Loading [MathJax]/extensions/MathMenu.js
Microstrip dual band millimeter-wave antenna array for UAV applications | IEEE Conference Publication | IEEE Xplore

Microstrip dual band millimeter-wave antenna array for UAV applications


Abstract:

A Microstrip Dual band patch antenna array with coaxial feed which resonates at 29-30 GHz (ka band) and 57-66 GHz (unlicensed V band) is presented in this paper. The unit...Show More

Abstract:

A Microstrip Dual band patch antenna array with coaxial feed which resonates at 29-30 GHz (ka band) and 57-66 GHz (unlicensed V band) is presented in this paper. The unit cell is a star shaped patch antenna with thin low cost substrate (FR4 Epoxy substrate, with relative permittivity of 4.4 and a thickness of 1.6 mm) in which slots were created and it has a max gain of 4.2 dBi. The 1×2 and 1×4 linear arrays of unit cell were designed to improve gain. The unit cell, 1×2 and 1×4 arrays were also investigated after placement onto the UAV's generic wing structure. The unit cell of the antenna was fabricated and tested. Radiation patterns after placement of the proposed antenna array were studied.
Date of Conference: 09-11 May 2016
Date Added to IEEE Xplore: 16 June 2016
Electronic ISBN:978-1-5090-2214-4
Conference Location: Krakow, Poland
References is not available for this document.

I. Introduction

With the advancements in technology in the field of UAVs and communication systems it is important to have compact antennas for various operations such as telemetry, telecommand and payload communication links which require large bandwidths [1]. Conventional compact antennas are microstrip radiating patches on grounded dielectric substrates. Microstrip antennas are low profile, light weight, easy to fabricate and conform but are limited by narrow bandwidths [2]. One of the major challenges in practical applications of microstrip antennas is bandwidth enhancement along with miniaturization. Different techniques such as shorting posts between patch and ground plane [3], meandered ground plane [4], slot loading [5], stacked shorted patch, feed modification, are used to increase the bandwidth and reduce size. Also there is increasing focus on millimeter wave bands, particularly 57–64 GHz frequency band as the federal communication commission has allocated it for unlicensed wireless systems [6]. Traditionally mm-wave antennas offer large bandwidths and high speed communication links compared to lower frequency bands [7], and their sizes vary from hundreds of micrometers to few millimeters, which increases the cost of the cumbersome process of bulk micromachining [8]. Also many of the mm-wave antennas consist of multilayered dielectrics with different relative permittivity of each layer [9], [10]. Small size and increased bandwidth usually results in lower gain which can be improved by forming an array of the unit cell [10]. Conformity of dual band mm-wave antennas for stable communication link and different functionalities adds to the complexity of design. This paper proposes a Dual band (Ka/V band) millimeter wave printed microstrip antenna patch shaped like a star which is fed by co-axial feed and is constructed on a single layer substrate using standard printed- (PCB) technology. The linear array designs are formed to improve gain. The antenna unit cell and arrays were simulated in Ansys HFSS. HFSS-IE was used for antenna placement study on the wing of UAV. The dimensions of the antenna were optimized to obtain highest possible bandwidth in both frequency bands. The unit cell of the antenna was fabricated and its return loss was tested. Section II. contains the design of the generic wing and unit cell, 1X2 array, 1X4 array designs. Section III. contains the return loss and radiation pattern simulations and case study of conformed 1X4 array. Section IV. contains the fabricated antenna measurement results.

Select All
1.
Ling Sun et al., "Dual-band low-profile vertically polarized annular ring slot antenna embedded in a small metallic UAV", Microwave and Optical Technology Letters, vol. 58.2, pp. 323-328, 2016.
2.
Ramesh Garg, Inder Bahl and Maurizio Bozzi, Microstrip lines and slotlines, Artech house, 2013.
3.
M. Abbaspour and Hamid Reza Hassani, "Wideband star-shaped microstrip patch antenna", Progress In Electromagnetics Research Letters, vol. 1, pp. 61-68, 2008.
4.
Jieh-Sen Kuo and Kin-Lu Wong, "A compact microstrip antenna with meandering slots in the ground plane", Microwave and Optical Technology Letters, vol. 29.2, pp. 95-97, 2001.
5.
Abdelnasser A. Eldek, Atef Z. Elsherbeni and Charles E. Smith, "Characteristics of bow-tie slot antenna with tapered tuning stubs for wideband operation", Progress In Electromagnetics Research, vol. 49, pp. 53-69, 2004.
6.
[online] Available: http://www.ecfr.gov/cgi-binltext-idx?SID=ee881953f336ef464afde50acI51c47a&mc=true&node=se47.1.15_1255&rgn=div8.
7.
David M. Pozar, "Considerations for millimeter wave printed antennas", Antennas and Propagation IEEE Transactions on, vol. 31.5, pp. 740-747, 1983.
8.
H. Sedaghat Pisheh et al., "Design simulation and fabrication of a novel multi-band miniaturized antenna for wireless commumcation applications", Infrared and Millimeter Waves and 13th International Conference on Terahertz Electronics 2005. IRMMW- IRMMW-THz 2005. The Joint 30th International Conference on, vol. 2, 2005.
9.
Amin Enayati, Guy Vandenbosch and Walter DeRaedt, "Millimeter-wave horn-type antenna-in-package solution fabricated in a teflon-based multilayer PCB technology", Antennas and Propagation IEEE Transactions on, vol. 61.4, pp. 1581-1590, 2013.
10.
Yujian Li and Kwai-Man Luk, "Low-cost high-gain and broadband substrate-integrated-waveguide-fed patch antenna array for 60-GHz band", Antennas and Propagation IEEE Transactions on, vol. 62.11, pp. 5531-5538, 2014.

Contact IEEE to Subscribe

References

References is not available for this document.