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Chemical Reaction Engineering: Conversion and Reactor Sizing
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Related lectures (39)
Chemical reaction engineering: reactor design
Explores the Chemical Reaction Engineering algorithm applied to isothermal reactor design, with examples on SO2 oxidation and N2O4 decomposition.
Conversion and Reactor Sizing
Explores conversion, reactor sizing, and series reactors with practical examples.
Chemical Reaction Engineering: Reactor Design
Explores chemical kinetics, reactor design, and critical thinking in chemical reaction engineering.
Chemical reaction engineering: reactor design
Focuses on isothermal reactor design, covering mole balances, rate laws, stoichiometry, and pressure drop effects.
Chemical Reaction Engineering: Algorithm and Stoichiometry
Explores the Chemical Reaction Engineering algorithm in batch reactors and CSTRs, focusing on stoichiometry and rate laws.
Chemical reaction engineering
Explores chemical reaction engineering fundamentals, reactor design, and variable flow rates.
Chemical Reaction Engineering: Algorithmic Approach
Explores problem-solving algorithms for chemical reactor design and analysis, emphasizing the CRE approach and various reactor configurations.
Chemical Reaction Engineering
Focuses on chemical kinetics, reactor design, and problem-solving skills with interactive modules for active participation.
Chemical Reaction Engineering: Isothermal Reactor Design
Covers the design of isothermal reactors for chemical reactions, focusing on stoichiometry, rate laws, and concentration as a function of conversion.
Chemical Reaction Engineering
Covers the analytical derivation of various design models and reactor sizing.
Isothermal Reactor Design: Mole Balances
Covers mole balances, reactor volume determination, membrane reactors, semibatch systems, and reversible reactions.
Adiabatic Reactor Design
Covers the design of adiabatic reactors with a focus on isomerization reactions and energy balance calculations.
Isothermal reactor design
Explores isothermal reactor design, including stoichiometry, rate laws, and MATLAB simulations, highlighting the tradeoff between reactivity and pressure drop.
Multiplying media: Analytical Solutions and Non-leakage Probability
Covers media containing fuel, analytical solutions, and non-leakage probability for thermal and fast neutrons.
Reactor Technology: Reactivity Variations and Control
Explores reactivity variations in reactor technology, covering short-term, medium-term, and long-term effects, means of control, and consequences.
Nuclear Reactors: Concepts and Analysis
Explores nuclear reactor physics, covering basic principles, specific reactor types, accidents like Chernobyl, and advanced technologies.
Chemical Reactions Engineering
Covers the engineering of chemical reactions, types of reactions, selectivity, and yield calculations.
Particle diameter and pressure drop
Explores the impact of particle size on catalytic reactions and pressure drop.
Reactor Analysis: Algorithm and Design
Covers the algorithm for reactor analysis and design, including isothermal reactor design, membrane reactors, and semibatch reactors.
Stoichiometry in Flow Reactor
Covers the stoichiometry in a flow reactor, discussing species, concentration, and conversion.
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