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Conversion and its related terms yield and selectivity are important terms in chemical reaction engineering. They describe as ratios how much of a reactant has reacted (X — conversion, normally between zero and one), how much of a desired product was formed (Y — yield, normally also between zero and one) and how much desired product was formed in ratio to the undesired product(s) (S — selectivity).

It is important to note that there are conflicting definitions in the literature for selectivity and yield. It is hence important to check the author's intended definition when reading articles or books on chemical reaction engineering. Additionally, when writing papers, please state the definition used.

Conversion can be defined for (semi-)batch and continuous reactors and as instantaneous and overall conversion.

Assumptions

The following assumptions are made:

  • The following chemical reaction takes place:
i=1nνiAi=j=1mμjBj,

where νi and μj are the stoichiometric coefficients. For multiple parallel reactions, the definitions can also be applied, either per reaction or using the limiting reaction.

  • Batch reaction assumes all reactants are added at the beginning.
  • Semi-Batch reaction assumes some reactants are added at the beginning, the rest is fed during the batch.
  • Continuous reaction assumes reactants are are fed and products leave the reactor continuously and in steady state.

Conversion

Conversion can be separated into instantaneous conversion and overall conversion. For continuous processes the two are the same, for batch and semi-batch there are important differences. Furthermore, for multiple reactants, conversion can be defined overall or per reactant.

Instantaneous Conversion

Semi-Batch

In this setting there are different definitions. One definition regards the instantaneous conversion as the ratio of the instantaneously converted amount to the amount fed at any point in time:

Xi,inst=n˙i,reactn˙i,in.

This ratio can become larger than 1. It can be used to indicate whether reservoirs are built up and it is ideally close to 1. When the feed stops, its value is not defined.

In semi-batch polymerisation, the instantaneous conversion is defined as the total mass of polymer devided by the total mass of monomer fed:[1][2]

Xpoly=mPoli0tm˙i,in(τ)dτ.

Overall Conversion

Batch (This is the generally stated form)

Xi=ni(t=0)ni(t)ni(t=0)=1ni(t)ni(t=0)

Semi-Batch

Total conversion of the formulation:

Xi=ni(t=0)+0tn˙i,in(τ)dτni(t)nA(t=0)+0tendn˙i,in(τ)dτ

Total conversion of the fed reactants:

Xi=ni(t=0)+0tn˙i,in(τ)dτni(t)nA(t=0)+0tn˙i,in(τ)dτ

Continuous (This is the generally stated form)

Xi=n˙i,inn˙i,outn˙i,in=1ni,outni,in

Yield

Yield in general refers to the amount of a specific product (p in 1..m) formed per mole of reactant consumed (Definition 1[3]). However, it is also defined as the amount of product produced per amount of product that could be produced (Definition 2). If not all of the limiting reactant has reacted, the two definition contradict each other. Combining those two also means that stoichiometry needs to be taken into account and that yield has to be based on the limiting reactant (k in 1..n):

Batch or Semi-Batch

Yp=np(t)np(t=0)nk(t=0)+0tn˙k,in(τ)dτnk(t)only for Definition 1|μkνp|

The version normally found in the literature:

Yp=np(t)np(t=0)nk(t=0)+0tn˙k,in(τ)dτ|μkνp|

Continuous

Yp=n˙p,outn˙p,inn˙k,innk,outonly for Definition 1|μkνp|

The version normally found in the literature:

Yp=n˙p,outn˙p,inn˙k,in|μkνp|

Selectivity

Instantaneous selectivity is the the production rate of one component per production rate of another component.

For overall selectivity the same problem of the conflicting definitions exists. Generally, it is defined as the number of moles of desired product per the number of moles of undesired product (Definition 1[4]). However, the definitions of the total amount of reactant to form a product per total amount of reactant consumed is used (Definition 2) as well as the total amount of desired product formed per total amount of limiting reactant consumed (Definition 3). This last definition is the same as definition 1 for yield!

Batch or Semi-Batch

The version normally found in the literature:

Sp=np(t=0)np(t)nk(t=0)+0tn˙k,in(τ)dτnk(t)|μkνp|

Continuous

The version normally found in the literature:

Sp=n˙p,outn˙p,inn˙k,innk,out|μkνp|

Combination

For batch and continuous reactors (semi-batch needs to be checked more carefully) and the definitions marked as the ones generally found in the literature, the three concepts can be combined:

Yp=XiSp

For a process with the only reaction

AB

this mean that S=1 and Y=X.

Abstract Example

Comparison and relation between conversion (X), selectivity (S) and yield (Y) for a chemical reaction. A: reagent; B, C: products.

For the following abstract example and the amounts depicted on the right, the following calculation can be performed with the above definitions, either in batch or a continuous reactor.

AB
AC

B is the desired product.

There are 100 mol of A at the beginning or at the entry the the continuous reactor and 10 mol A, 72 mol B and 18 mol C at the end of the reaction or the exit of the continuous reactor. The three properties are found to be:

XA=nA(t=0)nA(t)nA(t=0)=1nA(t)nA(t=0)=10010100=0.9=90%
YB=nB(t)nB(t=0)nA(t=0)+0tn˙A,in(τ)dτ|μkνp|=720100+011=0.72=72%
SB=nB(t=0)n˙B(t)n˙A(t=0)nA(t)|μkνp|=0721001011=0.8=80%

The property Yp=XiSp holds. In this reaction, 90% of substance A is converted (consumed), but only 80% of the 90% is converted to the desired substance B and 20% to undesired by-products C. So, conversion of A is 90%, selectivity for B 80% and yield of substance B 72%.

Literature

  • Werner Kullbach: Mengenberechnungen in der Chemie. Verlag Chemie, Weinheim 1980, ISBN 3-527-25869-8.
  • Eberhard Aust, Burkhard Bittner: Stöchiometrie - Chemisches Rechnen, CICERO-Verlag, Pegnitz, 4. Auflage, 2011, ISBN 978-3-926292-47-6.
  • Uwe Hillebrand: Stöchiometrie, Eine Einführung in die Grundlagen mit Beispielen und Übungsaufgaben, 2. Aufl., Springer-Verlag, Berlin Heidelberg 2009, ISBN 978-3-642-00459-9.

References

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  1. Lazaridis et al.: "Semi-Batch Emulsion Copolymerization of Vinyl Acetate andButyl Acrylate Using Oligomeric Nonionic Surfactants", Macromol. Chem. Phys. 2001, 202, 2614-2622
  2. Wayne F. Reed, Alina M. Alb: "Monitoring Polymerization Reactions: From Fundamentals to Applications", Wiley, 2014
  3. Fogler, H.: "Elements of Chemical Reaction Engineering", 2nd Edition, Prentice Hall, 1992
  4. Fogler, H.: "Elements of Chemical Reaction Engineering", 2nd Edition, Prentice Hall, 1992