Course detail
Applied Physics
FAST-CB54Acad. year: 2011/2012
The mass, matter and physical field
The structure of atoms and molecules
The amorphous matters and liquids
The system model of fluids continuity
The mass, momentum and energy balance
The flow, the equilibrium and non-equilibrium processes
The principles of thermodynamics in liquids
The heat transfer in liquids, diffusion
The basic of the statistics physics.
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
Course curriculum
2. The structure of atoms and molecules construction: the model theory of atoms, the wave-mechanical image of atom.
3. Atoms classification, the energy changes during the molecule formation, inter-atomic bond.
4. Amorphous matters and liquids: the particles arrange the amorphous matter properties, inorganic and organic amorphous matters and liquids.
5. The system model of fluids continuity: the balance equation and the low of mass and energy conservation, the equation of continuity, Euler equation, Bernoulli equation, Navier-Stokes’ equation.
6. The mass, momentum and energy balance: momentum in fluids, energy in fluids (external and internal), hydraulic pressure, Pascal low, Archimedes low.
7. The flow of fluids: the stationary flow of the viscous incompressible fluid through the tube, the velocity distribution along the cross section of the tube, Hagen-Poisseli’s law.
8. The equilibrium and non-equilibrium processes: homogeneous and heterogeneous systems, phase, components of the state, latent heat, the calorimetric equation, heat capacity, the conditions of equilibrium in the double-phase system, irreversible and non-equilibrium processes, basic lows of the irreversible thermodynamics.
9. The principles of thermodynamics in liquids: Gibbs’ phase rule, phase transmissions, Clapeyron’s equation, phase diagram, Gibbs’ phase rule application.
10. The heat transfer in liquids: heat transfer in general, heat conduction (Fourier’s equation), differential equation of the heat conduction.
11. Stationary heat transfer and differential equation for this case, the stationary and non-stationary heat transfer comparison, diffusion, radiation.
12. The basic of the statistics physics: basic definitions and formulas of probability theory, thermal motion.
13. Maxwell and Maxwell- Boltzmann distributions of particles, energy of the matter.
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
Basic literature
Ficker T.: Fyzikální praktikum. CERM Brno, 1999. (CS)
Halliday D., Resnick R., J. Walker J.: Physics. VUTIUM a PROMETHEUS, 2001. (EN)
Horák Z., Krupka F.: Fyzika. SNTL Praha, 1976. (CS)
Recommended reading
Classification of course in study plans