Submitted:
08 December 2024
Posted:
09 December 2024
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Abstract
This research aims to study by numerical simulation the influence of various parameters on the efficiency of a staged feed tubular plug flow reactor. The main characteristic of this system is that a second stream of reactant feed is headed axially on the pipe constituting the reactor. The study of the staged feed tubular plug flow reactor is carried out in order to emphasis the influence of functioning parameters on the conversion at the exit. The studied parameters are: reactants concentrations, volume flow rate, and the staging feed function (gB) of the co-reactant. The results obtained by numerical simulation evidence the influence of operating parameters, and above all, it shows that there is an optimal configuration of the staging feed function along with adimensionnal axial coordinate gB(z) which optimizes the conversion at the exit of the reactor.
Keywords:
1. Introduction
2. The staged Feed Tubular Reactor
3. Model Assumptions
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- one dimensional and steady state mathematical model;
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- constant cross-section surface of the tubular reactor;
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- isotherm reactor (∆HR =0);
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- incompressible flow of reactants streams;
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- plug flow inside the reactor;
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- perfect mixing inside the reactor (no existence of dead zone);
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- whole reactor works in the same phase, i.e., liquid or gas.
4. Mathematical Model and Method of Resolution
|
(1) |
(i=1,2,3) |
(2) |
| MgBi = gBi*(CB0/CA0) (i=1,2,3) 0 zmax1 =1/6 gB1=1/3 0 (i=1) 1/6 zmax2 =1/2 gB2=2/3 (i =2) 1/2 zmax3 =1 gB3=1 XA2 < XA < XA3=XAS (i =3) |
5.1. Influence of the Feed Reactants Concentrations (CA0 and CB0) on the Conversion
5.2. Influence of the Volume Flow Rate (Q) on the Outlet Conversion
5.3. Influence of Staged Feed Distribution on the Outlet Conversion
6. Conclusions
References
- Fogler. H. S. Elements of chemical reaction engineering. Pearson Education. 4th ed., 2006.
- Luyben W L. Chemical reactor design and control, second ed, New Jersey: John Wiley & sons; 2007.
- Bendjaouahdou C, Bendjaouahdou M H (2013) Control of the hot spot temperature in an industrial SO2 converter, Energy Procedia, 36, 428-443.
- Gornay, J., Glaude, P.A.., Billaud, F., Coniglio, L. Experiments and Modeling of Octanoic Acid Pyrolysis in a Plug Flow Reactor, Journal of Analytical and Applied Pyrolysis 146 104767.
- Villermaux J. Génie de la réaction chimique, Tec & Doc-Lavoisier (1993).
- Luyben, W. L. (2001a). Design of cooled tubular reactor systems. Industrial and Engineering Chemistry Research 40 , 5775 /5783.
- Luyben, W. L. (2001b). Effect of design and kinetic parameters on the control of cooled tubular reactor systems. Industrial and Engineer-ing Chemistry Research 40 , 3623 / 3633.
- Modliński, N J. Kordylewski W K,. Jakubiak M P. (2013) Numerical simulation of O3 and NO reacting in a tubular flow reactor, Chem Process Eng, 34(3), 361-373.





| Parameter | Signification | Value |
|---|---|---|
| QA0 | volume flow rate of reactant A | 100 litres /minute |
| QB0 | volume flow rate of reactant B | 100 litres /minute |
| CA0 | inlet concentration of reactant A | 0.1 litres /min |
| CB0 | inlet concentration of reactant B | 0.1 litres /min |
| k | second order kinetic constant | 100 litres /(mole. minute) |
| VR | reactor volume | 1000 litres |
| Q = QB0 + QA0 | global volume flow rate at reactor exit | 200 litres/min |
| zmin | minimal value of adimensional axial coordinate | 0 |
| zmax1 | maximal adimensional axial coordinate of the first part of the tube | |
| zmax2 | maximal adimensional axial coordinate of the second part of the tube | |
| zmax3 | maximal adimensional axial coordinate of the third part of the tube | |
| gB1 | fraction of volume flow rate of reactant B headed at zmax1 | |
| gB2 | fraction of volume flow rate of reactant B headed at zmax2 | |
| gB3 | fraction of volume flow rate of reactant B headed at zmax3 |
![]() |
XA (%) | |
|---|---|---|
![]() |
||
| z= 0 z= 3/4 z= 9/10 |
87.43 | |
| z= 0 z= 1/6 z= 3/4 |
93.53 | |
| z= 0 z= 1/3 z= 2/3 |
94.99 | |
| z= 0 z= 1/6 z= 1/2 |
96.50 | |
| z= 0 z=1/8 z=1/4 |
97.60 | |
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