Pulse Radiation Characteristics Prediction Method of Vivaldi Antenna based on Dipole Array

作者

  • Binwen Wang Northwest Institute of Nuclear Technology Xi’an 710024, China
  • Hui Ning Northwest Institute of Nuclear Technology Xi’an 710024, China
  • Hao Cai Northwest Institute of Nuclear Technology Xi’an 710024, China
  • Qilong Liu Northwest Institute of Nuclear Technology Xi’an 710024, China
  • Yan Wang Northwest Institute of Nuclear Technology Xi’an 710024, China
  • Youjie Yan Northwest Institute of Nuclear Technology Xi’an 710024, China

##plugins.pubIds.doi.readerDisplayName##:

https://doi.org/10.13052/2024.ACES.J.390506

关键词:

Vivaldi antenna, dipole array, pulse radiation characteristics, antenna array, beam scanning

摘要

This paper presents a theoretical method to estimate the pulse radiation characteristics of Vivaldi antennas. Based on the surface current distribution and the ultra-wideband radiation principle, Vivaldi antenna is equivalently modeled as a dipole array, and the pulse radiation characteristics of a single Vivaldi antenna are brought out utilizing the spatial superposition approach. Then, the influences and results of the Vivaldi antenna pulse characteristics prediction with different construction ways of the dipole array and element numbers are furthermore investigated. Next, a quadratic spatial superposition technique is employed to complete the theoretical prediction for time-domain radiation characteristics of Vivaldi antenna arrays. Experiments and simulations are conducted separately to verify the proposed method for both single Vivaldi antenna and array. The validated results demonstrate that the dipole array-based theoretical prediction method can effectively capture the pulse radiation characteristics for both individual Vivaldi antenna and array operating in different modes, thereby addressing challenges associated with estimating radiation characteristics in ultra-wideband pulse applications.

##plugins.generic.usageStats.downloads##

##plugins.generic.usageStats.noStats##

##submission.authorBiographies##

##submission.authorWithAffiliation##

Binwen Wang was born in Gansu, China, in 1993. He received his B.S. degree in Nuclear Science from Xi’an Jiaotong University, Xi’an, China, in 2015, and his M.S. degree in Electromagnetic Field and Microwave Techn-ology from the Northwest Institute of Nuclear Techn-ology, Xi’an, China, in 2017. He is currently an Engineer at the Northwest Institute of Nuclear Technology. His research interests include time-domain electromagnetics and ultra-widebandantenna.

##submission.authorWithAffiliation##

Hui Ning was born in Zhejiang, China, in 1969. He received his M.S. and Ph.D. degrees in Nuclear Science and Technology from Tsinghua University, Beijing, China, in 1997 and 2001, respectively. He is currently a Professor at the Northwest Institute of Nuclear Technology, Xi’an, China, specializing in time-domain electromagnetics and the pulse power technique and itsapplications.

##submission.authorWithAffiliation##

Hao Cai was born in Henan, China, in 1997. He received his B.S. and M.S. degree in Electromagnetic Field and Microwave Technology from the National Defense University of Science and Technology, Chang-sha, China, in 2019 and 2021. He is currently an Engineer at the Northwest Institute of Nuclear Technology, specializing in ultra-wideband pulse generator.

##submission.authorWithAffiliation##

Qilong Liu was born in Hubei, China, in 1997. He received his B.S. degree in Power System and Automation from the Army Engineering University of PLA, Shijiazhuang, China, in 2019. He is currently an Assistant Engineer at the Northwest Institute of Nuclear Technology, specializing in ultra-wideband antenna.

##submission.authorWithAffiliation##

Yan Wang was born in Ningxia, China, in 2000. She received her B.S. degree in Electromagnetic Field and Microwave Technology from the National Defense University of Science and Technology, Chang-sha, China, in 2022. She is currently an Engineer at the Northwest Institute of Nuclear Technology, specializing in ultra-wideband pulse generator.

##submission.authorWithAffiliation##

Youjie Yan was born in Henan, China, in 1982. He received the B.S. degree in electronical information science and technology from Xidian University, Xi’an China, in 2005, the M.S. degree in electromagnetic field and microwave technology from the Northwest Institute of Nuclear Technology, Xi’an, China, in 2008, and the Ph.D. degree in plasma physics from the University of Electronic Science and Technology of China, Chengdu, China. He is currently a Professor level senior engineer. His research interests include the time-domain electromagnetics and the electromagnetic compatibility.

参考

P. J. Gibson, “The Vivaldi aerial,” IEEE 9th

European Microwave Conference, Brighton, UK, pp. 101-105, Sep. 1979.

A. Hossain and A. V. Pham, “A novel gain-enhanced miniaturized and lightweight Vivaldi antenna,” IEEE Trans. Antennas Propagat., vol. 71, no. 12, pp. 9431-9439, Dec. 2023.

