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Lecture 5 Chemical Reaction Engineering (CRE) is the field that studies the rates and mechanisms of chemical reactions and the design of the reactors in which they take place.
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Lecture 5 – Thursday 1/24/2013 Block 1: Mole Balances
Block 2: Rate Laws Block 3: Stoichiometry Stoichiometric Table: Flow Definitions of Concentration: Flow Gas Phase Volumetric Flow Rate Calculate the Equilibrium Conversion Xe
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Reactor Mole Balances Summary
Review Lecture 2 Reactor Mole Balances Summary in terms of conversion, X Reactor Differential Algebraic Integral CSTR PFR Batch X t PBR W
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Algorithm How to find Review Lecture 3 Step 1: Rate Law
Step 2: Stoichiometry Step 3: Combine to get
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Reaction Engineering These topics build upon one another
Review Lecture 3 Reaction Engineering Mole Balance Rate Laws Stoichiometry These topics build upon one another
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Flow System Stoichiometric Table
Species Symbol Reactor Feed Change Reactor Effluent A FA0 -FA0X FA=FA0(1-X) B FB0=FA0ΘB -b/aFA0X FB=FA0(ΘB-b/aX) C FC0=FA0ΘC +c/aFA0X FC=FA0(ΘC+c/aX) D FD0=FA0ΘD +d/aFA0X FD=FA0(ΘD+d/aX) Inert I FI0=FA0ΘI FI=FA0ΘI FT0 FT=FT0+δFA0X Where: and Concentration – Flow System
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Stoichiometry Liquid Systems Concentration Flow System:
Liquid Phase Flow System: Liquid Systems Flow Liquid Phase etc.
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Liquid Systems If the rate of reaction were then we would have
This gives us
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Stoichiometry for Gas Phase Flow Systems
Combining the compressibility factor equation of state with Z = Z0 Stoichiometry: We obtain:
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Stoichiometry for Gas Phase Flow Systems
Since , Using the same method,
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Stoichiometry for Gas Phase Flow Systems
The total molar flow rate is: Substituting FT gives: Where
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For Gas Phase Flow Systems
Concentration Flow System: Gas Phase Flow System:
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For Gas Phase Flow Systems
If –rA=kCACB This gives us FA0/-rA X
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For Gas Phase Flow Systems
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Example: Calculating the equilibrium conversion (Xef) for gas phase reaction in a flow reactor
Consider the following elementary reaction where KC=20 dm3/mol and CA0=0.2 mol/dm3. Calculate Equilibrium Conversion or both a batch reactor (Xeb) and a flow reactor (Xef).
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Gas Flow Example (Xef) Solution: Rate Law:
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Gas Flow Example (Xef) Species Fed Change Remaining A FA0 -FA0X
B +FA0X/2 FB=FA0X/2 FT0=FA0 FT=FA0-FA0X/2
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Gas Flow Example (Xef) Gas isobaric P=P0 A FA0 -FA0X FA=FA0(1-X) B
FA0X/2 FB=FA0X/2 Stoichiometry: Gas isothermal T=T0 Gas isobaric P=P0
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Gas Flow Example (Xef) Pure A yA0=1, CA0=yA0P0/RT0, CA0=P0/RT0
At equilibrium: -rA=0
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Gas Flow Example (Xef) Flow: Recall Batch:
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End of Lecture 5
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