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A Scalable 0.5-6 GHz <span class="MathJax_Preview" style="">4\mathrm{x}4</span><script type="math/tex" id="MathJax-Element-1">4\mathrm{x}4</script> True Time Delay (TTD) Active Electronically Scanned Transmitter/Receiver Tile and Array | IEEE Conference Publication | IEEE Xplore

A Scalable 0.5-6 GHz 4\mathrm{x}4 True Time Delay (TTD) Active Electronically Scanned Transmitter/Receiver Tile and Array


Abstract:

This paper presents scalable 16-element 0.1-8 GHz ultra-wideband transmit (Tx) and receive (Rx) tiles with true-time-delay (TTD) beam steering. A 7 -bit (8/16/32/64/128/2...Show More

Abstract:

This paper presents scalable 16-element 0.1-8 GHz ultra-wideband transmit (Tx) and receive (Rx) tiles with true-time-delay (TTD) beam steering. A 7 -bit (8/16/32/64/128/256/512 picoseconds) time-delay is available on every element with 30 dB gain control. The Tx channel has an output power of 25–27 dBm, while the Rx channel has a noise figure (NF) of 2.7-3.5 dB. Two Tx tiles are integrated with a wideband antenna to build an 8\mathrm{x}4 -element active electronically scanned array (AESA) at 0.5-6 G Hz. The array scans to \pm 60^{\circ} in the azimuth and elevation planes and transmits 50-59dBm EIRP at I-dB compression point at 1–6 GHz. Measurements are done without any calibration due to the symmetrical nature of the TTD unit cells, which greatly reduces the overall system cost. The AESA unit has an integrated power supply and 2048 beam memory positions for fast beam steering (< 2 microseconds). The AESA tile can be scaled in an \text{NxN} format resulting in 16\mathrm{x}16 -element or larger arrays.
Date of Conference: 15-18 October 2024
Date Added to IEEE Xplore: 20 February 2025
ISBN Information:
Conference Location: Boston, MA, USA
References is not available for this document.

I. Introduction

Active electronically scanned array (AESA) have been used in many applications, but especially the ones used for wide-band communication systems (such as LTE or carrier aggregation waveforms) and for high resolution imaging favor ultra-wide bandwidth (such as 0.5-6 GHz) and wide scan angle (up to ). There are several antennas in literature which offer a decade bandwidth such as tapered-slot (Vivaldi), Balanced Antipodal Vivaldi Antenna (BAVA), spiral antennas and tightly-coupled dipoles [1]–[8].

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1.
D. Schaubert, "Wideband Vivaldi Arrays", IEEE Antennas and Prop-agation Society International (APS/URSI), pp. 11-17, July 2010.
2.
D. Schaubert, S. Kasturi, M.W. Elsallal and W. Van Cappellen, "Wide bandwidth Vivaldi Antenna Arrays - Some recent developments" in Eu-CAP 2006, Nice, France, pp. 06-10, November 2006.
3.
R. Kindt and R. Pickles, "12-to-1 bandwidth all-metal Vivaldi array element", 2009 IEEE Antennas and Propagation Society International Symposium, pp. 1-4, 2009.
4.
B. A. Yilmaz, "A Dual Polarized All Metal Ultra-Wideband Vivaldi Antenna Array with 70° Scan Ability", 2023 17th European Conference on Antennas and Propagation (EuCAP), pp. 1-3, 2023.
5.
B. A. Yilmaz and D. Dogan, "A dual polarized all metal wideband vi-valdi array with wide scan ability", 2017 IEEE International Symposium on Antennas and Propagation & USNC/URSI National Radio Science Meeting, pp. 309-310, 2017.
6.
I. Tzanidis, K. Sertel and J. L. Volakis, "Interwoven Spiral Array (ISPA) With a 10:1 Bandwidth on a Ground Plane", IEEE Antennas and Wireless Propagation Letters, vol. 10, pp. 115-118, 2011.
7.
M. W. Elsallal and J. C. Mather, "An ultra-thin decade (10: 1) Band-width modular “BAVA", 2011 IEEE International Symposium on Antennas and Propagation (APS/URSI), pp. 1980-1983, 2011.
8.
J. T. Logan, S. S. Holland, D. H. Schaubert, R. W. Kindt and M. N. Vouvakis, "A review of Planar Ultrawideband Modular Antenna (PUMA) Arrays", 2013 International Symposium on Electromagnetic Theory, pp. 868-871, 2013.
9.
R. Rotman, M. Tur and L. Yaron, "True Time Delay in Phased Arrays", Proceedings of the IEEE, vol. 104, no. 3, pp. 504-518, March 2016.
10.
R. Rotman and M. Tur, "Wideband phased arrays with true time delay beamformers challenges and progress", The 8th European Conference on Antennas and Propagation (EuCAP 2014), pp. 743-744, 2014.
11.
W. Elsallal et al., "Charateristics of decade-bandwidth Balanced Antipo-dal Vivaldi Antenna (BAVA) phased arrays with time-delay beamformer systems", 2013 IEEE International Symposium on Phased Array Systems and Technology, pp. 111-116, 2013.
12.
D. Baltimas and G. M. Rebeiz, "A 25–50 GHz Phase Change Material (PCM) 5-Bit True Time Delay Phase Shifter in a Production SiGe BiC-MOS Process", 2021 IEEE MTT-S International Microwave Symposium (IMS), pp. 435-437, 2021.
13.
E. Ackerman, S. Wanuga, D. Kasemset, W. Minford, N. Thorsten and J. Watson, "Integrated 6-bit photonic true-time-delay unit for lightweight 3–6 GHz radar beamformer" in 1992 IEEE MTT-S Microwave Sympo-sium Digest, Albuquerque, NM, USA, vol. 2, pp. 681-684, 1992.
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References

References is not available for this document.