Z. Qiao, Z. Wang, T. Loh, S. Gao, and J. Miao, “A compact minimally invasive antenna for OTA testing,” IEEE Antennas Wirel. Propag. Lett., vol. 18, no. 7, pp. 1381-1385, July 2019.

R. Cicchetti, V. Cicchetti, A. Faraone, L. Foged, and O. Testa, “A compact high-gain wideband lens Vivaldi antenna for wireless communications and through-the-wall imaging,” IEEE Trans. Antennas Propagat., vol. 69, no. 6, pp. 3177-3192, June 2021.

N. O. Parchin, M. Shen, and G. F. Pedersen, “Small-size tapered slot antenna (TSA) design for use in 5G phased array applications,” Appl. Comput. Electromagn. Soc. J., vol. 32, no. 3, pp. 193-202, Mar. 2017.

F. B. Zarrabi, N. P. Gandji, R. Ahmadian, H. Kuhestani, and Z. Mansouri, “Modification of Vivaldi antenna for 2-18 GHz UWB application with substrate integration waveguide structure and comb slots,” Appl. Comput. Electromagn. Soc. J., vol. 30, no. 8, pp. 844-849, Aug. 2017.

B. Biswas, R. Ghatak, and D. R. Poddar, “A fern fractal leaf inspired wideband antipodal Vivaldi antenna for microwave imaging system,” IEEE Trans. Antennas Propagat., vol. 65, no. 11, pp. 6126-6129, Nov. 2017.

S. M. Kameli, S. S. Refaat, H. Abu-Rub, A. Darwish, A. Ghrayeb, and M. Olesz, “Ultra-wideband Vivaldi antenna with an integrated noise-rejecting parasitic notch filter for online partial discharge detection,” IEEE Trans. Instrum. Meas., vol. 73, pp. 1-10, 2024.

B. Wang, H. Ning, Y. Yan, C. Cao, and Q. Liu, “Antipodal Vivaldi antenna with resistance loading on bent terminal,” Int. Conf. Microw. Millim. Wave Technol., ICMMT - Proc., Harbin, CN, pp. 1-3, Aug. 2022.

A. S. Dixit, S. Kumar, S. Urooj, and A. Malibari, “A highly compact antipodal Vivaldi antenna array for 5G millimeter wave applications,” Sensors, vol. 21, no. 7, pp. 2360(1-15), Mar. 2021.

J. Zhang, H. Lan, M. Liu, and Y. Yang, “A handheld Nano through-wall radar locating with the gain-enhanced Vivaldi antenna,” IEEE Sens. J., vol. 20, no. 8, pp. 4420-4429, Apr. 2020.

Z. Hu, Z. Zeng, K. Wang, W. Feng, J. Zhang, Q. Lu, and X. Kang, “Design and analysis of a UWB MIMO radar system with miniaturized Vivaldi antenna for through-wall imaging,” Remote Sensing, vol. 11, no. 16, pp. 1867(1-20), Aug.2019.

Z. Tahar, X. Derobert, and M. Benslama, ”An ultra-wideband modified Vivaldi antenna applied to through the ground and wall Imaging,” Prog. Electromagn. Res. C, vol. 86, pp. 111-122, Aug.2018.

D. N. Elsheakh and E. A. Abdallah, “Compact ultra-wideband Vivaldi antenna for ground-penetrating radar detection applications,” Microw. Opt. Technol. Lett., vol. 61, no. 5, pp. 1268-1277, Feb. 2019.

J. Zhang, X. Zhang, and S. Xiao, “Antipodal Vivaldi antenna to detect UHF signals that leaked out of the joint of a transformer,” Int. J. Antennas Propag., vol. 2017, pp. 1-13, June 2017.

M. Ren, Z. Cheng, L. Wu, H. Zhang, S. Zhang, X. Chen, D. Xing, and H. Qin, “Portable microwave-acoustic coaxial thermoacoustic probe with miniaturized Vivaldi antennas for breast tumor screening,” IEEE Trans. Biomed. Eng., vol. 70, no. 1, pp. 175-181, Jan. 2023.

A. M. de Oliveira, A. M. de Oliveira Neto, M. B. Perotoni, N. Nurhayati, H. Baudrand, A. de Carvalho, and J. F. Justo, “A fern antipodal Vivaldi antenna for near-field microwave imaging medical applications,” IEEE Trans. Antennas Propagat., vol. 69, no. 12, pp. 8816-8829, Dec. 2021.

U. Rafique, S. Pisa, R. Cicchetti R, O. Testa, and M. Cavagnaro, “Ultra-wideband antennas for biomedical imaging applications: A survey,” Sensors, vol. 22, no. 9, pp. 3230(1-38), Apr. 2022.

