Course detail
Environmental Technology
FSI-IETAcad. year: 2021/2022
The course is focused on the effects of energy transformations on the environment, especially on air. Students are acquainted with pollutants released or generated during combustion processes, greenhouse gases and climate change, mechanisms of pollutant spreading in the atmosphere and their impact on the environment. The course also includes basic information from the technology of dedusting, flue gas desulfurization and reduction of nitrogen oxides in flue gases (primary and secondary measures). The conclusion is devoted to the issue of recovery and disposal of products / residues of purification technologies (waste water, gypsum, fly ash).
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
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
Basic literature
SKÁLA, Zdeněk. Ekologie v energetice. Brno: PC-DIR, 1994. ISBN 80-214-0477-9
VEJVODA, Josef, Pavel MACHAČ a Petr BURYAN. Technologie ochrany ovzduší a čištění odpadních plynů. Praha: Vysoká škola chemicko-technologická v Praze, 2003. ISBN 80-708-0517-X.
Recommended reading
Elearning
Classification of course in study plans
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
2. Selected chapters of chemical engineering - condensation, absorption, adsorption, sedimentation.
3. Air cleanliness law, emission limits, industrial emissions of solid, gaseous, overview of energy emissions.
4. Origin and properties of emissions: CO, CO2, greenhouse effect, NOx, SOx, HCl, HF, secondary pollution, O3 in ground air layers, ozone depletion.
5. Origin and properties of emissions: PCDD, PCDF, PAH, soot, particulate matter, handling and storage of cinder and fly ash
6. Propagation of air pollutants, air turbulence, air stability, inversion, computational models of air pollution.
7. Elimination of solid pollutants: mechanical separators, gravity field, cyclones, construction, operation,
8. Elimination TZL: Filtration, textile filters, hose, pocket, Electrostatic precipitators (EO), principle, V-A characteristics, backflow corona, construction, operation.
9. Elimination of SOx: Flue gas desulfurization, chemical reactions, lime-limestone methods.
10. NOx elimination: primary measures, flue gas scrubbing, catalytic methods of NOx reduction.
11. Elimination of organic compounds and heavy metals,
12. Overview of flue gas and waste gas cleaning technologies from selected power and industrial plants
13. Utilization and disposal of residues from purification technologies - waste water, energy gypsum, End product, stabilizer
Exercise
Teacher / Lecturer
Syllabus
2. Basic calculations of absorption, adsorption, condensation, evaporation
3. Balance calculations, concentration calculations, determination of air pollution concentration
4. Calculations of air pollutants propagation.
5. Stoichiometry + SO2, CO2 emissions for various types of fuel.
6. Determination of CO2 emissions from desulphurisation.
7. Fly ash and cinder balance. Settling, transport water purification.
8. Design of cyclone separator.
9. Calculation of electrostatic precipitator separation.
10. Waste gas scrubbing - balance calculations.
11. Design of technology of semi-dry desulphurization method - balance calculations.
12. Excursion to waste incinerator.
13. Control of fulfillment of conditions for credit and granting of credit.
Elearning