ENE 429 Antenna and Transmission lines Theory

Slides:



Advertisements
Similar presentations
ENE 428 Microwave Engineering
Advertisements

Prof. Ji Chen Notes 15 Plane Waves ECE Spring 2014 z x E ocean.
Uniform plane wave.
ELEN 3371 Electromagnetics Fall Lecture 6: Maxwell’s Equations Instructor: Dr. Gleb V. Tcheslavski Contact: Office.
PH0101 UNIT 2 LECTURE 31 PH0101 Unit 2 Lecture 3  Maxwell’s equations in free space  Plane electromagnetic wave equation  Characteristic impedance 
EEE 498/598 Overview of Electrical Engineering
RS 1 ENE 428 Microwave Engineering Lecture 1 Introduction, Maxwell’s equations, fields in media, and boundary conditions.
Shuichi Noguchi, KEK6-th ILC School, November Shuichi Noguchi, KEK6-th ILC School, November RF Basics; Contents  Maxwell’s Equation  Plane.
ENE 428 Microwave Engineering
Co-Axial Cable Analysis. Construction Details Question 1 What is the fundamental equation relating the magnetic field surrounding a conductor and the.
Microwave Engineering
Microwave Devices E511 Lecture 2 Amr Al.Awamry. Agenda Plan waves in Lossless Medium Plan waves in general lossy Medium In Good conductor General Plan.
Chung-Ang University Field & Wave Electromagnetics CH 8. Plane Electromagnetic Waves 8-4 Group Velocity 8-5 Flow of Electromagnetic Power and the Poynting.
EEE340Lecture Plane waves in lossy media In a source-free lossy medium where (8-42)
EEE340Lecture 341 The time domain fields are: Physically, the H field is perpendicular to the E field, and H is 45 degree lacking. By setting the decay.
Electromagnetic waves -Review- Sandra Cruz-Pol, Ph. D. ECE UPRM Mayag ü ez, PR.
EEL 3472 ElectromagneticWaves. 2 Electromagnetic Waves Spherical Wavefront Direction of Propagation Plane-wave approximation.
Electromagnetic waves -Review-
Lecture 2. Derive the transmission line parameters (R, L, G, C) in terms of the electromagnetic fields Rederive the telegrapher equations using these.
1 ECE 480 Wireless Systems Lecture 3 Propagation and Modulation of RF Waves.
1 EEE 498/598 Overview of Electrical Engineering Lecture 11: Electromagnetic Power Flow; Reflection And Transmission Of Normally and Obliquely Incident.
Transmission Line Theory
Wave Motion & EM Waves (IV)
ECE 546 – Jose Schutt-Aine1 ECE 546 Lecture 02 Review of Electromagnetics Spring 2014 Jose E. Schutt-Aine Electrical & Computer Engineering University.
RS ENE 428 Microwave Engineering Lecture 3 Polarization, Reflection and Transmission at normal incidence 1.
ELECTROMAGNETICS AND APPLICATIONS Lecture 3 Waves in Conducting / Lossy Medium. Electromagnetic Power & Energy. Luca Daniel.
Fundamentals of Electromagnetics: A Two-Week, 8-Day, Intensive Course for Training Faculty in Electrical-, Electronics-, Communication-, and Computer-
The University of Delaware
RS ENE 428 Microwave Engineering Lecture 3 Polarization, Reflection and Transmission at normal incidence 1.
Lale T. Ergene Fields and Waves Lesson 5.3 PLANE WAVE PROPAGATION Lossy Media.
ENE 325 Electromagnetic Fields and Waves
1 RS ENE 428 Microwave Engineering Lecture 4 Reflection and Transmission at Oblique Incidence, Transmission Lines.
ECE 3317 Prof. David R. Jackson Notes 15 Plane Waves [Chapter 3]
So far, we have considered plane waves in an infinite homogeneous medium. A natural question would arise: what happens if a plane wave hits some object?
Tue. Nov. 11, 2008Physics 208, Lecture 211 From last time… EM waves Inductors in circuits I? + -
ENE 428 Microwave Engineering
Electromagnetic waves -Review- Sandra Cruz-Pol, Ph. D. ECE UPRM Mayag ü ez, PR.
WAVEGUIDES.
Lecture 2. Review lecture 1 Wavelength: Phase velocity: Characteristic impedance: Kerchhoff’s law Wave equations or Telegraphic equations L, R, C, G ?
RS ENE 428 Microwave Engineering Lecture 2 Uniform plane waves.
ENE 429 Antenna and Transmission lines Theory
ENE 429 Antenna and Transmission lines Theory Lecture 1 Uniform plane waves.
TC303 Antenna&Propagation Lecture 1 Introduction, Maxwell’s Equations, Fields in media, and Boundary conditions RS1.
ENE 429 Antenna and Transmission lines Theory Lecture 7 Waveguides DATE: 3-5/09/07.
CH 8. Plane Electromagnetic Waves
Hanyang University 1/24 ANTENNA THEORY ANALYSIS AND DESIGN Chapter.2 Sungjoon YOON
Lecture 6: Maxwell’s Equations
UPB / ETTI O.DROSU Electrical Engineering 2
Plane electromagnetic waves
ELEC 401 MICROWAVE ELECTRONICS Lecture 3
ENE 428 Microwave Engineering
Chapter 11. The uniform plane wave
Maxwell's equations Poynting's theorem time-harmonic fields.
Maxwell’s Equations.
Maxwell’s Equation.
ELEC 401 MICROWAVE ELECTRONICS Lecture 3
ELEC 401 MICROWAVE ELECTRONICS Lecture 3
A.D.Patel institute of technology
PLANE WAVE PROPAGATION
ELEC 401 MICROWAVE ELECTRONICS Lecture 3
ENE 325 Electromagnetic Fields and Waves
ECE 305 Electromagnetic Theory
Eng. Mohamed Ossama Ashour
ENE 325 Electromagnetic Fields and Waves
ENE 325 Electromagnetic Fields and Waves
ENE 428 Microwave Engineering
ENE 428 Microwave Engineering
ENE 428 Microwave Engineering
1st Week Seminar Sunryul Kim Antennas & RF Devices Lab.
Presentation transcript:

