear array (ULA) on Earth according to the passage of the Moon maintains the capacity gain over time. We analytically derive the optimal orientation of the ULA. In addition, we propose a system design comprised of multiple distributed optical ground stations (OGSs) across the globe to obtain a permanent coverage. Simulation results show that a constantly high capacity gain can be provided in most of the time.
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