Hostname: page-component-848d4c4894-x5gtn Total loading time: 0 Render date: 2024-05-07T13:02:49.198Z Has data issue: false hasContentIssue false

Co-channel interference analysis at faulty K band waveguide joints

Published online by Cambridge University Press:  30 March 2022

Neelam Sharma*
Affiliation:
Department of Electronics Engineering, Medicaps University Indore, M.P. 453331, India
Debendra Kumar Panda
Affiliation:
Department of Electronics Engineering, Medicaps University Indore, M.P. 453331, India
*
Author for correspondence: Neelam Sharma, E-mail: neelam2407sharma@gmail.com

Abstract

Channel interference is a significant issue for many applications such as satellite communication, mobile communication, and RADAR communication. This paper presents co-channel interference analysis at faulty K band waveguide joints using the multi-cavity modeling technique. Numerical data obtained from multi-cavity modeling technique analysis has been compared with CST microwave studio simulated data and verified with measured data.

Type
Passive Components and Circuits
Copyright
Copyright © The Author(s), 2022. Published by Cambridge University Press in association with the European Microwave Association

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Lafata, P (2011) FAR-END crosstalk modeling based on capacitive and inductive unbalance between pairs in a cable. Information and Communication Technologies and Services 9, 1420.Google Scholar
Nasab, MH and Cheldevi, A (2006) Coupling model for the two orthogonal microstrip lines in two layer PCB board (quasi – TEM approach). Progress in Electromagnetics Research 60, 153163.CrossRefGoogle Scholar
Balasubramanian, R, Miyazaki, YY and Kondo, M (2007) Investigation of crosstalk effects due to optical fiber nonlinearities in WDM CATV network. Progress In Electromagnetics Research Online 3, 940942.Google Scholar
Panda, DK and Chakraborty, A (2008) Analysis of co-channel interference at waveguide joints using multiple cavity modeling technique. Progress in Electromagnetics Research Letters 4, 9198.CrossRefGoogle Scholar
Panda, DK and Chakraborty, A (2011) Cross talk analysis at faulty multi-channel waveguide joints. International Journal of Microwave and Optical Technology 6, 5156.Google Scholar
Sharma, N and Panda, DK (2021) Crosstalk analysis of E-plane Ku band waveguide joints. Progress in Electromagnetics Research C 151, 175185.CrossRefGoogle Scholar
Vengadarajan, A (1999) Multiple Cavity Modelling Technique for Solving Aperture Coupled Waveguide Junctions (Ph.D. dissertation). Department of Electronics & Electrical Communication Engineering, Indian Institute of Technology, Kharagpur.Google Scholar
Das, S, Chakraborty, A and Chakrabarty, A (2006) Analysis of Folded E-plane Tee Junction using Multiple Cavity Modeling Technique. ICECE, Dhaka, Bangladesh.CrossRefGoogle Scholar
Panda, DK and Chakraborty, A (2008) Analysis of Folded H-plane Tee Junction Using Multiple Cavity Modeling Technique. Proceedings of International conferences on Industrial and Information system, IIT Kharagpur.CrossRefGoogle Scholar
Das, S and Chakraborty, A (2006) A novel modeling technique to solve a class of rectangular waveguide based circuit and radiators. Progress in Electromagnetic Research 61, 231252.CrossRefGoogle Scholar
Das, S, Chakraborty, A and Chakraborty, A (2007) Analysis of Multiport Waveguide Power Divider/Combiner for Phased Array Application. NCC 2007, Kanpur, India.Google Scholar
Panda, DK (2010) Analysis and Design Of Longitudinal Rectangular Waveguide Power Dividers/Combiners using Multiple Cavity Modeling Technique (Ph.D.Dissertation). Department of Electronics & Electrical Communication Engineering, Indian Institute of Technology, Kharagpur.Google Scholar
Panda, DK and Chakraborty, A (2015) Analysis and design of longitudinal power divider/combiner for higher frequencies. International Journal of Microwave and Optical Technology 10, 240244.Google Scholar
Harrington, RF (1961) Time Harmonic Electromagnetic Fields. New York: McGraw-Hill Book Company.Google Scholar
Harrington, RF (1968) Field Computation by Moment Methods. Malabar, FL: Roger E.Krieger Publishing Company.Google Scholar