X-Band 16-Channel Transmit-Receive Plank Unit for High-Resolution Imaging RADAR

被引:0
|
作者
Sreenivasulu, K. [1 ]
Ray, Kamla Prasan [2 ]
Rao, D. Srinivasa [1 ]
Kumar, Pramod [1 ]
Vengadarajan, A. [1 ]
机构
[1] Elect & Radar Dev Estab DRDO, Bengaluru 560093, India
[2] Def Inst Adv Technol, Dept Elect Engn, Pune 411025, India
来源
IEEE ACCESS | 2024年 / 12卷
关键词
Delay effects; Transmission line measurements; Radar imaging; Phase shifters; Radio frequency; Wideband; CMOS technology; Field programmable gate arrays; MMICs; Active electronically scanned array (AESA); complementary metal oxide (CMOS); commercially off-the-shelf (COTS); effective isotropic radiated power (EIRP); field programmable gate array (FPGA); gallium arsenide (GaAs); gallium nitride (GaN); low voltage differential signal (LVDS); monolithic microwave integrated circuit (MMIC); printed circuit board (PCB); single pole double throw (SPDT) switch; transmit-receive channel (TRC); true-time-delay (TTD) line; TRUE TIME-DELAY; ARRAYS;
D O I
10.1109/ACCESS.2024.3452645
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This article presents a comprehensive design framework and realization approach for a state-of-the-art, X-band 16-channel Transmit-Receive (TR) plank unit for high-resolution imaging radar applications. The Transmit-Receive Module (TRM) is the most critical component of Active Electronically Scanned Arrays (AESA), which are widely used in Radar, Electronic Warfare (EW), and Communication systems. Modern AESAs with wide instantaneous bandwidth are utilized in imaging, and high data rate communication systems require time delay lines instead of narrowband phase shifters for squint-free beam scanning over a large scan volume. The design of a compact time delay line-based TRM that fits within the inter-element spacing of AESA is quite challenging. This paper presents a novel design of a true-time-delay (TTD) line-based 16-TR Channel (TRC) plank unit as a basic building block for X-band AESA-based high-resolution Imaging Radar. A novel architecture of distributed time delay network is proposed to offer a maximum time delay of 600 ps in steps of 3.125 ps per TRC by using 6-bit TTD line core chips at the plank unit level and overall 1.4ns maximum delay at AESA level. The proposed plank unit is realized by using a multi-layer, multi-laminate printed circuit board (PCB) technology with surface-mount microwave and digital components. Automated surface mount assembly and automated test facilities are utilized to develop plank units with high repeatability and reliability. The 16-TRC plank PCB is housed in a single mechanical enclosure along with blind mate connectors for RF, digital, and power supply interfaces. Two such plank units are mounted back to back on a single liquid cold plate for efficient thermal management. This paper details the design challenges associated with packaging and thermal management of multi-TR Channel plank units in a compact size of 300 x 200 x 8 mm(3 )along with RF path analysis, circuit simulation, PCB design, and proto plank unit performance characterization. The designed plank unit has demonstrated 10 Watt peak transmit output power, receive noise figure of 4 dB per TRC, and channel-to-channel isolation of 40 dB over 2 GHz bandwidth.
引用
收藏
页码:139456 / 139468
页数:13
相关论文
共 50 条
  • [1] TRANSMIT-RECEIVE MODULE TECHNOLOGY FOR X-BAND ACTIVE ARRAY RADAR
    MCQUIDDY, DN
    GASSNER, RL
    HULL, P
    MASON, JS
    BEDINGER, JM
    PROCEEDINGS OF THE IEEE, 1991, 79 (03) : 308 - 341
  • [2] Transmit/receive modules for X-band airborne radar
    Feldle, HP
    McLachlan, AD
    Mancuso, Y
    RADAR 97, 1997, (449): : 391 - 395
  • [3] DESIGN CONCEPTS OF A 1-MW CW X-BAND TRANSMIT-RECEIVE SYSTEM FOR PLANETARY RADAR
    FREILEY, AJ
    CONROY, BL
    HOPPE, DJ
    BHANJI, AM
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1992, 40 (06) : 1047 - 1055
  • [4] Integrated 16-channel Transmit and Receive Beamforming ASIC for Ultrasound Imaging
    Dusa, Chandrashekar
    Kalalii, Samiyuktha
    Rajalakshmi, P.
    Rao, Omkeshwar
    2015 28TH INTERNATIONAL CONFERENCE ON VLSI DESIGN (VLSID), 2015, : 215 - 220
  • [5] X-band monolithic transmit-receive switch based on a stub directional coupler
    Mokerov V.G.
    Gnatyuk D.L.
    Lisitskii A.P.
    Russian Microelectronics, 2005, 34 (6) : 344 - 355
  • [6] Isolation Improvement for X-Band FMCW Radar Transmit and Receive Antennas
    Wahab, Mashury
    Saputera, Yussi Perdana
    Wahyu, Yuyu
    Munir, Achmad
    PROCEEDINGS OF 2016 INTERNATIONAL CONFERENCE ON RADAR, ANTENNA, MICROWAVE, ELECTRONICS, AND TELECOMMUNICATIONS (ICRAMET), 2016, : 110 - 114
  • [7] X-BAND 12W GaAs MONOLITHIC TRANSMIT-RECEIVE SWITCH.
    Matsunaga, Makoto
    Iyama, Yoshitada
    Nakahara, Kazuhiko
    Takeda, Fumio
    Transactions of the Institute of Electronics, Information and Communication Engineers, Section E (, 1987, E70 (04): : 259 - 260
  • [8] A silicon-germanium receiver for X-band transmit/receive radar modules
    Comeau, Jonathan P.
    Morton, Matthew A.
    Kuo, Wei-Min Lance
    Thrivikraman, Tushar
    Andrews, Joel M.
    Grens, Curtis M.
    Cressler, John D.
    Papapolymerou, John
    Mitchell, Mark
    IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2008, 43 (09) : 1889 - 1896
  • [9] Performance of high-resolution X-band radar for rainfall measurement in The Netherlands
    van de Beek, C. Z.
    Leijnse, H.
    Stricker, J. N. M.
    Uijlenhoet, R.
    Russchenberg, H. W. J.
    HYDROLOGY AND EARTH SYSTEM SCIENCES, 2010, 14 (02) : 205 - 221
  • [10] Attenuation correction for a high-resolution polarimetric X-band weather radar
    Otto, T.
    Russchenberg, H. W. J.
    ADVANCES IN RADIO SCIENCE, 2010, 8 : 279 - 284