Course detail
Electrodynamics and Special Theory of Relativity
FSI-TDEAcad. year: 2011/2012
The course represents the second part of the basic course of theoretical physics. It is concerned with principles of the electromagnetic field theory and the description using Maxwell's equations. Conservation laws of energy and of quantity of motion are derived, field potentials are introduced and electrostatic, magnetostatic and quasistationary fields are described. A great attention is paid to spreading of electromagnetic waves in diverse environments and also to the behaviour of the field at the interface between two environments. At the end of the course the motion of charged particles in electromagnetic fields, principles of the special theory of relativity and invariance of Maxwell equations under the Lorentz transformation are explained.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Learning outcomes of the course unit
Prerequisites
MATHEMATICS: Basics of vector analysis.
Completion of the course TF2.
Co-requisites
Planned learning activities and teaching methods
Assesment methods and criteria linked to learning outcomes
Course curriculum
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
- compulsory prerequisite
General Physics II (Electricity and Magnetism)
Basic literature
Landau L. D., Lifshic J. M.: The clasical theory of fields. Butterworth-Heinemann, 2000. (EN)
Recommended reading
Classification of course in study plans
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
2. Conservation laws: conservation of energy and momentum for electromagnetic fields
3. Electrostatics: Coulomb’s law, Gauss’ law, Poisson and Laplace equations, boundary-value problems in electrostatics
4. Magnetostatics: Biot-Savart law, Ampere’s law, boundary-value problems in magnetostatics
5. Quasi-static fields. Skin effect
6. Wave equation. Fields and radiation of a oscillating dipoles
7. Wave propagation in vacuum, isotropic dielectrics and conductors
8. Index of refraction and dispersion relation. Propagation of wave packet in dispersive medium
9. Resonant cavities and waveguides
10. Boundary conditions at interface between media. Fresnel formulae
11. The special theory of relativity and Maxwell equations
12. The motion of charges in electric and magnetic fields
Exercise
Teacher / Lecturer
Syllabus