Showing posts with label Antennas and Wave Propagation. Show all posts
Showing posts with label Antennas and Wave Propagation. Show all posts

Thursday, 17 January 2013

Adaptive Antennas and Phased Arrays Course


Course Description
Adaptive antennas and phased arrays, with rapidly scanned beams or multiple beams, are commonly suggested for radar and communications systems in ground-based, airborne, and spaceborne applications that must function in the presence of jamming and other sources of interference.
This lecture series begins with a discussion of the fundamentals of adaptive antennas pertaining to radar and communications systems, with an emphasis on consumption of adaptive array degrees of freedom from the jammer's viewpoint. Displaced phase center antenna array mutual coupling effects in the problem of adaptive suppression of radar clutter is discussed in Lecture 2. Next, in Lectures 3 through 5 a theoretical foundation for a focused near-field technique that can be used to quantify the far-field adaptive nulling performance of a large aperture adaptive phased array system is described. Simulations of focused near-field and focused far-field nulling performance for adaptive arrays are presented for arrays of isotropic elements in Lecture 3 and for arrays including mutual coupling effects in Lectures 4 and 5. Experimental testing of the focused near-field adaptive nulling technique for phased arrays is described in Lecture 6. An experimental high-resolution multiple-beam adaptive-nulling antenna system is described in Lecture 7.
Lectures 8 through 16 then concentrate on phased array antenna development for a variety of array elements. Lecture 8 provides an introduction to phased array antenna theory. In Lecture 9, finite and infinite array analyses and measurements for periodic phased arrays of monopole elements are presented. Lecture 10 describes the focused near-field polarization characteristics of monopole phased arrays as related to adaptive array testing in the near field. Next, in Lecture 11 a test bed phased array that implements the displaced phase center antenna technique, as related to the analysis presented in Lecture 2, is described along with the planar near field testing technique that is used to assess adaptive clutter cancellation performance. The planar near field scanning method for measuring low-sidelobe radiation patterns of phased arrays is described in Lecture 12. Experimental arrays of horizontally polarized loop-fed slotted cylinder antennas (Lecture 13), dual-polarized dipole arrays (Lecture 14), and ultrawideband dipole arrays (Lecture 15) are described. In Lecture 16, rectangular waveguide arrays are analyzed by the method of moments.


Video lectures and lecture notes
  1. Adaptive Antennas and Degrees of Freedom
  2. Array Mutual Coupling Effects on Adaptive Radar Clutter Suppression
  3. Focused Near-Field Techniques for Evaluating Adaptive Phased Arrays
  4. Moment Method Analysis of Focused Near-Field Adaptive Nulling
  5. Focused Near-Field Testing of Multiphase-Center Adaptive Array Radar Systems
  6. Experimental Testing of Focused Near-Field Adaptive Nulling
  7. Experimental Testing of High Resolution Nulling with a Multiple Beam Antenna
  8. Phased Array Antennas - An Introduction
  9. Monopole Phased Array Antenna Design, Analysis, and Measurements
  10. Monopole Phased Array Field Characteristics in the Focused Near-Field Region
  11. Displaced Phase Center Antenna Measurements Using Near-Field Scanning
  12. Low-Sidelobe Phased Array Antenna Measurements Using Near-Field Scanning
  13. Arrays of Horizontally Polarized Omnidirectional Elements
  14. Finite Arrays of Crossed V-Dipole Elements
  15. Experimental Ultrawideband Dipole Antenna Array
  16. Finite Rectangular Waveguide Phased Arrays

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Thursday, 10 January 2013

Electromagnetic Fields and Energy Video Lectures


Course Description
Published in 1989 by Prentice-Hall, this book is a useful resource for educators and self-learners alike. The text is aimed at those who have seen Maxwell's equations in integral and differential form and who have been exposed to some integral theorems and differential operators. A hypertext version of this textbook can be found here. An accompanying set of video demonstrations is available below.

These video demonstrations convey electromagnetism concepts. The demonstrations are related to topics covered in the textbook. They were prepared by Markus Zahn, James R. Melcher, and Manuel L. Silva and were produced by the Department of Electrical Engineering and Computer Science at the Massachusetts Institute of Technology.

The purpose of these demonstrations is to make mathematical analysis of electromagnetism take on physical meaning. Based on relatively simple configurations and arrangements of equipment, they make a direct connection between what has been analytically derived and what is observed. They permit the student to observe physically what has been described symbolically. Often presented with a plot of theoretical predictions that are compared to measured data, these demonstrations give the opportunity to test the range of validity of the theory and present a quantitative approach to dealing with the physical world.

The short form of these videos contains the demonstrations only. The long form also presents theory, diagrams, and calculations in support of the demonstrations.

