A Wideband U-Slot Loaded Modified E-Shape Microstrip Patch Antenna and Frequency Agile Behavior by Employing Different Height Ground Plane and Ribbon Type Switches

Authors

  • Rahul Bakshi Department of Electrical and Computer Engineering San Diego State University, 5500 Campanile Drive San Diego, CA, USA, 92182-1309
  • Satish K. Sharma Department of Electrical and Computer Engineering San Diego State University, 5500 Campanile Drive San Diego, CA, USA, 92182-1309

Keywords:

A Wideband U-Slot Loaded Modified E-Shape Microstrip Patch Antenna and Frequency Agile Behavior by Employing Different Height Ground Plane and Ribbon Type Switches

Abstract

This paper presents investigation results on a wideband U-slot loaded modified Eshape (USLMES) microstrip patch antenna with frequency agile behavior by employing different height ground plane and ribbon type copper switches. The USLMES patch is excited using the notch feed mechanism by a 50 ? coaxial probe outside the patch surface so that coaxial probe does not contribute significantly to the peak-crosspolarization levels. The parametric study results are presented for the wideband patch antenna design and important parameters have been noted. The proposed wideband patch antenna offers impedance (S11 = ?10 dB) and 3dB gain bandwidths of at least 35% (3.09GHz to 4.42GHz) with stable radiation patterns and acceptable crosspolarization levels. The effect of ground plane height variation not only alters operating frequency, but also, Gain and impedance bandwidth. Frequency agility is also achieved from 3.02GHz to 4.95 GHz by turning different combination of switches ON/OFF. The prototype antennas were fabricated and experimentally verified for both wideband patch performance and frequency agility by implementing different ground plane heights. The simulated performance is in reasonable agreement with the measured results.

Downloads

Download data is not yet available.

References

Y. J. Sung, T. U. Jang, and Y.-S. Kim, “A

Reconfigurable Microstrip Antenna for

Switchable Polarization,” IEEE Microwave

ACES JOURNAL, VOL. 26, NO. 7, JULY 2011

and Wireless Components Letters, vol. 14, no.

, pp. 534-536, 2004.

D. H. Schaubert, F. G. Farrar, A. Sindoris, and

S. T. Hayes,” Microstrip Antennas with

Frequency Agility and Polarization Diversity,”

IEEE Transactions on Antennas and

Propagation, vol. 29, no. 1, pp. 118-123,

F. Yang and Y. Rahmat-Samii, “A

Reconfigurable Patch Antenna using

Switchable Slots for Circular Polarization

Diversity,” IEEE Microwave and Wireless

Components Letters, vol. 12, no. 3, pp. 96-98,

S. Liu, M.-J. Lee, C. Jung, G.-P. Li, and F. De

Flaviis, “A Frequency-Reconfigurable

Circularly Polarized Patch Antenna by

Integrating MEMS Switches,” IEEE Antennas

and Propagation Society International

Symposium, Washington DC, USA vol. 2A,

pp. 413-416, July 2005.

W. H. Weedon, W. J. Payne, and G. M.

Rebeiz, “MEMS-Switched Reconfigurable

Antennas,” IEEE AP-S Int. Symp, Boston,

MA, USA, vol. 3, pp. 654–657, July 2001.

C. Jung, M. Lee, G. P. Li, and F. De Flaviis,

“Reconfigurable Scan Beam Single-Arm

Spiral Antenna Integrated with RF-MEMS

Switches,” IEEE Trans. Antennas Propag.,

vol. 54, pp. 455–463, 2006.

Z. Jin and A. Mortazawi, “An L-Band Tunable

Microstrip Antenna using Multiple Varactors,”

IEEE Antennas and Propagation Society

International Symposium, Columbus, OH,

USA, vol. 4, pp. 524- 527, June 2003.

L. Shafai, S. K. Sharma, L. Shafai, M.

Daneshmand, and P. Mousavi “Phase Shift

Bandwidth and Scan Range in Microstrip

Arrays by the Element Frequency Tuning,”

IEEE Transactions on Antennas and

Propagation, vol. 54, no. 5, May 2006.

L. Zhou, S. K. Sharma, and S. Kassegne,

“Reconfigurable Microstrip Rectangular Loop

Antennas using RF MEMS Switches,”

Microwave and Optical Technology Letters

(MOTL), vol. 50, no. 1, pp. 252-256, Jan

C. Shafai, L. Shafai, R. Al-Dahleh, Dwayne

D. Chrusch, and S. K. Sharma,

“Reconfigurable Ground Plane Membranes for

Analog/Digital Microstrip Phase Shifters and

Frequency Agile Antenna,” The 2005

International Conference on MEMS, NANO,

and Smart Systems (ICMENS), Banff, Alberta,

Canada, pp. 287-289, July 2005.

K. F. Lee, K. M. Luk, K. F. Tong, S. M.

Shum, T. Huynh, and R. Q. Lee,

“Experimental and Simulation Studies of the

Coaxially Fed U-Slot Rectangular Patch

Antenna,” Proc. Inst. Elec. Eng., pt. H, vol.

, pp.354–358, Oct. 1997.

V. Natarajan and D. Chatterjee, “Comparative

Evaluation of Some Empirical Design

Techniques for CAD Optimization of

Wideband U-Slot Microstrip Antennas,”

ACES Journal, vol. 20, no. 1, pp. 50-69, 2005.

H. F. Pues, and A. R. Van de Capelle, “An

Impedance-Matching Technique for

Increasing the Bandwidth of Microstrip

Antennas,” IEEE Trans. Antennas Propag.,

vol. 37, no. 11, pp. 1345–1354, 2006.

F. Yang, X.-X. Zhang, X. Ye, and Y. RahmatSamii, “Wide-Band E Shape Patch Antennas

for Wireless Communications,” IEEE

Transactions on Antennas and Propagation,

vol. 49, no. 7, July 2001.

Y. Ge, K. P. Esselle, and T. S. Bird “E Shape

Patch Antennas for High Speed Wireless

Networks,” IEEE Transactions on Antennas

and Propagation, vol. 52, no. 12, December

I. Bahl, P. Bhartia, R. Garg, and A. Ittipiboon,

Microstrip Patch Antenna Handbook, Artech

House, 2001.

Ansoft Corporations Designer and High

Frequency Structure Simulator (HFSS).

Computer Simulation Tool (CST)’s

Microwave Studio, 2009.

C. Shafai, S. K. Sharma, L. Shafai, and D.

Chrusch, “Microstrip Phase Shifters using

Ground-Plane Reconfiguration,” IEEE

Transactions on Microwave Theory and

Techniques, vol. 52, no. 1, pp. 144-153,

January 2004.

C. Shafai, S. K. Sharma, J. Yip, L. Shafai, and

L. Shafai, “Microstrip Delay Transmission

Line Phase Shifters by Actuation of Integrated

Ground Plane Membranes,” IET Journal on

Microwaves, Antennas and Propagation (IET

MAP), vol. 2, no. 2, pp. 163-170, March 2008.

Downloads

Published

2022-05-02

How to Cite

[1]
R. . Bakshi and S. K. . Sharma, “A Wideband U-Slot Loaded Modified E-Shape Microstrip Patch Antenna and Frequency Agile Behavior by Employing Different Height Ground Plane and Ribbon Type Switches”, ACES Journal, vol. 26, no. 7, pp. 539–550, May 2022.

Issue

Section

General Submission