Dual-band Air-Ground Radio Performance: Example Flight Test Results

D. Matolak, Zeenat Afroze
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Abstract

We recently concluded a four-year University Leadership Initiative (ULI) project sponsored by NASA, which investigated multiple aviation communications technology areas aimed at enhancing future aviation safety. These areas were dual-band air-ground communications for air traffic management, detection and interdiction of small drones, and high-capacity terrestrial airport communications networking. In this paper we report on flight test results of our dual-band radios. These radios were designed to use a spectrally efficient multi-carrier modulation, filterbank multicarrier (FBMC), which we had previously shown to improve resilience to high-power distance measurement equipment (DME) adjacent-channel interference, in comparison to existing orthogonal frequency division multiplexing (OFDM) schemes. In our NASA project, we designed the FBMC radios to extend performance even further, using the following techniques: (i) simultaneous dual-band transmission and reception; (ii) ground station (GS) spatial diversity; (iii) higher-order modulation for a factor of 5 capacity increase over QPSK; (iv) a Doppler-resilient option using a smaller number of subcarriers; and, (v) 5-MHz bandwidth C-band transmissions for an order of magnitude capacity increase over existing 500-kHz channel schemes. To our knowledge, these are novel achievements for civil aviation, and our flight test results attained a technology readiness level (TRL) of 5. In this paper we briefly describe the project history, in which we spent approximately one year working with Boeing to participate in one of their Eco-Demonstrator flight trials, and obtained special temporary authorizations to transmit in both the L-band and C-band, from the FAA, the FCC, and the DoD. When COVID-19 dispersed worldwide, Boeing was no longer able to support us, so we revised our plans and teamed with the South Carolina Civil Air Patrol (SC CAP) to conduct smaller-scale flight tests. This paper summarizes the radio designs and the novel features we employed, as well as analyses, computer simulations, and laboratory tests prior to terrestrial mobile testing, all of which culminated in our successful flight tests. We show example flight test results that serve as proof of concept for all the five aforementioned radio performance enhancements. Example results include signal-to-noise ratio and bit error ratio, diversity gains, and throughput gains through both higher-order modulation and wider bandwidth channels. We also report on some lessons learned, and some ideas for future advancement of our work.
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双频空地无线电性能:飞行测试结果示例
我们最近结束了一个由NASA赞助的为期四年的大学领导倡议(ULI)项目,该项目调查了多个航空通信技术领域,旨在提高未来的航空安全。这些领域包括用于空中交通管理的双频地空通信,小型无人机的探测和拦截,以及高容量地面机场通信网络。本文报道了我国双频无线电的飞行试验结果。这些无线电被设计为使用频谱高效的多载波调制,滤波器组多载波(FBMC),我们之前已经证明,与现有的正交频分复用(OFDM)方案相比,它可以提高对高功率距离测量设备(DME)邻接信道干扰的恢复能力。在我们的NASA项目中,我们设计了FBMC无线电来进一步扩展性能,使用以下技术:(i)同时双频发射和接收;(ii)地面站的空间多样性;(iii)比QPSK容量增加5倍的高阶调制;(iv)使用较少数量的子载波的多普勒弹性方案;(v) 5兆赫带宽c波段传输,比现有的500千赫信道方案增加一个数量级的容量。据我们所知,这些都是民用航空的新成就,我们的飞行测试结果达到了5的技术准备水平(TRL)。在本文中,我们简要描述了项目的历史,我们花了大约一年的时间与波音公司合作,参与了他们的一次生态演示飞行试验,并获得了FAA、FCC和DoD的l波段和c波段传输的临时授权。当COVID-19在全球传播时,波音公司无法再为我们提供支持,因此我们修改了计划,并与南卡罗来纳州民用空中巡逻队(SC CAP)合作进行了小规模的飞行测试。本文总结了我们采用的无线电设计和新特性,以及在地面移动测试之前的分析、计算机模拟和实验室测试,所有这些都在我们成功的飞行测试中达到了顶峰。我们展示了示例飞行测试结果,作为所有上述五种无线电性能增强的概念证明。示例结果包括通过高阶调制和更宽带宽信道的信噪比和误码率、分集增益和吞吐量增益。我们还报告了一些经验教训,以及对未来工作进展的一些想法。
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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