Course detail
Physics II
FSI-3FAcad. year: 2021/2022
The course “Physics II” familiarises students with both basic theories of classical physics (electromagnetism and optics) and elementary quantum mechanics. The obtained knowledge is necessary for understanding of the theoretical fundamentals of modern engineering disciplines. Also dealt with are the following topics: Electromagnetism. Electrostatic field. Magnetic field. Electromagnetic field. Maxwell’s equations. Fundamentals of optics. Elementary quantum mechanics. Particle features of radiation and wave features of particles. Electron orbitals of an atom. Nucleus of an atom.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Learning outcomes of the course unit
Prerequisites
Co-requisites
Planned learning activities and teaching methods
Assesment methods and criteria linked to learning outcomes
Details on the server physics.fme.vutbr.cz
Course curriculum
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
Basic literature
HALLIDAY, D. - RESNICK, R. - WALKER, J.: Fyzika, 2. české přepracované vydání, VUTIUM, Brno 2013 (HRW2) (CS)
http://physics.fme.vutbr.cz (CS)
ŠANTAVÝ, I a kol.: Vybrané kapitoly z fyziky, skriptum VUT, Brno 1986 (CS)
Recommended reading
HALLIDAY, D. - RESNICK, R. - WALKER, J.: Fundamentals of Physics, 8th edition, John Wiley and Sons,New York 2008 (EN)
KUPSKÁ, I.- MACUR, M.- RYNDOVÁ, A.: Fyzika - Sbírka příkladů, skriptum VUT Brno (CS)
ŠANTAVÝ, I.- LIŠKA, M.: Fyzika II, skriptum VUT Brno (CS)
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Classification of course in study plans
- Programme B-MAI-P Bachelor's 2 year of study, winter semester, compulsory
- Programme B-ZSI-P Bachelor's
specialization STI , 2 year of study, winter semester, compulsory
specialization MTI , 2 year of study, winter semester, compulsory - Programme B-ENE-P Bachelor's 2 year of study, winter semester, compulsory
- Programme B-MET-P Bachelor's 2 year of study, winter semester, compulsory
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
Electric field due to charged particle systems (principle of superposition).
Gauss law (applying Gauss’ law).
Electric potential (electric potential energy, potential of charged particle systems).
Capacitance (calculating the capacitance, energy stored in electric field, dielectrics).
Current and resistance. Circuits (Kirchhoff’s laws).
Magnetic field (magnetic field vector and lines, Lorentz and Amper laws).
Magnetic fields due to currents (principle of superposition, law of Biot and Savart, calculating the magnetic fields).
Magnetic fields due to currents (Amper’s law, calculating the magnetic fields).
Electromagnetic induction (Faraday’s law of induction, inductors and inductance, energy stored in magnetic field, induced electric fields).
Electromagnetic oscillations and alternating currents. Maxwell’s equations. Electromagnetic waves.
Optics. Images. Interference and diffraction.
Quantum physics. Photons and matter waves. (Schrödinger’s equation, Heisenberg’s uncertainty principle).
Atomic physics (hydrogen atom and its spectrum, building the periodic table). Nuclear physics (nuclear binding energies, radioactive decay)
Laboratory exercise
Teacher / Lecturer
Ing. Karel Vařeka
Ing. Katarína Rovenská
Ing. Jan Hajduček
Ing. Petr Liška
Ing. Michal Potoček, Ph.D.
Ing. Ondrej Černek
Ing. Mgr. Peter Kepič
Ing. Iveta Ukropcová
Ing. Petr Řehák, Ph.D.
doc. Ing. Jindřich Mach, Ph.D.
Ing. Josef Polčák, Ph.D.
doc. Ing. Petr Bábor, Ph.D.
Ing. Vojtěch Čalkovský
RNDr. Libuše Dittrichová, Ph.D.
Ing. Ondřej Wojewoda, Ph.D.
Ing. Ondřej Červinka
Ing. David Pokorný
doc. Ing. Tomáš Zikmund, Ph.D.
Ing. Martin Antoš, Ph.D.
Ing. Zdeněk Nováček, Ph.D.
Ing. Tomáš Láznička
Syllabus
2. System reaction to the signal: RLC circuits.
3. Dynamic modeling: a circuit with a condensator.
4. Statistical data processing: a measuring with beta and gamma radiation.
5A. Feedback in regulation: thermostat.
5B. Feedback in measurement: thermometer.
6A. Signal processing: convolution.
6B. Signal processing: Fourier transformation.
Exercise
Teacher / Lecturer
Syllabus
1. Electrostatics I
2. Electrostatics II;
3. Circuits and Currents;
4. Magnetic field;
5. Induced magnetic fields;
6.Optics;
7. Quantum, Atomic and Nuclear Physics.
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