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Course, academic year 2023/2024
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Catalysis in Practice - MC260P138
Title: Katalýza v praxi
Czech title: Katalýza v praxi
Guaranteed by: Department of Physical and Macromolecular Chemistry (31-260)
Faculty: Faculty of Science
Actual: from 2022
Semester: summer
E-Credits: 3
Examination process: summer s.:combined
Hours per week, examination: summer s.:2/1, C+Ex [HT]
Capacity: unlimited
Min. number of students: unlimited
4EU+: no
Virtual mobility / capacity: no
State of the course: taught
Language: Czech
Note: enabled for web enrollment
Guarantor: doc. Maksym Opanasenko, CSc.
Teacher(s): doc. Maksym Opanasenko, CSc.
doc. Mariya Shamzhy, Ph.D.
Annotation -
Last update: doc. RNDr. Iva Zusková, CSc. (26.02.2020)
Catalysis represents the most important part of production of intermediates and final products in chemical industry. 85-90% of processes are with a catalyst involvement. This course provides fundamental knowledge on how catalysts are employed in the large-scale industrial processes. The course will focus on description of the role of industrial catalysts in oil and natural gas upgrading, Fischer-Tropsch synthesis, ammonia synthesis and aromatic petrochemistry. The application of catalysts for the synthesis of fine chemicals (drugs, flavors and fragrances) will be discussed. Last but not least, application of homogeneous and enzymatic catalysts on industrial level will be provided. The lectures (2 hours per week on average) will be accompanied by experimental practices (1 hour per week on average).
Knowledge from principles of catalysis course and general knowledge of inorganic, organic and physical chemistry is expected.
Literature -
Last update: doc. RNDr. Iva Zusková, CSc. (26.02.2020)

Industrial Catalysis: chemistry and mechanism, Imperial College Press, London, 2016

 

Chemical Process Technology, Wiley, Chichester, 2001

 

Heterogeneous Catalysis in Industrial Practice, 2nd edition, McGraw-Hill, New York, 1991

 

Catalysis - An Integrated Approach to Homogeneous, Heterogeneous and Industrial Catalysis, Elsevier, Amsterdam 2000.

 

Industrial Catalysis - J. Hagen, Wiley-VCH Weinheim 1999.

Requirements to the exam -
Last update: doc. RNDr. Iva Zusková, CSc. (26.02.2020)

C: for solving tasks from seminars; Ex: multiple choice test in basic knowledge, short discussion on selected topic. 

 

Syllabus -
Last update: doc. RNDr. Iva Zusková, CSc. (26.02.2020)

1.       Introduction. Types and important characteristics of industrial catalysts. Homogeneous vs. heterogeneous catalysis. Activity and its descriptors (conversion, space velocity, space–time yield, reaction rate, TOF, TON). Selectivity, shape-selective catalysts, carbon balance. Stability and lifetime of the catalyst.

Industrial Catalysts                               Zeolites, Sulphides, Alumina, Titania, Silica

 

2. Catalytic reaction engineering. Basic objectives in design of a reactor. Classification of reactors and choice of reactor type. Comparison of batch, tubular, and stirred tank reactors. Material and energy balances. Chemical kinetics and rate equations. Choice of process conditions.

3. Heterogeneous Catalysts              Types, Properties, Components of heterogeneous catalyst: active phase, chemical and textural promoters, supports. Modes of catalyst deactivation: thermally induced deactivation, sintering of the catalytic species or carrier, selective/non-selective poisoning. Coke formation and catalyst regeneration.

4. Main large-scale heterogeneously catalyzed processes.

Cracking/Hydrocracking; Ammonia synthesis; Synthesis of sulphuric acid; petrochemie; Fluid catalytic cracking.

Key features of zeolites.

5. Petrochemistry

Catalytic reforming,

Isomerizations
Alkylations/Transalkylations

6. Steam reforming process: generating hydrogen and synthesis gas. Basic concepts, mechanistic details, challenges. Reactions of synthesis gas: methanol synthesis, Fischer–Tropsch process. Water gas shift reaction.

7. Synthesis of inorganic compounds. Synthesis of ammonia, nitric acid, sulfuric acid: reaction chemistry, process and catalyst design, catalyst deactivation.

8.    Fine Chemicals

Vitamins
Drugs
Fragrances

Synthesis of fine chemicals. Types of catalysts and reactions. Processes based on aromatic substitution: nitration and halogenation of aromatics, Friedel-Crafts alkylation/acylation, Fischer indole synthesis. Rearrangement reactions (Beckmann, Fries and benzamine, pinacol, terpene rearrangements). Processes based on condensation and reduction/oxidation reactions.

9. Alternative energy sources using catalysis: biomass types, catalytic pyrolysis, platform molecules and their chemistry. CO2 as a feedstock.

10.  Environmental Catalysis. Automotive exhaust catalysis: mechanism and kinetics of the reactions, the three-way catalyst. NOx and SOx removal systems: selective catalytic reduction process. Catalytic afterburning of volatile organic compounds.

DeNOx

DeSOx

11. Macroscopic property-function relationship in catalysis. Characterization of the catalysts. Design of the catalysts: supported and unsupported catalysts. Types of binder and filling materials, forming the final shape of the catalyst (powders, pellets, extrudates, granules, monoliths), methods for incorporating the active material into the support; Active sites

12. Homogeneous Catalysts              Types and Properties

Homogeneously catalyzed industrial processes: hydroformylation, carbonylation of methanol, selective ethylene oxidation by the Wacker process, cross-coupling reactions, metallocene-based olefin polymerization. Asymmetric catalysis: catalysts, commercial applications in hydrogenation, enantioselective isomerization, epoxidation

13. Enzymes. Biocatalysis in industry: acrylamide from acrylonitrile, aspartame through enzymatic peptide synthesis, L-amino acids by aminoacylase process.

 
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