ENE 429 Antenna and Transmission lines Theory Lecture 2 Uniform plane waves

Review Wave equations Time-Harmonics equations where

Time-harmonic wave equations or where This  term is called propagation constant or we can write  = +j where  = attenuation constant (Np/m)  = phase constant (rad/m)

Transverse ElectroMagnetic wave (TEM) http://www.edumedia.fr/a185_l2-transverse-electromagnetic-wave.html

Solutions of Helmholtz equations The instantaneous forms of the solutions The phasor forms of the solutions incident wave reflected wave

Attenuation constant  Attenuation constant determines the penetration of the wave into a medium Attenuation constant are different for different applications The penetration depth or skin depth,  is the distance z that causes to reduce to z = 1  z = 1/  = 

Good conductor At high operation frequency, skin depth decreases A magnetic material is not suitable for signal carrier A high conductivity material has low skin depth

Currents in conductor To understand a concept of sheet resistance from Rsheet () sheet resistance At high frequency, it will be adapted to skin effect resistance

Currents in conductor Therefore the current that flows through the slab at t   is

Currents in conductor From Jx or current density decreases as the slab gets thicker

Currents in conductor For distance L in x-direction R is called skin resistance Rskin is called skin-effect resistance For finite thickness,

Currents in conductor Current is confined within a skin depth of the coaxial cable

Ex1 A steel pipe is constructed of a material for which r = 180 and  = 4106 S/m. The two radii are 5 and 7 mm, and the length is 75 m. If the total current I(t) carried by the pipe is 8cost A, where  = 1200 rad/s, find: The skin depth The skin resistance

c) The dc resistance

The Poynting theorem and power transmission Total power leaving the surface Joule’s law for instantaneous power dissipated per volume (dissi- pated by heat) Rate of change of energy stored In the fields Instantaneous poynting vector

Example of Poynting theorem in DC case Rate of change of energy stored In the fields = 0

Example of Poynting theorem in DC case From By using Ohm’s law,

Example of Poynting theorem in DC case Verify with From Ampère’s circuital law,

Example of Poynting theorem in DC case Total power W

Uniform plane wave (UPW) power transmission Time-averaged power density W/m2 amount of power W for lossless case, W/m2

Uniform plane wave (UPW) power transmission for lossy medium, we can write intrinsic impedance for lossy medium

Uniform plane wave (UPW) power transmission from W/m2 Question: Have you ever wondered why aluminum foil is not allowed in the microwave oven?

Polarization UPW is characterized by its propagation direction and frequency. Its attenuation and phase are determined by medium’s parameters. Polarization determines the orientation of the electric field in a fixed spatial plane orthogonal to the direction of the propagation.

Linear polarization Consider in free space, At plane z = 0, a tip of field traces straight line segment called “linearly polarized wave”

Linear polarization A pair of linearly polarized wave also produces linear polarization At z = 0 plane At t = 0, both linearly polarized waves Have their maximum values

More generalized linear polarization More generalized of two linearly poloraized waves, Linear polarization occurs when two linearly polarized waves are in phase out of phase

Elliptically polarized wave Super position of two linearly polarized waves that If x = 0 and y = 45, we have

Circularly polarized wave occurs when Exo and Eyo are equal and Right hand circularly polarized (RHCP) wave Left hand circularly polarized (LHCP) wave

Circularly polarized wave Phasor forms: for RHCP, for LHCP, from Note: There are also RHEP and LHEP

Ex2 Given ,determine the polarization of this wave

Ex3 The electric field of a uniform plane wave in free space is given by , determine The magnetic field intensity

c) d) Describe the polarization of the wave