Course detail
Turbomachinery
FSI-LLSAcad. year: 2021/2022
The course is concerned with the application of fundamental physical laws, above all hydromechanics and thermo-mechanics for the design and utilization of a large group of machines. The basic principle of these machines is transformation of thermal, pressure or potential energy into kinetic energy of fluid and the transfer of that energy to the rotor of the machine, and vice versa. Therefore, substantial parts of the course is focused on interactions between a real fluid flowing around or through bodies. Due to the high speed, relatively small machines reach high power outputs. Turbo-machines are used in a great number of applications and in a very extensive range of working conditions. The explanation on physical principles is accompanied with the design of turbo-machines.
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
Examination: The knowledge of used physical laws and their application in individual types of turbomachines is tested. Structural design of basic functional parts of turbomachines and connection of constructional design and used properties of these machines. Relation of working conditions of turbomachines and their design.
The exam is written, supplementary questions are oral.
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
Kadrnožka, J.: Tepelné turbíny a turbokompresory I, CERM, Brno 2004
ŠKORPÍK, Jiří. Teorie lopatkových strojů. Vydání druhé. Brno: Akademické nakladatelství CERM, 2022. ISBN 978-80-214-6102-4. (CS)
Recommended reading
Classification of course in study plans
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
3-4. Essential equations of turbomachines.
5-6. Energy balances of turbomachines.
7. Relation between shaft work and internal work of turbomachine stage. Shapes of parts and materials of turbomachines.
8. Fundamentals of aerodynamic of blade profiles and blade rows.
9. Losses in turbomachines. Similarities of turbomachines.
10. Design of axials turbomachine stages.
11. Design of radials and diagonals turbomachine stages.
12. Water turbines and rotodynamic pumps.
13. Wind turbines and fans.
Exercise
Teacher / Lecturer
Syllabus
2. Basic energy balance of turbomachines.
3. Velocity triangles; Practice of Euler equation for force acting on blades from fluid flow.
4. Spiral cases and bladeless diffuser; Calculation of assumed energy distribution in working fluid volume.
5. Determination of water turbine energy balance and calculation of suction length.
6. Calculation of steam parameters in a turbine.
7. Energy balance of turbomachine stage.
8. Calculation of radial fan blade geometry.
9. Determination of degree of reaction from given velocity triangle of steam turbine stage.
10. Selection of the most suitable type of water turbine for a given locality using the theory of similarity of turbomachines.
11. Basic design of radial fan impeller dimensions by means of similarity theory and optimization of similarity factors.
12-13. Replacing the pump in the pipeline with another.
E-learning texts
informace-k-predmetu-lopatkove-stroje.pdf 0.42 MB