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Integrated direct RF sampling front-end for VHF avionics systems

机译:用于VHF航空电子系统的集成直接RF采样前端

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For a market sector where size, weight, power and cost (SWaP-C) optimization is crucial, specifically with the proliferation of unmanned aerial systems, this paper proposes the minimization of SWaP-C requirements through a Direct RF Sampling (DRFS) approach. This work focuses on the integration of avionics systems operating at the VHF band, i.e. VOR, ILS (LOC and GS) and aeronautical communications (voice, ACARS, VDL, etc.). The scope of this work is to present a feasibility study of the proposed integrated avionics. Several factors must be taken into account: First, the selection of a best sampling frequency is a key point in the design of the system. Two approaches to sampling frequency selection are considered: 1) static, whose aim is to digitize and lock the frequency bands fully; and 2) dynamic, where only the occupied channels are sampled without aliasing. The second important factor to be considered in addition to sampling frequency refers to the maximum dynamic range of the system. The dynamic range of the Analog to Digital Converter (ADC) has to be large enough to receive without distortion the most and the least powerful signals at the antenna. Finally, this work studies the digital down-converter (DDC) architecture to be hardware implemented in a Field Programmable Gate Array (FPGA), and quantitatively analyzes the resources required for its implementation.
机译:对于尺寸,重量,功率和成本(SWaP-C)优化至关重要的市场部门,尤其是随着无人机系统的发展,本文提出了通过直接RF采样(DRFS)方法将SWaP-C要求最小化的建议。这项工作的重点是在VHF频段运行的航空电子系统的集成,即VOR,ILS(LOC和GS)和航空通信(语音,ACARS,VDL等)。这项工作的范围是提出拟议的综合航空电子设备的可行性研究。必须考虑几个因素:首先,选择最佳采样频率是系统设计的关键。考虑了两种选择频率的方法:1)静态,其目的是完全数字化并锁定频带; 2)动态的,仅对占用的通道进行采样而不会出现混叠。除了采样频率外,要考虑的第二个重要因素是系统的最大动态范围。模数转换器(ADC)的动态范围必须足够大,以在不失真的情况下接收天线处功率最大和功率最小的信号。最后,这项工作研究了数字下变频器(DDC)体系结构,该体系结构是在现场可编程门阵列(FPGA)中实现的硬件,并定量分析了其实现所需的资源。

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