Satellite High-Speed On-Board Data Handling: From a Wizardlink Equivalent Transceiver To a Full SpaceFibre Interface

P. Nannipieri, L. Fanucci, Gainmarco Dinelli, Luca Dello Sterpaio, Antonino Marino
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Abstract

In the last few years, satellite onboard data-handling bandwidth requirements grew significantly. State-of-the-art solutions, like Space Wire, became not always adequate for up-coming missions: this led to the birth of a significant number of communication protocols and standards, with different features, advantages, and disadvantages. The European Space Agency promoted the development of an open protocol solution: Space-Fibre, whose European Cooperation for Space Standardization standard has been published in May 2019, after an extensive review process. It represents a major advancement as a resulting effort to address the requirements for space missions of the present and the next future. The SpaceFibre protocol can sus-tain a line rate of 6.25 Gbps per lane (up to 16 lanes in parallel). It offers advanced and flexible Quality-of-Service features, as well as Fault Detection Isolation and Recovery services. The pro-tocol structure, comprehending physical, lane, multi-lane, data-link and network layers, has been developed so that full hard-ware implementation of its core layers is straightforward, granting high performances at low price in terms of complexity and power consumption. However, all these features, which make SpaceFibre a solid and powerful solution for future missions, are not always required by smaller lower budget satellites. Indeed, some systems may need only streaming-type CoDecs, without the necessity for advanced error recovery or quality of service. In this paper, we introduce three different designs that address the high-speed requirements of future satellites, gradually intro-ducing more features: a Wizardlink equivalent system, which emulates the behaviour of the well-established Texas Instrument TLK2711 transceiver on an FPGA, providing only low-lane layer features (Encoding, symbol synchronization) and leaving the rest of the layer specifications to the user; a reduced features SpaceFibre CoDec, which is fully compatible with standard-compliant SpaceFibre implementation but largely reduces error recovery features, to obtain a much smaller device; a fully standard-compliant SpaceFibre CoDec. These solutions are all implemented on various FPGA technologies and compared in terms of features and performances, to provide satellite system engineers with a valid reference to better understand which solution could better address their high-speed onboard commu-nication requirements.
卫星高速机载数据处理:从Wizardlink等效收发器到全空间光纤接口
在过去几年中,卫星机载数据处理带宽需求显著增长。最先进的解决方案,如太空线,并不总是适合即将到来的任务:这导致了大量通信协议和标准的诞生,具有不同的功能,优点和缺点。欧洲航天局推动了开放协议解决方案:空间纤维的开发,经过广泛的审查过程,其欧洲空间标准化合作标准已于2019年5月发布。这是一项重大的进展,是为满足目前和今后空间任务的需要所作的努力。SpaceFibre协议可以维持每通道6.25 Gbps的线路速率(最多16通道并行)。它提供了先进和灵活的服务质量功能,以及故障检测、隔离和恢复服务。支持协议的结构,包括物理层、通道层、多通道层、数据链路层和网络层,已经开发出来,因此其核心层的完整硬件实现是直接的,在复杂性和功耗方面以低价格提供高性能。然而,所有这些使太空纤维成为未来任务的坚实而强大的解决方案的特点,并不总是为较小的低预算卫星所需要。实际上,有些系统可能只需要流类型的编解码器,而不需要高级错误恢复或服务质量。在本文中,我们介绍了三种不同的设计,以解决未来卫星的高速要求,逐步引入更多的功能:一个Wizardlink等效系统,它模拟了成熟的德州仪器TLK2711收发器在FPGA上的行为,只提供低通道层功能(编码,符号同步),并将其余的层规格留给用户;减少了SpaceFibre编解码器的功能,它与符合标准的SpaceFibre实现完全兼容,但大大减少了错误恢复功能,以获得更小的设备;完全符合标准的SpaceFibre编解码器。这些解决方案都是在不同的FPGA技术上实现的,并在功能和性能方面进行了比较,为卫星系统工程师提供有效的参考,以更好地了解哪种解决方案可以更好地满足其高速板载通信需求。
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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