Course Contents

Chapter 1: Maxwell's integral laws in free space (PDF)
1.3.1, 1.5.1: Coulomb's force law and measurements of charge Demo Demo and Theory
1.4.1: Magnetic field of a line current Demo Demo and Theory
1.6.1: Voltmeter reading induced by magnetic induction Demo Demo and Theory

Chapter 2: Maxwell's differential laws in free space (PDF)

Chapter 3: Introduction to electroquasistatics and magnetoquasistatics (PDF)

Chapter 4: Electroquasistatic fields: the superposition integral point of view (PDF)
4.7.1: Charge induced in ground plane by overhead conductor Demo  - Demo and Theory

Chapter 5: Electroquasistatic fields from the boundary value point of view (PDF)
5.5.1: Capacitance attenuator Demo Demo and Theory

Chapter 6: Polarization (PDF)
6.6.1: An artificial dielectric Demo Demo and Theory

Chapter 7: Conduction and electroquasistatic charge relaxation (PDF)
7.5.1: Distribution of Unpaired Charge (Courtesy of Education Development Center, Inc. Used with permission.) Demo - Demo and Theory
7.5.2: Rotation of an Insulating Rod in a Steady Current (Courtesy of Education Development Center, Inc. Used with permission.) Demo - Demo and Theory
7.7.1: Relaxation of Charge on Particle in Ohmic Conductor (Courtesy of Education Development Center, Inc. Used with permission.)Demo - Demo and Theory
7.7.1 Supplement: Van de Graaff and Kelvin generators (Courtesy of Education Development Center, Inc. Used with permission.)Demo - Demo and Theory
7.7.2: Electrostatic precipitation Demo Demo and Theory

Chapter 8: Magnetoquasistatic fields: superposition integral and boundary value points of view (PDF)
8.2.1: Field of a circular cylindrical solenoid Demo Demo and Theory
8.2.2: Field of square pair of coils Demo Demo and Theory
8.4.1: Surface used to define the flux linkage Demo Demo and Theory
8.5.1: Field and inductance of a spherical coil Demo Demo and Theory
 8.6.1: Surface currents induced in ground plane by overhead conductor Demo - Demo and Theory
8.6.2: Inductive attenuator Demo Demo and Theory

Chapter 9: Magnetization (PDF)
9.4.1: Measurement of B-H characteristic Demo Demo and Theory

Chapter 10: Magnetoquasistatic relaxation and diffusion (PDF)
 10.0.1: Nonuniqueness of voltage in a magnetoquasistatic (MQS) system Demo - Demo and Theory
10.4.1: Currents induced in a conducting shellDemo Demo and Theory
10.2.1: Edgerton's boomer Demo Demo and Theory
10.4.1: Currents induced in a conducting shell Demo Demo and Theory

Chapter 11: Energy, power flow, and forces (PDF)
11.6.2: Force on a liquid dielectric (Courtesy of Education Development Center, Inc. Used with permission.) Demo - Demo and Theory
11.7.1: Steady state magnetic levitation Demo Demo and Theory

Chapter 12: Electrodynamic fields: the superposition integral point of view (PDF)

Chapter 13: Electrodynamic fields: the boundary value point of view (PDF)
13.1.1: Visualization of standing waves Demo Demo and Theory

Chapter 14: One-dimensional wave dynamics (PDF)

Chapter 15: Overview of electromagnetic fields (PDF)

  • Electromagnetic Fields and Energy Solutions Manual. (DOWNLOAD HERE)
  • The course materials can be downloaded from the following link. (DOWNLOAD HERE)
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Thursday, 15 November 2012

Antenna Theory Analysis and Design Book Slides by Balanis

An antenna (or aerial) is an electrical device which converts electric power into radio waves, and vice versa. It is usually used with a radio transmitter or radio receiver. In transmission, a radio transmitter supplies an oscillating radio frequency electric current to the antenna's terminals, and the antenna radiates the energy from the current as electromagnetic waves (radio waves). In reception, an antenna intercepts some of the power of an electromagnetic wave in order to produce a tiny voltage at its terminals, that is applied to a receiver to be amplified.    Source (Wikipedia)

Here are the slides containing lecture notes for the famous book about Antennas:
" Antenna Theory : Analysis and Design " by Constantine A. Balanis, 3rd Edition.


Chapter 1. Antennas. (Download)
Chapter 2. Fundamental Parameters of Antennas. (Download)
Chapter 3. Radiation Integrals and Auxiliary Potential Functions. (Download)
Chapter 4. Linear Wire Antennas. (Download)
Chapter 5. Loop Antennas. (Download)
Chapter 6. Arrays: Linear, Planar, and Circular. (Download)
Chapter 7. Antenna Synthesis and Continuous Sources. (Download)
Chapter 8. Integral Equations, Moment Method, and Self and Mutual Impedances. (Download)
Chapter 9. Broadband Dipoles and Matching Techniques. (Download)
Chapter 10. Traveling Wave and Broadband Antennas. (Download)
Chapter 11. Frequency Independent Antennas, Antenna Miniaturization and Fractal Antennas. (Download
Chapter 12. Aperture Antennas. (Download)
Chapter 13. Horn Antennas. (Download)
Chapter 14. Micro-strip Antennas. (Download)
Chapter 15. Reflector Antennas. (Download)
Chapter 16. Smart Antennas. (Download)
Chapter 17. Antenna Measurements. (Download)

Please feel free to leave a comment if there is a dead link or a problem with the links.
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