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Electromagnetics

Electromagnetics is the study of electric and magnetic fields and their interactions with physical matter and "circuit-based technical materials". It provides the "technical clarity" needed to understand how waves propagate through space, which is fundamental to designing antennas and wireless "Communication Systems".

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Electromagnetics

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Course Title: Electromagnetics

Course No: ENEX 254

Nature of the Course: Theory + Lab

Semester: 4

Full Marks: 40 + 60 + 25

Pass Marks: 16 + 24 + 10

Credit Hours: 3

Course Description

Course Objectives

Course Contents

1. Introduction
4 hrs
1.1. Scalar and vector fields
1.2. Operations on scalar and vector fields
1.3. Co-ordinate systems (Cartesian, cylindrical and spherical) and conversions
2. Electric Field
15 hrs
2.1. Coulomb's law
2.2. Electric field intensity
2.3. Electric flux density
2.4. Gauss's law and applications
2.5. Physical significance of divergence, divergence theorem
2.6. Electric potential, potential gradient
2.7. Energy density in electrostatic field
2.8. Electric properties of material medium
2.9. Free and bound charges, polarization, relative permittivity, electric dipole, electric boundary conditions
2.10. Current, current density, conservation of charge, continuity equation, relaxation time
2.11. Boundary value problems, Laplace and Poisson equations and their solutions, uniqueness theorem
3. Magnetic Field
9 hrs
3.1. Biot-Savart's law
3.2. Magnetic field intensity
3.3. Ampere's circuital law and its application
3.4. Magnetic flux density
3.5. Physical significance of curl, Stoke's theorem
3.6. Scalar and magnetic vector potential
3.7. Magnetic properties of material medium
3.8. Magnetic force, magnetic torque, magnetic moment, magnetic dipole, magnetization
3.9. Magnetic boundary condition
4. Time Varying Fields
4 hrs
4.1. Faraday's law, transformer EMF, motional EMF
4.2. Displacement current
4.3. Maxwell's equations in integral and point forms
5. Plane Waves
9 hrs
5.1. Wave propagation in lossless and lossy dielectric
5.2. Plane waves in free space, lossless dielectric, good conductor
5.3. Power and poynting theorem average power density
5.4. Reflection of plane wave at normal incidence
5.5. Standing wave and SWR
5.6. Input intrinsic impedance
6. Transmission Lines
4 hrs
6.1. Transmission line equations (Taking analogy from wave equations)
6.2. Lossless, lossy and distortionless transmission lines
6.3. Input impedance, reflection coefficient, standing wave ratio

Laboratory Works

  1. 1.Teledeltos (Electro-conductive) paper mapping of electrostatic fields
  2. 2.Determination of dielectric constant, display of a magnetic hysteresis loop
  3. 3.Studies of wave propagation on a lumped parameter transmission line
  4. 4.Microwave sources, detectors, transmission lines
  5. 5.Standing wave patterns on transmission lines, reflections, power measurement
  6. 6.Familiarizations of electric and magnetic field measurements using simulation tool

Reference Books

  1. 1.Hayt, W. H. (2001). Engineering Electromagnetics. McGraw-Hill Book Company.
  2. 2.Kraus, J. D. (1973). Electromagnetics. McGraw-Hill Book Company.
  3. 3.Rao, N. N. (1990). Elements of Engineering Electromagnetics. Prentice Hall.
  4. 4.Devid K. Cheng. (1989). Field and Wave Electromagnetics. Addison-Wesley.
  5. 5.Sadiku, M. N. O. (2010). Elements of Electromagnetics. Oxford University Press.

Notes:

Source:

This course provides students with basic mathematical concepts related to electromagnetic time invariant and time variant fields including electromagnetic wave and their transmission on different media.

The objective of this course is to provide students with a basic mathematical concepts related to electromagnetic time invariant and time variant fields including electromagnetic wave and their transmission on different media.

Practical sessions covering electrostatic field mapping, dielectric constant determination, magnetic hysteresis, wave propagation on transmission lines, microwave sources and detectors, standing wave patterns, and simulation-based electric and magnetic field measurements. (22.5 hours)

This syllabus follows the official BCT curriculum of Tribhuwan University. In case of any doubt or revision, the university's published syllabus shall be considered authoritative. https://ioe.tu.edu.np/pages/computer-engineering-curriculum-structure-2635