Study of Inductive Reactance of a Micro Strip Line Structure with The Width Metal Strip
DOI:
https://doi.org/10.32628/IJSRST2294105Keywords:
Microstripline, Capacitance, Stripwdth, Geometry of strip.Abstract
In the field of high energy physics, it is often necessary to accelerate electron beams to velocities close to that of velocity of light. Due to interaction of electron beam with electromagnetic waves, kinetic energy of electron is increased. Microwaves have become very powerful experimental tools for study of some of the basic properties of materials. There are different structures for the propagation of electromagnetic powers in different modes. Also, there are various devices for sending massage or signals from one place to another remote place. In the age of Moughal period pigeons were employed for sending massage. Now in the age of modern science & technology, radios, television, telegraphs, satellite, cell phones and mobiles are used for sending the message from one place to other places how far away the Microwave Integrated circuits (MIC’S) have changed these systems in the present days by replacing large scale waveguides and co-axial component arrays to small light weight assemblies. These introduced microwave striplines, microslotlines, coplanar strip lines and coplanar waveguide etc. The design system used for these circuits has also changed from the early “cut & try” methods, using “ruler and knife” to the computer aided design (CAD). The Present Paper aims at the study 0f inductive property developed due to propagation of electromagnetic waves through the structure and its dependence on the width of the metal strip and other factors. Such study involves the characteristics parameters such as characteristics impedence and phase velocity and their variations with width metal strip and its utility in designing different planer devices.
References
- Bhat & Bharti “CAD of microstrip circuits & antennas”, 4th ISRAMT, New Delhi & Agra (India), 1995.
- S. Liayo “Microwave device and circuits” PHI, N.Delhi, 1995
- K. C. Gupta “Microwave”; Wiley Publication, (1976).
- H. Howe “Stripline circuit design of coupled Parallel lines”; Artechs House, 74, page 112-137.
- H.A. Wheeler “Transmission line properties of parallel strip separated by dielectric sheet”. IEEE, Tr. MTT-13, page 172-185 (1965).
- H.A. Wheeler “Transmission line properties of parallel wide strip by conformal mapping approximation”. IEEE; MTT vol.12, page 280-289, (1964).
- B. Cohn “Slotline on dielectric substrate”, IEEE Trans MTT-17, 1969, pp 168-178.
- B. Bhat and S. K. Koul. “Stripline like transmission lines for MIC’s”; Wiley Eastern Limited, (1990).
- M.V. Schneider “Dielectric loss in integrated Microwave circuits. Bell system”, Technical Journal, vol.48, page 2325-2332, (1969).
- A. Shelby, D. R. Smith, S. Schultz, “Experimental verification of a negative index of refraction,” Science, 292, pp. 77–79, 2001.
- R. Marques, F. Mesa, J. Martel, and F. Median, Comparative analysis of edge and broadside coupled split ring resonators for metamaterial design-Theory and experiment, IEEE Trans. Antennas Propag.51, pp 2572–2581.2003,
- D.R. Smith, J.B. Pendry, and M.C.K. Wiltshire, Metamaterials and negative refractive index, Science, 305, pp.788–792. 2004,
- S. A. Ramakrishna, “Physics of negative refractive index materials,” Rep. Prog. Phys. 68, pp. 449–521, 2005.
- P.M.T. Ikonen, S.I. Maslovski, C.R. Simovski, and S.A. Tretyakov, on artificial magnetodielectric loading for improving the impedance bandwidth properties of microstrip antennas, IEEE Trans. Antennas Propag. 54, pp.1654–1662. 2006
- Yoonjae Lee and Yang Hao, “Characterization of microstrip patch antennas on metamaterial Substrates loaded with complementary split-ring Resonators” Wiley Periodicals, Inc. Microwave Opt Technol. Lett. 50, pp.2131–2135, 2008.
- D.-B.; et, al., "Elimination of scan blindness with compact defected ground structures in microstrip phased array", IET Microwaves, Antennas and Propagation, 3: 269–275, doi:10.1049/iet-map:20080037, 2009.
- Guha, D.; Biswas, S.; Antar, Y. "Defected Ground Structure for Microstrip Antennas", in Microstrip and Printed Antennas: New Trends, Techniques, and Applications, John Wiley & Sons: UK, doi:10.1002/9780470973370, 2011.
- David M., Microwave Engineering Addison–Wesley Publishing Company. ISBN 978-81-265-4190-4, 2017.
- Kai Fong; Luk, Kwai Man,” Microstrip Patch Antennas”. World Scientific. pp. 8–12. ISBN 978-9813208612, 2017.
- Pandey, Anil, “Practical Microstrip and Printed Antenna Design”, Bostan: Artech House. p. 443. ISBN 9781630816681, 2019.
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