Development of Square Patch Microstrip Antenna Design by Using Three Dimension Finite Difference Time Domain Methods

Development of Square Patch Microstrip Antenna Design by Using Three Dimension Finite Difference Time Domain Methods

Authors

DOI:

https://doi.org/10.56741/jnest.v2i03.412

Keywords:

Antenna Engineering, Finite Difference, Mathematical Modeling, Numerical Analysis, Square Patch Microstrip Antenna, Time Domain

Abstract

The paper mainly focuses on developing a Square-shaped Microstrip Patch Antenna Design using Three Dimension Finite Difference Time Domain Methods. There have been many time steps for analyzing the electric field in the antenna design. The time step has been started from 0 ps to 1991 ps. The electric field changes from the starting point to the end of the time step prove the analysis of the developed antenna system's input signal and return loss, especially the square-shaped microstrip patch antenna based on the FDTD technique. The simulation results confirm that the fabricated antenna system is a perfect candidate for high-frequency purposes. The analysis has been developed by using MATLAB language.

Downloads

Download data is not yet available.

Author Biographies

Hla Myo Tun, Yangon Technological University (Pathein)

is a Leading Pro-Rector for Research and Engineering Higher Education of Yangon Technological University (YTU). He specializes in professional training for Engineering Higher Education leaders, heads of departments and faculty members. He also directs Research and Development programmes and workshops and works as a certified Quality Assurance Evaluator of the Myanmar Engineering Council (MEngC) since 2019. (email: hlamyotun@ytu.edu.mm).

Devasis Pradhan, Acarya Institute of Technology

has worked as an Assistant Professor in Grade 1 and Associate Dean of Research and Development at Acharya Institute of Technology, Bengaluru, Karnataka, from 2017 onwards. His current research includes the effectiveness of 5G Green Communications, mmWave antenna design, UWB antennas, and its implementation. With 16+ years of experience in the Academic and Research field, he has published 76 research papers and eight papers submitted to IEEE Access and Reputed Book and  4 Authored Books and 3 Edited Books (CRC, ISTE, Bentham Science) with a reputed publishing house. (email: devasispradhan@acharya.ac.in).

Manjusha Behera, School of Electronics Engineering Campus 12

has 17 Years of Teaching experience. She is currently doing research in the domain of digital image processing. Subjects Taught: Analog Electronics Circuits, Information Theory and coding, Electronics Measurement and Instrumentation, Control System, Digital Electronics Laboratory handled: ECN Lab, AIC lab. (email: mbeherafet@kiit.ac.in).

Myat Su Nwe, King Lauk Phya Institute of Technology of Myaungmya

Dr. Myat Su Nwe is a Professor of the Department of Mechanical Engineering of King Lauk Phya Institute of Technology Myaungmya. She received her B.Eng. Degree in Mechanical from Technological University (Toungoo) in 2004, her M.Eng. Degree in Mechanical in King Lauk Phya Institute of Technology Myaungmya in 2006, her Ph.D. Degree in Mechanical Engineering at King Lauk Phya Institute of Technology Myaungmya in 2008, respectively. She published more than 50 peer-review journals in the world.

Su Mon Aye, Yangon Technological University (Pathein)

is the Associate Professor of the Department of Electronic Engineering of Technological University (Pathein). She received her B.Eng. Degree in Electronics from Technological University (Pathein) in 2005, her M.Eng. Degree in Electronics from West Yangon Technological University in 2011, and her Ph.D. Degree in Electronic Engineering from Mandalay Technological University in 2014, respectively. She published 14 peer-reviewed journals in the world. (email: ecdepartment.ytu@gmail.com).

Aye Than Mon, Yangon Technological University (Pathein)

is the Professor and Head of the Department of Electronic Engineering of Technological University (Pathein). She received her B.Eng. Degree in Electronics from Technological University (Pathein) in 2005, her M.Eng. Degree in Electronics from West Yangon Technological University in 2011, and her Ph.D. Degree in Electronic Engineering from Mandalay Technological University in 2014, respectively. She published 14 peer-reviewed journals in the world. (email: ecdepartment.mtu@gmail.com).

Zaw Min Naing, Department of Research and Innovation, Ministry of Education, Myanmar

is a Deputy Director General of Renewable Energy & Electronic Technology Research Centre under the Department of Research and Innovation (DRI), Ministry of Education (MOE), Myanmar. He received his B.Eng. degree from Yangon Institute of Technology (YIT) in 1992, M.Eng. degree from YTU in 1999, and Ph.D. from the School of Electrical and Electronics Engineering (EEE), Nanyang Technological University (NTU), Singapore in 2005 all in electronics and communication engineering. He has worked as a supervisor and external examiner for PhD electrical and electronics candidates from Technological Universities under the Ministry of Education. He has supervised about 70 PhD candidates. (email: drzaw290615@gmail.com).

References

Dinakaran, K., Vajikabanu, M., Piriyadharsini, M., & Rajeshwari, D. (2016). Design of microstrip patch antenna for WIFI applications. International Journal of Advanced Research in Electronics and Communication Engineering, 5(1), 38-41.

Pawar, S., Sreemathy, R., & Hake, S. (2016). Effect of different symmetric slits on microstrip patch antenna. International Journal Of Microwave Engineering (JMICRO), 1(4), 23-33. DOI: https://doi.org/10.5121/Jmicro.2016.1403

Mahendran, K., Gayathri, R., & Sudarsan, H. (2021). Design of multi band triangular microstrip patch antenna with triangular split ring resonator for S band, C band and X band applications. Microprocessors and Microsystems, 80, 103400. DOI: https://doi.org/10.1016/j.micpro.2020.103400

Balanis, C. A. (1997). Antenna Theory. 2nd ed. New York: Wiley.

