Title: PowerPoint Sunusu
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8Mass Transfer Zone and Breakthrough
9FEED Solute(adsorbable) Solvent (
FEED
EFFLUENT
Adsorber packed bed section
YO
XO
YO mass solute/mass solvent XO mass
solute/mass adsorbent
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11Constant pattern behavior, X vs t waves
X
t2
t6
t5
t3
t4
t1
Y
Yo
X-t Concentration waves
Favorable isotherm
12Proportionate behavior
Unfavorable Isotherm
13XO
14Breakthrough curve concentration(dimensionless)
of solute in column effluent
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17Length of Unused Bed (LUB) Concept
18Stoichiometric front
Velocity of stoichiometric front velocity of
the mass transfer front
19At any time t, the length of the equilibrium
section will be Zs V t At time ts , the
stoichiometric front reaches the end of column,
thus Z V ts By definition, at breakthrough
time tB Zs V tB Therefore LUB Z Zs V
(ts tB)
LUB Z (ts tB)/tS (1)
20A solute balance over unit cross sectional area
of large scale bed gives Gs (Yo Ya) t Zs
?b ( Xe Xo ) (2) Where Gs mass flux
of solvent, mass/(area)(time) Yo concentration
of solute in feed, mass solute/ mass solvent Ya
concentration of solute in fluid in equilibrium
with Xo Xo residual solute concentration on
adsorbent after regeneration, mass solute/mass
adsorbent Xe concentration of solute on
adsorbent in equilibrium with solute
concentration in feed( Yo), mass solute/mass
adsorbent From which Zs can be calculated. Then
Z ZSLUB (3)
21A still simpler design equation for calculating
amount of adsorbent required for fixed-bed
adsorption
- Gs (Yo Ya) t (Z ?b Xe ) f
- Per unit cross sectional area
- Amount of solute in cycle time t equilibrium
capacity of the bed X fractional saturation of
the bed working capacity - f fractional saturation of the bed accounts for
- Presence of mass-tranfesfer zone at the end of
bed at brakthrough - Incomplete regeneration
- Aging of adsorbent
- Temperature rise due to heat of adsorption
- Other capacity reducing factors
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23Process cycles Temperature Swing Adsorption
(TSA)
24Process cyclesPressure Swing Adsorption(PSA)
25Process cycles Inert Purge Cycle
26Process cycles Displacement-Purge Cycle
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28Fluidized-Bed Adsorption System
29Simulated Moving Bed Adsorption
30Typical Properties of Activated Carbon Adsorbents
31Typical Properties of Adsorbent-Grade Silica Gel
32Typical Properties of Adsorbent-Grade Activated
Alumina