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Fiber-Optic Communication Links Suitable for On-Board Use in Modern Aircraft

机译:适用于现代飞机机上使用的光纤通信链路

摘要

The role of the Advanced Air Transportation Technologies program undertaken at the NASA Glenn Research Centers has been focused mainly on the improvement of air transportation safety, with particular emphasis on air transportation communication systems in on-board aircraft. The conventional solutions for digital optical communications systems specifically designed for local/metro area networks are, unfortunately, not capable of transporting the microwave and millimeter RF signals used in avionics systems. Optical networks capable of transporting RF signals are substantially different from the standard digital optical communications systems. The objective of this paper is to identify a number of different communication link architectures for RF/fiber optic transmission using a single backbone fiber for carrying VHF and UHF RF signals in the aircraft. To support these architectures, two approaches derived from both hybrid RF-optical and all-optical processing methodologies are discussed with single and multiple antennas for explicitly transporting VHF and UHF signals, while the relative merits and demerits of each architecture are also addressed. Furthermore, the experimental results of wavelength division multiplexing (WDM) link architecture from our test-bed platform, configured for aircraft environment to support simultaneous transmission of multiple RF signals over a single optical fiber, exhibit no appreciable signal degradation at wavelengths of both 1330 and 1550 nm, respectively. Our measurements of signal to noise ratio carried out for the transmission of FM and AM analog modulated signals at these wavelengths indicate that WDM is a fiber optic technology which is potentially suitable for avionics applications.
机译:在NASA格伦研究中心进行的“先进航空运输技术”计划的作用主要集中在改善航空运输安全上,尤其着重于机载飞机上的航空运输通信系统。不幸的是,专门为局域网/城域网设计的数字光通信系统的常规解决方案不能传输航空电子系统中使用的微波和毫米波RF信号。能够传输RF信号的光网络与标准数字光通信系统有很大的不同。本文的目的是确定使用单个主干光纤在飞机中传输VHF和UHF RF信号的RF /光纤传输的多种不同通信链路架构。为了支持这些架构,讨论了从混合射频光学和全光学处理方法中衍生出的两种方法,即使用单个和多个天线来显式传输VHF和UHF信号,同时还讨论了每种架构的相对优缺点。此外,来自我们测试平台的波分复用(WDM)链接架构的实验结果已配置用于飞机环境,以支持在单个光纤上同时传输多个RF信号,在1330和1330的波长下均未显示明显的信号衰减。分别为1550 nm。我们在这些波长下对FM和AM模拟调制信号的传输进行的信噪比测量表明,WDM是一种光纤技术,很可能适用于航空电子应用。

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