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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. Lecture 17
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Today’s lecture Energy Balance Fundamentals Adibatic reactors 2
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Energy Balances, Rationale and Overview Let’s calculate the volume necessary to achieve a conversion, X, in a PFR for a first-order, exothermic and adiabatic reaction. The temperature profile might look something like this: T V k V X V Todays Lecture 3
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The combined mole balance, rate law and stoichiometry yield: Energy Balances, Rationale and Overview 4
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We cannot solve this Equation because we don’t have X either as a function of V or T. We need another Equation. That Equation is: Energy Balances, Rationale and Overview 5 The Energy Balance
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User Friendly Equations Relate T and X or F i 1. Adiabatic CSTR, PFR, Batch or PBR 6
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7 Adiabatic T X EB Exothermic T0T0 0 T X EB Endothermic T0T0 0
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2. CSTR with heat exchanger, UA(T a -T) and a large coolant flow rate T TaTa User Friendly Equations Relate T and X or F i 8
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3. PFR/PBR with heat exchange F A0 T 0 Coolant TaTa User Friendly Equations Relate T and X or F i 3A. PFR in terms of conversion 9
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User Friendly Equations Relate T and X or F i 3B. PBR in terms of conversion 3C. PBR in terms of molar flow rates 10
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User Friendly Equations Relate T and X or F i 3D. PFR in terms of molar flow rates 4. Batch 11
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User Friendly Equations Relate T and X or F i 5. For Semibatch or unsteady CSTR 6. For multiple reactions in a PFR (q reactions and m species) 12 Let’s look where these User Friendly Equations came from.
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Rate of energy in by flow Rate of energy out by flow Heat added to the system Work done by the system Rate of energy accumulation --+= Energy Balance 13
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Energy Balance on an open system: schematic. Energy Balance 14
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OK folks, here is what we are going to do to put the above equation into a usable form. 1. Replace U i by U i =H i -PV i 2. Express H i in terms of heat capacities 3. Express F i in terms of either conversion or rates of reaction 4. Define Δ H Rx 5. Define Δ C P 6. Manipulate so that the overall energy balance is either in terms of the User Friendly Equations. 15
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Assumptions: =0 Other energies small compared to internal Intro to Heat Effects 16 Recall:
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Intro to Heat Effects 17 Substituting for
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General Energy Balance: For Steady State Operation: 18 Intro to Heat Effects
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Flow Rates, F i For the generalized reaction: In general, 19 Intro to Heat Effects
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20 Intro to Heat Effects
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Enthalpy of formation at temperature T R Heat of reaction at temperature T Intro to Heat Effects 21 For No Phase Changes Constant Heat Capacities
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22 Intro to Heat Effects
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23 Intro to Heat Effects
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Substituting back into the Energy Balance 24 Intro to Heat Effects
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X T0T0 T Adiabatic Energy Balance: 25
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1) Mole balance: 2) Rate Laws: Example Adiabatic PFR 26 A ↔ B
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3) Stoichiometry: 4) Energy Balance: 27 Example Adiabatic PFR First need to calculate the maximum conversion which is at the Adiabatic Equilibrium. A ↔ B
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T XCXC Adiabatic equilibrium conversion 28 Example Adiabatic PFR A ↔ B
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We can now form a table. Set X, then calculate T, -V A, and F A0 /- r A, increment X, then plot F A0 /-r A vs. X: F A0 /-r A X 29
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End of Lecture 17 30
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