A high-gain printed antenna array with directional pattern for WiFi application | IEEE Conference Publication | IEEE Xplore

A high-gain printed antenna array with directional pattern for WiFi application


Abstract:

In this paper, a 2×2 antenna array operating at WiFi band has been proposed. The antenna elements are fed with opposite phase to enhance antenna gain. A power divider wit...Show More

Abstract:

In this paper, a 2×2 antenna array operating at WiFi band has been proposed. The antenna elements are fed with opposite phase to enhance antenna gain. A power divider with phase shift has been designed to feed the antenna array. The antenna works at frequencies about 5.8 GHz, with −10dB bandwidth of 5.64-6.08 GHz. The simulated maximum gain of the array reaches to 11.46 dB.
Date of Conference: 21-23 August 2022
Date Added to IEEE Xplore: 19 October 2022
ISBN Information:
Conference Location: Hefei, China

Funding Agency:

References is not available for this document.

I. Introduction

Antenna array with high gain has wide applications in wireless communication. Printed antenna have virtues of low profile and easy fabrication which are attractive to form conformal antennas mounted on vehicles. An antenna element with a full ground plane is a good candidate to form a high gain antenna array due to its directional pattern. However, it has narrow bandwidth owing to the capcitance effect between the ground plane and radiation patch. Coupling feed technique has been used in [1]–[2] to improve antenna bandwidth. Magnetic dipole is also an effective way to improve bandwidth [3]–[4]. An antenna with wide bandwidth may have unsymmetrical structure and tilted pattern which makes it uneasy to obtain high gain.

Select All
1.
J. Zhang, L. Zhu, Q. Wu, N. Liu and W. Wu, "A Compact Microstrip-Fed Patch Antenna With Enhanced Bandwidth and Harmonic Suppression", IEEE Transactions on Antennas and Propagation, vol. 64, no. 12, pp. 5030-5037, Dec. 2016.
2.
X. -P. Chen, N. -W. Liu and G. Fu, "A Compact Wideband Microstrip-Fed Patch Antenna Using a U-Shaped Parasitic Element", 2019 IEEE International Conference on Computational Electromagnetics (ICCEM), pp. 1-3, 2019.
3.
Y. Kim, H. Dong, K. Kim and H. L. Lee, "Compact Planar Multipole Antenna for Scalable Wide Beamwidth and Bandwidth Characteristics", IEEE Transactions on Antennas and Propagation, vol. 68, no. 5, pp. 3433-3442, May 2020.
4.
J. Liu and Q. Xue, "Microstrip Magnetic Dipole Yagi Array Antenna With Endfire Radiation and Vertical Polarization", IEEE Transactions on Antennas and Propagation, vol. 61, no. 3, pp. 1140-1147, March 2013.
5.
Y. He, Y. Chen, L. Zhang, S. -W. Wong and Z. N. Chen, "An overview of terahertz antennas", China Communications, vol. 17, no. 7, pp. 124-165, July 2020.
6.
S. Park, V. Nguyen and R. S. Aziz, "Multi-band dual polarization dual antennas for beam reconfigurable antenna system for small cell base Station (Invited paper)", 2014 International Workshop on Antenna Technology: Small Antennas Novel EM Structures and Materials and Applications (iWAT), pp. 159-160, 2014.
7.
D. Feng, H. Zhai, L. Xi, S. Yang, K. Zhang and D. Yang, "A Broadband Low-Profile Circular-Polarized Antenna on an AMC Reflector", IEEE Antennas and Wireless Propagation Letters, vol. 16, pp. 2840-2843, 2017.
8.
H. Wang, S. Liu, L. Chen, W. Li and X. Shi, "Gain Enhancement for Broadband Vertical Planar Printed Antenna With H-Shaped Resonator Structures", IEEE Transactions on Antennas and Propagation, vol. 62, no. 8, pp. 4411-4415, Aug. 2014.

References

References is not available for this document.