Let us design an aerobic digester with the following assumptions:
Parameter
Value
Input Sludge
5 m3/d
Total Solids
2% (after thickening)
Volatile Solids
75% TS
Lowest Temperature during Winter
17°C
Oxygen Demand
2.3 kgO2/kgVS destroyed
Air Density
1.2 kg/m3
Oxygen Concentration in the Air
23%
Aerobic Digester Tank Design Assumptions
Step 1: Select Retention Time (RT) and Calculate Digester Volume (VD)
The lowest temperature during winter in the region is 17°C, which will result in a retention time of 31 days, based on the recommendation from the table presented in Topic 3.5 (Table: Design parameters for conventional aerobic sludge digesters).
The following formula can be applied to calculate the digester volume.
Where,
Parameter
Description
Value in Exercise
Unit
VD
Digester Volume
–
m3
VIN
Volume Input
5
m3/d
RT
Retention Time
31
d (day)
Let’s calculate the digester volume based on the recommended retention time of 31 days.
Solution:
Step 2: Verify the Organic Loading Rate (OLR) (within the range 1.6 – 4.8 kgVS/m3d)
The following formula can be applied to calculate the organic loading rate.
Where,
Parameter
Description
Value in Exercise
Unit
OLR
Organic Loading Rate
–
kgVS/m3/d
VIN
Volume Input
5
m3/d
ρ
Density of Water
1,000
kg/m3
CTS
TS Concentration
2
%TS
CVS(TS)
VS Concentration from TS
75
%VS from TS
VD
Digester Volume
155
m3
Now, we calculate the organic loading rate and verify if it is within the specified range.
Solution:
The calculated organic loading rate is not within the specified range.
Step 3: Calculate the Total Solids Concentration in the Aerobic Digester (CTS)
Firstly, we calculate the fixed solids (FS), the undigested part which remains constant throughout the process for both the influent and effluent.
Where,
Parameter
Description
Value in Exercise
Unit
FS
Fixed Solids
–
kg/d
FSIN
Fixed Solids of Influent
–
kg/d
FSEFF
Fixed Solids of Effluent
–
kg/d
TSIN
Total Solids of Influent
100
kg/d
VSIN
Volatile Solids of Influent
75
kg/d
Solution:
Secondly, we calculate VS of the effluent, VSEFF . We assume a VS removal efficiency of 40% for aerobic digestion.
Where,
Parameter
Description
Value in Exercise
Unit
VSEFF
Volatile Solids of Effluent
–
kgVS/d
REVS
Removal Efficiency
40
%
VSIN
Volatile Solids of Influent
75
kgVS/d
Solution:
Thirdly, we calculate the TS of the effluent, TSEFF
Solution:
Finally, we can determine the TS concentration that is maintained in the digester tank (CTS).
Where,
Parameter
Description
Value in Exercise
Unit
CTS
TS Concentration in digester tank
–
%
ρ
Density of Water
1,000
kg/m3
TSEFF
Total Solids of Effluent
70
kg/d
VSEFF
Volatile Solids of Effluent
5
m3/d
Solution:
Step 4: Determine the Area Requirements for the Digester (A)
Next, we calculate the area requirements for 4 rounded tanks if one tank has a diameter of 10 m. As a reminder, the formula for the area is A= π r² .
Where,
Parameter
Description
Value in Exercise
Unit
A
Area required
–
m2
π
Constant
3.14
–
r
Radius of the digester tank
5
m
Solution:
Step 5: Determine the Air Requirements for the Digester (VAIR)
Firstly, we need to quantify the VS removed per day, VSREM .
Where,
Parameter
Description
Value in Exercise
Unit
VSREM
Volatile Solids Removed
–
kg/d
REVS
Removal Efficiency
40
%
VSIN
Volatile Solids of Influent
75
kg/d
Solution:
Secondly, we need to quantify the oxygen requirement for the removal of VSREM of 30 kg/d.
Where,
Parameter
Description
Value in Exercise
Unit
OM
Mass of Oxygen
–
kgO2
VSREM
VS Removed
30
kgVS/d
ODM
Oxygen Demand
2.3
kgO2/ kgVS
Solution:
Finally, we can determine the volume of air (VAIR) required per day if the oxygen concentration is assumed to be 30%. As calculated in the previous example, the oxygen required is 69 kgO2/d.
We use the following formula to calculate the volume of air, VAIR, required per day.
Where,
Parameter
Description
Value in Exercise
Unit
VAIR
Volume of Air
–
m3/d
OM
Mass of Oxygen
69
kgO2
ρAIR
Density of Oxygen
1.2
kgO2 /m3
CO
Oxygen Concentration
30
%
Solution:
We then check the airflow mixing capacity and confirm if it exceeds the minimum requirements as suggested in the table presented in Topic 3.5 (Table: Design parameters for conventional aerobic sludge digesters): The minimum airflow mixing capacity should be between 20 – 40 L/m3/min.
Where,
Parameter
Description
Value in Exercise
Unit
MIX
Airflow Mixing Capacity
–
L/m3/min
VAIR
Volume of Air
191.7
m3/d
VD
Volume of the Digester
155
m3
Solution:
The airflow mixing capacity is lower than the minimum requirements; therefore, the amount of air needs to be increased based on the minimum flow mixing capacity of 20L/m3/min or 29 m3/m3 d.
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