Course detail
Heat and Mass Transfer
FSI-IPT-AAcad. year: 2017/2018
The course is concerned with the following topics: Fundamentals of heat transfer and mass transfer. Steady and unsteady conduction of heat. Internal sources. Lumped capacity method. Finned surfaces. Semi-infinite bodies. Heat transfer by convection in boundary layers and duct flows. Free and forced convection. Turbulence. Analogy between heat and mass transfer. Evaporative cooling. Condensation. Boiling. Heat transfer by radiation. Radiosity and irradiation. Radiative properties of black bodies and real surfaces. Radiative heat transfer between two surfaces. Radiative heat transfer between three and more surfaces. Radiation by gases. Overall heat transfer coefficient. Fundamentals of heat exchanger design. NTU-effectiveness method for the solution of heat exchangers.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Offered to foreign students
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
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
Basic literature
F. P. Incropera, D. P. DeWitt: Fundamentals of Heat and Mass Transfer, , 0
Latif M. Jiji: Heat Transfer Essentials, begell house, inc., 2002
M.Jícha, Přenos tepla a látky, CERM Brno,
Recommended reading
Classification of course in study plans
- Programme M2I-P Master's
branch M-TEP , 1 year of study, summer semester, compulsory-optional
branch M-ENI , 1 year of study, summer semester, compulsory-optional
branch M-FLI , 1 year of study, summer semester, compulsory-optional
branch M-FLI , 1 year of study, summer semester, compulsory-optional
branch M-TEP , 1 year of study, summer semester, compulsory-optional
branch M-ENI , 1 year of study, summer semester, compulsory-optional
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
2. Conduction-convection systems. Finned surfaces.
3. Unsteady conduction of heat. Lumped capacity method.
4. Semi-infinite bodies.
5. Heat transfer by convection. Boundary layers. Turbulence
6. Heat transfer by convection for bluff body. Tube bundles.
7. Mass transfer - similarity with heat transfer. Evaporative cooling.
8. Forced convection in duct flows.
9. Free convection.
10. Condensation.
11. Boiling.
12. Heat transfer by radiation. Radiosity and irradiation. Radiative properties of black bodies and real surfaces. Radiative heat transfer between two surfaces. Radiative heat transfer between three and more surfaces.
13. Radiation by gases.
14. Overall heat transfer coefficient. Fundamentals of heat exchanger design. NTU-effectiveness method to the solution of heat exchangers.
Computer-assisted exercise
Teacher / Lecturer
Syllabus
1D steady conduction without and with internal energy sources.
Heat transfer in fins.
1D unsteady (transient) heat transfer (lump capacity method, semi-infinite body).
Fundamentals of convective heat transfër.
Heat transfer by convection for external aerodynamics.
Heat transfer by convection for internal aerodynamics.
Heat transfer by natural convection.
Boiling and condensation heat transfer.
Fundamentals of radiation - view factors.
Radiative heat transfer between two grey surfaces.
Radiative heat transfer between three and more grey surfaces.
Overall heat transfer. Fundamentals of heat exchangers.