V. M. Fedorov, M. V. Efanov, V. Y. Ostashev, V. P. Tarakanov, and A. V. UI’yanov, “Antenna array with TEM-horn for radiation of high-power ultra-short electromagnetic pulses,” Electronics, vol. 10, no. 9, pp. 1011(1-18), Apr. 2021.

J. Shao, G. Fang, J. Fan, Y. Ji, and H. Yin, “TEM horn antenna loaded with absorbing material for GPR applications,” IEEE Antennas Wirel. Propag. Lett., vol. 13, pp. 523-527, Mar. 2014.

A. Ha, M. H. Chae, and K. Kim, “Beamwidth control of an impulse radiating antenna using a liquid metal reflector,” IEEE Antennas Wirel. Propag. Lett., vol. 18, no. 4, pp. 571-575, Apr. 2019.

S. Xiao, S. Altunc, P. Kumar, C. E. Baum, and K. H. Schoenbach, “A reflector antenna for focusing subnanosecond pulses in the near field,” IEEE Antennas Wirel. Propag. Lett., vol. 9, pp. 12-15, Jan. 2010.

C. Pfeiffer and J. Massman, “An UWB hemispherical Vivaldi array,” IEEE Trans. Antennas Propagat., vol. 70, no. 10, pp. 9214-9224, Oct. 2022.

A. M. de Oliveira, J. R. B. Garay, J. P. de Souza, A. M. da Silva, M. B. Perotoni, W. Beccaro, and J. F. Justo, “Active Vivaldi antenna timed-array for ultra-wideband 3D beamforming,” Recent Pat. Eng., vol. 10, no. 2, pp. 121-127, Aug. 2016.

X. Jiang, Y. Yan, L. Meng, B. Wang, L. Bi, and Y. Yin, “Theoretical study on directivity of ultra-wideband time-domain antenna array based on 3D impulse point sources,” National Conference on Antennas, Harbin, CN, pp. 816-818, Aug. 2023.

K. Zhang, L. Wang, R. Liu, M. Wang, C. Fan, H. Zheng, and E. Li, “Low-dispersion leapfrog WCS-FDTD with artificial anisotropy parameters and simulation of hollow dielectric resonator antenna array,” IEEE Trans. Antennas Propagat., vol. 69, no. 9, pp. 5801-5811, Sep. 2021.

S. E. Bankov and M. D. Duplenkova, “Transformation of the electromagnetic field in an UWB array of TEM horns,” Proc. IEEE All-Russian Microw. Conf., RMC, Moscow, RU, pp. 178-181, Nov. 2022.

K. N. Klimov, K. I. Konov, A. M. Belevtsev, I. K. Epaneshnikova, and A. S. Boldyreff, “Electromagnetic modeling of the ultra-wideband antenna array radiator,” Conf. Proc. Radiat. Scatt. Electromagn. Waves, RSEMW, Divnomorskoe, RU, pp. 232-235, Aug. 2023.

D. M. Pozar, “The active element pattern,” IEEE Trans. Antennas Propagat., vol. 42, no. 8, pp. 1176-1178, Aug. 1994.

X. Yang, H. Qian, B. Z. Wang, and S. Xiao, “Radiation pattern computation of pyramidal conformal antenna array with active-element pattern technique,” IEEE Antennas Propag. Mag., vol. 53, no. 1, pp. 28-37, Feb. 2011.

M. Zhang, C. Liao, Z. Ye, J. Feng, and Q. Liu, “A rapid method for calculating the pulsed antenna arrays including mutual coupling effects,” Chinese Journal of Radio Science, vol. 30, no. 5, pp. 864-869, Oct. 2015.

O. V. Mikheev, S. A. Podosenov, K. Y. Sakharov, A. A. Sokolov, and V. A. Turkin, “Approximate calculation methods for pulse radiation of a TEM-horn array,” IEEE Trans. Electromagn. Compat., vol. 43, no. 1, Feb. 2001.

B. Wang, Q. Liu, C. Cao, Y. Yan, and T. Jiang, “A method for predicting time-domain radiation characteristics for bowtie antenna,” Int. Appl. Comput. Electromagn. Soc. Symp., ACES-China, Hangzhou, CN, pp. 1-3, Aug. 2023.

A. Bhattacharjee, A. Bhawal, A. Karmakar, A. Saha, and D. Bhattacharya, “Vivaldi antennas: A historical review and current state of art,” Int. J. Microw. Wirel. Technol., vol. 13, no. 8, pp. 833-850, Oct. 2021.

A. S. Arezoomand, R. A. Sadeghzadeh, and M. Naser-Moghadasi, “Novel techniques in tapered slot antenna for linearity phase center and gain enhancement,” IEEE Antennas Wirel. Propag. Lett., vol. 16, pp. 270-273, June 2016.

“Ultra-wideband electromagnetic radiation technology,” National Defense Industry Press, CN, 2018.

##submission.downloads##

已出版

2024-05-31