Farooq, U., Asad, J., & Jamal, H. (2003, December). Design of circularly polarized square microstrip patch antenna. In 7th International Multi Topic Conference, 2003. INMIC 2003. (pp. 228-231). IEEE.

Edling, T. (2012). Design of circular polarized dual band patch antenna. Dissertation. Uppsala University.

Sun, L., Ou, G., Lu, Y., Shusen, T., & Kishk, A. (2013). Axial ratio bandwidth of a circularly polarized microstrip antenna. In Advancement in microstrip antennas with recent applications (pp. 229-246). Rijeka: InTech. DOI: https://doi.org/10.5772/54664

Bai, B. K. (2012, January). Design and simulation of circularly polarized pentagonal-shaped microstrip patch antenna at RFID frequency 2.4 Hz. In CS & IT Conference Proceedings (Vol. 2, No. 1). CS & IT Conference Proceedings.

Stutzman, W. L., & Thiele, G. A. (2012). Antenna theory and design. John Wiley & Sons.

Moxley III, F. I., Zhu, F., & Dai, W. (2012). A generalized fdtd method with absorbing boundary condition for solving a time-dependent linear schrodinger equation. American Journal of Computational Mathematics, 2(03), 163-172. DOI: https://doi.org/10.4236/ajcm.2012.23022

Tun, H. M., Win, K. K. K., Naing, Z. M., Pradhan, D., & Sahu, P. K. (2021). Measurement Analysis of Specific Absorption Rate in Human Body Exposed to a Base Station Antenna by Using Finite Difference Time Domain Techniques. Semiconductor Science and Information Devices, 3(2), 17-26. DOI: https://doi.org/10.30564/ssid.v3i2.3861

Tun, H. M., Lin, Z. T. T., Pradhan, D., & Sahu, P. K. (2021, December). Slotted design of rectangular single/dual feed planar microstrip patch antenna for SISO and MIMO system. In 2021 International Conference on Electrical, Computer and Energy Technologies (ICECET) (pp. 1-6). IEEE. DOI: https://doi.org/10.1109/ICECET52533.2021.9698738

Oo, W. M., Tun, H. M., Nway, T. M., Pradhan, D., Sahu, P. K., & Naing, Z. M. (2022, January). Design, Analysis and Fabrication of Dual Band Microstrip Patch Antenna for (L2) Band GPS and WiFi Applications. In 2022 International Conference for Advancement in Technology (ICONAT) (pp. 1-5). IEEE.

Phyo, Z. M., Nway, T. M., Win, K. K. K., & Tun, H. M. (2020). Development of microstrip patch antenna design for gps in Myanmar. American Journal of Electromagnetics and Applications, 8(1), 1-11. DOI: https://doi.org/10.11648/j.ajea.20200801.11

Lin, Z. T. T., & Tun, H. M. (2020). Design and fabrication of a planar inverted-F antenna (PIFA) for LEO satellite application. American Journal of Electromagnetics and Applications, 8(1), 28-32. DOI: https://doi.org/10.11648/j.ajea.20200801.14

Wah, N. K. S., & Tun, H. M. (2020). Compact circularly polarized slotted symmetric v-slits microstrip patch antenna for ISM band applications. Asian Journal of Applied Sciences, 8(6). https://doi.org/10.24203/ajas.v8i6.6385 DOI: https://doi.org/10.24203/ajas.v8i6.6385

Pradhan, D., & Tun, H. M. (2023). Circular-MSPA: Design and Analysis of Applications Intended for 5G Environment. Journal of Network Security Computer Networks, 9(1), 14-19. DOI: https://doi.org/10.46610/JONSCN.2023.v09i01.002

Pradhan, D., & Tun, H. M. (2022). Security Challenges: M2M Communication in IoT. Journal of Electrical Engineering and Automation, 4(3), 187-199. DOI: https://doi.org/10.36548/jeea.2022.3.006

Oo, W. M., Tun, H. M., Nway, T. M., Pradhan, D., Sahu, P. K., & Naing, Z. M. (2022, January). Design, Analysis and Fabrication of Dual Band Microstrip Patch Antenna for (L2) Band GPS and WiFi Applications. In 2022 International Conference for Advancement in Technology (ICONAT) (pp. 1-5). IEEE. DOI: https://doi.org/10.1109/ICONAT53423.2022.9725872

Dash, A., Pradhan, D., Tun, H. M., & Naing, Z. M. (2022). Integration of AI to Enhance 5G Capabilities in Smart Cities. Journal of Image Processing and Artificial Intelligence, 8(3), 4–20. https://doi.org/10.46610/joipai.2022.v08i03.003 DOI: https://doi.org/10.46610/JOIPAI.2022.v08i03.003

Downloads

Published

2023-09-03 — Updated on 2023-09-26

How to Cite

Myo Tun, H., Pradhan, D., Behera, M., Su Nwe, M., Mon Aye, S., Than Mon, A., & Min Naing, Z. (2023). Development of Square Patch Microstrip Antenna Design by Using Three Dimension Finite Difference Time Domain Methods . Journal of Novel Engineering Science and Technology, 2(03), 83–88. https://doi.org/10.56741/jnest.v2i03.412

Plaudit

Most read articles by the same author(s)

Loading...