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大学・研究所にある論文を検索できる 「Rotationally Reconfigurable Single-Element Prism for Enhancing Scanning Flexibility of Risley Prism Antenna System」の論文概要。リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

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Rotationally Reconfigurable Single-Element Prism for Enhancing Scanning Flexibility of Risley Prism Antenna System

Shao, Wenyi Chen, Qiang 京都大学 DOI:10.1109/LAWP.2022.3217045

2023.03

概要

In this letter, we propose a rotationally reconfigurable single-element prism that is compatible with the typical Risley prism antenna system. It consists of a pair of rotating decentered phase plates operating at 30 GHz. The equivalent prism angle can be continuously changed between 0° and 14° by simply rotating these two phase plates. An all-dielectric low-cost prototype has been designed, fabricated, and measured, which demonstrates the peak realized gain of 21 dBi can be achieved with a gain variation less than 0.9 dB within the reconfigurable angle range of 0°–14°. Besides, the combination of phase distribution of two rotating phase plates can be used as a new mechanism avoiding using first-order paraxial approximation to realize two-dimensional beam scanning.

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参考文献

[1]

[2]

[3]

[4]

[5]

[6]

[7]

[8]

[9]

[10]

[11]

[12]

[13]

[14]

[15]

[16]

[17]

[18]

[19]

[20]

Y. J. Guo and R. W. Ziolkowsk, Advanced Antenna Array Engineering

for 6G and Beyond Wireless Communications.New York, NY, USA:

Wiley, 2021.

R. J. Mailloux, Phased Array Antenna Handbook, 2nd ed. Norwood, MA:

Artech House, 2005.

Z. Y. Wen, Y. L. Ban, Y. Yang and Q. Wen, "Risley-Prism-Based

Dual-Circularly Polarized 2-D Beam Scanning Antenna with Flat

Scanning Gain," IEEE Antennas Wireless Propag. Lett., vol. 20, no. 12,

pp. 2412-2416, Dec. 2021.

Y. C. Zhong and Y. J. Cheng, "Generating and Steering

Quasi-Nondiffractive Beam by Near-Field Planar Risley Prisms," IEEE

Trans. Antennas Propag., vol. 68, no. 12, pp. 7767-7776, Dec. 2020.

J. B. Wang and Y. Rahmat-Samii, "A Simplified configuration of Beam

Steerable Risley Prism Antennas: Principles and Validation," IEEE

Antennas

Wireless

Propag.

Lett.,

early

access,

doi:

10.1109/LAWP.2022.3182267.

M. U. Afzal and K. P. Esselle, “Steering the beam of medium-to-high

gain antennas using near-field phase transformation,” IEEE Trans.

Antennas Propag., vol. 65, no. 4, pp. 1680–1690, Apr. 2017.

N. Gagnon and A. Petosa, “Using rotatable planar phase shifting surfaces

to steer a high-gain beam,” IEEE Trans. Antennas Propag., vol. 61, no. 6,

pp. 3086–3092, 2013.

Y. Sun, J. He, C. Yuan, Q. Zhang, X. Zhao, and L. Yu, “Ku-band radial

line continuous transverse stub antenna with transmit-array lens for high

power microwave application,” IEEE Trans. Antennas Propag., vol. 68,

no. 3, pp. 2050–2059, Mar. 2020.

M. U. Afzal, L. Matekovits, K. P. Esselle and A. Lalbakhsh,

"Beam-Scanning Antenna Based on Near-Electric Field Phase

Transformation and Refraction of Electromagnetic Wave Through

Dielectric Structures," IEEE Access, vol. 8, pp. 199242-199253, Oct.

2020.

N. Gagnon and A. Petosa, "Using rotatable planar phase shifting surfaces

to steer a high-gain beam", IEEE Trans. Antennas Propag., vol. 61, no. 6,

pp. 3086-3092, Jun. 2013.

H. F. Wang, Z. B. Wang, Z. H. Wu, and Y. R. Zhang, "Beam-Scanning

Lens Antenna Based on Elliptical Paraboloid Phase Distribution

Metasurfaces," IEEE Antennas Wireless Propag. Lett, vol. 18, no. 8, pp.

1562-1566, Aug. 2019.

V. F. Duma and A. L. Dimb, "Exact scan patterns of rotational Risley

prisms obtained with a graphical method: multi-Parameter analysis and

design," Appl. Sci., vol.11, no.18, pp.8451, Sept. 2021.

H. J. D. Johnsen, J. Torgersen, and A. Aksnes, “Solar tracking using

beam-steering lens arrays,” Proc. SPIE, vol. 10758, pp. 8-19, Sept. 2018.

M. Bawart, N. Bregenzer, S. Bernet, and M. R. Marte, "Dynamic

beam-steering by a pair of rotating diffractive elements," Opt. Comm.,

vol.460, pp.125071, Apr. 2020.

H. Yi, S. W. Qu, K. B. Ng, C. H. Chan and X. Bai, "3-D Printed

Millimeter-Wave and Terahertz Lenses with Fixed and Frequency

Scanned Beam," IEEE Trans. Antennas Propag., vol. 64, no. 2, pp.

442-449, Feb. 2016.

P. Piksa, S. Zvanovec, and P. Cerny, “Elliptic and hyperbolic dielectric

lens antennas in mmwaves," Radioengineering, vol. 20, no. 1, pp.270-275.

Apr. 2011.

S. Zhang, P. Liu and W. Whittow, "Design and Fabrication of 3-D-Printed

High-Gain Broadband Fresnel Zone Lens Using Hybrid

Groove-Perforation Method for Millimeter-Wave Applications," IEEE

Antennas Wireless Propag. Lett., vol. 21, no. 1, pp. 34-38, Jan. 2022.

K. Singh, M. U. Afzal and K. P. Esselle, "Designing Efficient

Phase-Gradient Metasurfaces for Near-Field Meta-Steering Systems,"

IEEE Access, vol. 9, pp. 109080-109093, Jul. 2021.

Z. Zhang, H. Luyen, J. H. Booske and N. Behdad, "X-band

mechanically-beam-steerable lens antenna exploiting the Risley prism

concept", IET Microw. Antennas Propag., vol. 14, no. 14, pp. 1902-1908,

Nov. 2020.

S. Liu, H. Sato and Q. Chen, "A Wideband, 1 bit Transmitarray Antenna

Design With Flat Gain Response," IEEE Trans. Antennas Propag., vol.

68, no. 10, pp. 7046-7055, Oct. 2020.

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