UST-Lite Direct Waveform Sampling Software-Defined Radio for Spaceflight Applications

被引:2
|
作者
Kobayashi, M. Michael [1 ]
Towfic, Zaid [1 ]
Spurgers, Carl [1 ]
Kilzer, Michael [1 ]
Haque, Salman [1 ]
Ciminera, Michael [1 ]
Gayle, Jeremiah [1 ]
Botvinnik, Igor [1 ]
Steinert, Jeremy [1 ]
Holmes, Sarah [1 ]
Ogbe, Dennis [1 ]
Miller, Joshua [1 ]
Rahimizadeh, Sushia [1 ]
Hawkins, David [1 ]
Jongeling, Andre [1 ]
Pugh, Mike [1 ]
Kuperman, Igor [1 ]
机构
[1] CALTECH, Jet Prop Lab, 4800 Oak Grove Dr, Pasadena, CA 91109 USA
基金
美国国家航空航天局;
关键词
D O I
10.1109/AERO55745.2023.10115551
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The Universal Space Transponder (UST) product line developed at the Jet Propulsion Laboratory offers Software-Defined Radio (SDR) solutions for various spaceflight applications. The UST-Lite is the latest product offering that provides a more miniaturized radio package with cutting-edge processing capabilities and features by taking advantage of recent advancements in digital processing and sampling technology. Parts selection and design guidelines follow JPL flight practices suitable for missions with high reliability requirements (e.g., Discovery or New Frontiers class), but the radio could also be adapted for use on SmallSat missions given its reduced power consumption, volume, and mass compared to other JPL radios. The main digital processor is implemented with a Swift Processor Module (SPM) developed in collaboration with JPL's Common Instrument Electronics task. The SPM uses a Kintex UltraScale FPGA (XQRKU060) with two mezzanine card slots to house application-specific circuit cards such as digital samplers, interface electronics, or additional processors. The UST-Lite uses mezzanine cards with high-speed digital samplers to directly sample and synthesize waveforms. With such direct waveform sampling approach, component counts can be drastically reduced while avoiding the use of baseband and intermediate frequency (IF) waveforms. The higher digital processing capability, coupled with expandable access to multiple high-speed samplers, allow the UST-Lite to support up to four simultaneous communication bands. The first version of the UST-Lite is targeted at supporting a quad-band link: S/Ka-band proximity, and X/Ka-band Earth communications simultaneously. This paper will provide an overview of the UST-Lite quad-band radio and its key design features, as well as optional configurations that are adaptable and configurable for mission needs. Test results from the prototype radio will be presented, as well as potential design modifications being considered for the next design revision. The current plan is to achieve TRL-5/6 by mid 2023.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] A New Compilation Flow for Software-Defined Radio Applications on Heterogeneous MPSoCs
    Dardaillon, Mickael
    Marquet, Kevin
    Risset, Tanguy
    Martin, Jerome
    Charles, Henri-Pierre
    ACM TRANSACTIONS ON ARCHITECTURE AND CODE OPTIMIZATION, 2016, 13 (02)
  • [32] Increasing the Capability of CubeSat-based Software-Defined Radio Applications
    Alvarez, Jennifer L.
    Rice, Mark
    Samson, John R., Jr.
    Koets, Michael A.
    2016 IEEE AEROSPACE CONFERENCE, 2016,
  • [33] Design Methodology for Distributed Power Amplifier in Software-Defined Radio Applications
    Palombini, Diego
    Bentini, Andrea
    Palomba, Mirko
    Dibello, Sergio
    Limiti, Ernesto
    2013 8TH EUROPEAN MICROWAVE INTEGRATED CIRCUITS CONFERENCE (EUMIC), 2013, : 512 - 515
  • [34] Vectorially Combined Distributed Power Amplifiers for Software-Defined Radio Applications
    Narendra, Kumar
    Limiti, Ernesto
    Paoloni, Claudio
    Collantes, Juan-Mari
    Jansen, Rolf
    Yarman, Siddik
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2012, 60 (10) : 3189 - 3200
  • [35] Design Methodology for Distributed Power Amplifier in Software-Defined Radio Applications
    Palombini, Diego
    Bentini, Andrea
    Palomba, Mirko
    Dibello, Sergio
    Limiti, Ernesto
    2013 EUROPEAN MICROWAVE CONFERENCE (EUMC), 2013, : 1483 - 1486
  • [36] Software-defined radio with flexible RF front end for satellite maritime radio applications
    Budroweit, Jan
    CEAS SPACE JOURNAL, 2016, 8 (03) : 201 - 213
  • [37] Software-defined radio - Basics and evolution to cognitive radio
    Jondral F.K.
    EURASIP Journal on Wireless Communications and Networking, 2005 (3) : 275 - 283
  • [38] The visible radio: Process visualization of a software-defined radio
    Hall, M
    Betts, A
    Cox, D
    Pointer, D
    Kindratenko, V
    IEEE Visualization 2005, Proceedings, 2005, : 159 - 165
  • [39] Direct conversion receivers using multiport structures for software-defined radio systems
    Mohajer, M.
    Mohammadi, A.
    Abdipour, A.
    IET MICROWAVES ANTENNAS & PROPAGATION, 2007, 1 (02) : 363 - 372
  • [40] Overview of Japanese activities in software-defined radio
    Kohno, R
    Miura, R
    Harada, H
    Haruyama, S
    Sanada, Y
    Michael, L
    SOFTWARE RADIO: TECHNOLOGIES AND SERVICES, 2001, : 219 - 225