1. 7 Steps in a Catalytic Reaction | top |
1. Mass transfer (diffusion) of the reactant(s) from the bulk fluid to the external
surface of the catalyst pellet
2. Diffusion of the reactant from the pore mouth through the catalyst pores to the
immediate vicinity of the internal catalytic surface
3. Adsorption of reactant A onto the catalytic surface
4. Reaction on the surface of the catalyst
5. Desorption of the products from the surface
6. Diffusion of the products from the interior of the pellet to the pore mouth at the
external surface
7. Mass transfer of the products from the external pellet surface to the bulk fluid
We shall now focus on steps 1, 2, 6, and 7. Because the reaction below does not occur in
the bulk phase (only at the surface, at z = delta), we shall first consider steps 1 and 7.
Diffusion is the spontaneous intermingling or mixing of atoms or molecules
by random thermal motion. Mass transfer is any process in which diffusion
plays a role.
The molar flux is just the molar flow rate, FA, divided by the
cross sectional area, AC, normal to the flow. WA =
FA/AC
Molar flux of A WA (moles/time/area) with respect to fixed coordinate system
WA = JA + BA
JA = diffusional flux of A with respect to bulk motion, i.e. molar average velocity
BA = flux of A resulting from bulk flow
One dimension for constant total concentration- Ficks First Law
Gases: DAb~10-5m2/s
Liquids: DAb~10-9m2/s
2. External Diffusion Across a Stagnant Film | top |
Species A diffuses from the bulk (z=0) to a catalytic surface (z=d) where it reacts instantaneously to form B.
In-Out+Generation=Accumulation
Types of Boundary Conditions1. Specify a concentration a boundary
2. Specify a flux at a boundary a) No mass transfer across a boundary [E.g., at pipe wall]
therefore
b) Reaction at a boundary
c) Diffusional flux to a boundary is equal to the convective flux away from the boundary.
e.g.,
3. Planes of Symmetry [E.g., cylinder]
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1) Dilute concentrations (liquids)
Constant total concentration
2) Equal Molar Counter Diffusion (EMCD)
3) Diffusion through a Stagnant Film
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3. Relaitve Rates of Diffusion and Reaction | top |
4. Mass Transfer in a Packed Bed of Catalyst Particles | top |
5. Shrinking Core Model | top |
Time to complete consumption, tc
* All chapter references are for the 4th Edition of the text Elements of Chemical Reaction Engineering .