Steady State Nonisothermal Reactor Design

1. ITK-330 Chemical Reaction Engineering Steady State Nonisothermal Reactor Design DickyDermawan www.dickydermawan.net78.net dickydermawan@gmail.com

2. Rationale • All reactions always accompanied by heat effect: exothermic reactions vs. endothermic reactions • Unless heat transfer system is carefully designed, reaction mass temperature tend to change • Design of heat transfer system itself requires the understanding of this heat effect • Energy balance is also needed, together with performance equations derived from mass balance

3. Objectives • Describe the algorithm for CSTRs, PFRs, and PBRs that are not operated isothermally. • Size adiabatic and nonadiabatic CSTRs, PFRs, and PBRs. • Use reactor staging to obtain high conversions for highly exothermic reversible reactions. • Carry out an analysis to determine the Multiple Steady States (MSS) in a CSTR along with the ignition and extinction temperatures. • Analyze multiple reactions carried out in CSTRs, PFRs, and PBRs which are not operated isothermally in order to determine the concentrations and temperature as a function of position (PFR/PBR) and operating variables

4. Why Energy Balance? Imagine that we are designing a nonisothermal PFR for a first order liquid phase exothermic reaction: The temperature will increase with conversion down the length of reactor Performance equation: Kinetics: Stoichiometry: Combine:

5. Energy Balance At steady state: Consider generalized reaction: Upon substitution:

6. Energy Balance (cont’) From thermodynamics, we know that: Thus:

7. Energy Balance (cont’) Upon substitution: Finally…. So what?

8. Energy Balance (cont’) For adiabatic reactions: When work is negligible: The energy balance at steady state becomes: After rearrangement: This is the X=X(T) we’ve been looking for!

9. Application to Adiabatic CSTR Design Case A: Sizing: X specified, calculate V (and T) Performance equation: Kinetics: Stoichiometry: Combine: Solve the energy balance for T Calculate k Calculate V using combining equation

10. Application to Adiabatic CSTR Design Case B (Rating): V specified, calculate X (and T) Performance equation: Kinetics: Stoichiometry: Mole balance: Energy balance: Find X & T that satisfy BOTH the material balance and energy balance, viz. plot Xmb vs T and Xeb vs T in the same graph: the intersection is the solution

11. Application to Adiabatic CSTR Design Example: P8-5A The elementary irreversible organic liquid-phase reaction: A + B  C is carried out adiabatically in a CSTR. An equal molar feed in A and B enters at 27oC, and the volumetric flow rate is 2 L/s. Calculate the CSTR volume necessary to achieve 85% conversion Calculate the conversion that can be achieved in one 500 L CSTR and in two 250 L CSTRs in series

12. Application to Adiabatic CSTR Design Case A: Sizing: X specified, calculate V (and T) Performance equation: Kinetics: Stoichiometry: Combine: Energy balance: Calculate k Calculate V using combining equation

13. Application to Adiabatic CSTR Design Case B (Rating): V specified, calculate X (and T) Performance equation: Kinetics: Stoichiometry: Mole balance: Energy balance:

14. Application to Adiabatic PFR/PBR Design Example for First Order Reaction Performance equation: Kinetics: Stoichiometry: Gas liquid Pressure drop: for PFR/small DP: P/P0 = 1 Energy balance: Combine: Thus The combination results in 2 simultaneous differential equations

15. Sample Problem for Adiabatic PFR Design P8-6A

16. Sample Problem for Adiabatic PBR Design

17. NINA = Diabatic Reactor DesignHeat Transfer Rate to the Reactor The rate of heat transfer from the exchanger to the reactor: Rate of energy transferred between the reactor and the coolant: Combining:

18. NINA = Diabatic Reactor DesignHeat Transfer Rate to the Reactor (cont’) At high coolant flow rates the exponential term will be small, so we can expand the exponential term as a Taylor Series, where the terms of second order or greater are neglected: Then: The energy balance becomes:

19. P8-4B SampleProblem forDiabaticCSTRDesign

20. Sample Problem for Diabatic CSTR Design

21. Application of Energy Balance to Diabatic Tubular Reactor Design Heat transfer in CSTR: In PFR, T varies along the reactor: Thus: For PBR: Thus:

22. Application of Energy Balance to Diabatic Tubular Reactor Design The steady state energy balance, neglecting work term: Differentiation with respect to the volume V: Inserting and recalling that Form 2 differential with 2 dependent variables X & T Or: Coupled with

23. Sample Problem for Diabatic Tubular Reactor Design

24. Design for Reversible Reactions Endotermik: K naik dengan kenaikan T Xeq naik reaksikan pada Tmax yang diperkenankan Xeq = Xeq (K) = Xeq (T)   Eksotermik: K turun dengan kenaikan T Xeq turun reaksikan pada T rendah   Laju reaksi lambat pada T rendah! Ada trade off antara aspek termodinamika dan kinetika

25. Design for Reversible Highly-Exothermic Reactions -rA = -rA (X,T) Generally: Higher X  slower reaction rate Higher T  faster rate At X = Xeq : -rA = 0

26. Design for Equilibrium Highly-Exothermic Reactions #1 Starting with R-free solution, between 0 dan 100oC determine the equilibrium conversion of A for the elementary aqueous reaction: A  R The reported data is based on the following standard states of reactants and products: Assume ideal solution, in which case: In addition, assume specific heats of all solutions are equal to that of water

27. Design for Equilibrium Highly-Exothermic Reactions:Reaction Rate in X – T Diagram

28. Reaction Rate in The X – T Diagramat CA0 = 1 mol/L

29. Design for Equilibrium Highly-Exothermic Reactions: Optimum Temperature Progressionin Tubular Reactor #3 • Calculate the space time needed for 80% conversion of a feed starting with initial concentration of A of 1 mol/L • Plot the temperature and conversion profile along the length of the reactor Let the maximum operating allowable temperature be 95oC

30. Design for Reversible Reactions: Heat Effect

31. Design for Equilibrium Highly-Exothermic Reactions: CSTR Performance

32. Design for Equilibrium Highly-Exothermic Reactions: CSTR Performance #4 A concentrated aqueous A-solution of the previous examples, CA0 = 4 mol/L, FA0 = 1000 mol/min, is to be 80% converted in a mixed reactor. • If feed enters at 25oC, what size of reactor is needed? • What is the optimum operating temperature for this purpose? • What size of reactor is needed if feed enters at optimum temperature? • What is the heat duty if feed enters at 25oC to keep the reactor operation at its the optimum temperature?

33. Interstage Cooling

34. Review on Energy Balance in CSTR Operation Bila term kerja diabaikan dan DHRx konstan: Untuk CSTR: Pembagian kedua ruas dengan FA0:

35. Review on Energy Balance in CSTR Operation Multiple Steady State & Stability of CSTR Operation

36. Multiple Steady State: Stability of CSTR Operation Finding Multiple Steady State: Varying To Temperature Ignition – Extinction Curve Upper steady stateLower steady stateIgnition temperatureExtinction temperatureRunaway Reaction

37. Sample Problem on Multiple Steady State in CSTR Operation P8-17B