Individual
course details |
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Study programme |
Physics |
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Chosen research area (module) |
Theoretical and Experimental Physics |
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Nature and level of studies |
Bachelor academic studies |
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Name of the course |
Electrodynamics
1 |
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Professor (lectures) |
Voja
Radovanovic |
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Professor/associate (examples/practical) |
Biljana
Nikolic |
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Professor/associate (additional) |
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ECTS |
5 |
Status
(required/elective) |
required |
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Access requirements |
Electromagnetism,
Mathematics 3 |
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Aims of the course |
Understanding
basic concepts, methods and laws of electrodynamics. |
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Learning outcomes |
The students should learn and understand basic
principles of Electrodynamics: gauge symmetry, Lorentz symmetry of
Electrodynamics, energy, momentum and angular momentum of classical
electromagnetic field,etc. |
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Contents of the course |
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Lectures |
1.
Charge and electromagnetic field.
Dirac delta function. Continuity
equation. 2. Electrostatics. Coulomb Law. Gauss Law. Multipole expansion of
scalar potential. Electric dipole and quadrupole. 3. Magnetostatics.
Biot-Savart Law. Ampere Law. Multipole
expansion of vector potential. Magnetic dipole. 4. Faraday law. Maxwell equation. 5. Potentials of electromagnetic field.
Gauge invariance. 6. Maxwell equation in macroscopic media. Constitutive
equations. Boundary conditions. 7.
Poynting theorem. Energy of electrostatic and magnetostatics fields. Joule
Heating. 8. Momentum and angular momentum of field. Maxwell stress
tensor. 9. Four potential and four current density. Field strength tensor.
Transformation of electromagnetic field. 10. Particle in electromagnetic
field. Lagrangian and Hamiltonian. Equations of motion and their covariance .
11. Action and equations of motion for electromagnetic field. 12. Spatial
reflection and time reversal. 13. Electrodynamics of moving media. |
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Examples/ practical classes |
Students
solved homework problems under supervision of professor. |
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Recommended books |
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1 |
J. D.
Jackson, Classical Electrodynamics, J. Wiley and Sons (1999) |
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2 |
V.
Radovanovic, Elektrodinamika, Beograd
(2017) |
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3 |
L. Landau and L.
Lifshitz, Classical Theory of Fields, Butterworth-Henemann (1975) |
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4 |
B. Milic, Maksvelova
elektrodinamika, Beograd (2002) |
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4 |
A. Zangwill,
Modern Electrodynamics,(2013) |
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6 |
V. V. Batygin and I.
N. Toptygin, Problems in Electrodynamics, Academic Press (1964) |
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Number of classes (weekly) |
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Lectures |
Examples&practicals |
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Student
project |
Additional |
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2 |
2 |
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Teaching and learning methods |
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Assessment (maximal 100) |
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assesed coursework |
mark |
examination |
mark |
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coursework |
10 |
written
examination |
30 |
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practicals |
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oral
examination |
40 |
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papers |
20 |
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presentations |
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