用于卫星光链路的低功耗相干接收机结构

A.W. Bernini, M. Fice, K. Balakier
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引用次数: 1

摘要

随着卫星数据传输需求的增加,需要开发更高容量的光链路,使卫星能够直接连接到地面站(GST)。与使用地球静止轨道(GEO)卫星的中继系统(即LEO-to-GEO和GEO-to- gst)相比,低地球轨道(LEO)直接到地球链路的优点是延迟更小,并且相对于射频(RF),光谱提供的可用带宽增加,从而允许更高的链路容量。将光学卫星到地面链路的数据速率提高到100 Gbps,将需要采用能够补偿多普勒频移和大气信道损害的光学相干收发器。卫星系统中需要仔细考虑的一个重要指标是设备功耗。用于地面应用的相干接收器的功耗与比特率密切相关,接收器后端数字信号处理负责消耗的绝大部分功率。在本文中,我们提出了一种由简化的数字和模拟元件组成的信号处理混合方法,允许显著降低功耗。此外,所提出的方法的一个吸引人的方面是它不需要增加波特率的复杂性。将讨论频率和相位恢复的模拟方法将允许在波特率介于10 Gbaud和100 Gbaud之间的情况下节省整个DSP块上大约40%至50%的功率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-power-consumption coherent receiver architecture for satellite optical links
As the demand for satellite data transmission increases, higher capacity optical links need to be developed to allow satellites to be connected directly to ground stations (GST). The advantages of Low Earth Orbit (LEO) direct-to-Earth links are smaller latency when compared to relay systems using Geostationary Orbit (GEO) satellites, i.e. LEO-to-GEO and GEO-to-GST, and an increased available bandwidth offered by the optical spectrum with respect to radio frequency (RF) which allows for much higher link capacity. The increase in data rate of optical satellite to ground links towards 100 Gbps will require implementing optical coherent transceivers with capability to compensate for Doppler shift and atmospheric channel impairments. An important figure of merit which needs to be carefully considered in a satellite system is the equipment power consumption. The power consumption of coherent receivers used for terrestrial applications is closely related to the bit rate, with a receiver back-end digital signal processing being responsible for the vast majority of the power consumed. In this paper we propose a hybrid approach to signal processing consisting of simplified digital and analogue elements allowing for significant power reduction. Moreover, one of the attractive aspects of the proposed approach is that it does not require an increased complexity for an increase in baud rate. It will be discussed that the analogue approach to the frequency and phase recovery would allow a saving of approximately 40% to 50% of power on the overall DSP block at baud rates between 10 Gbaud and 100 Gbaud.
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