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INIS
waste water
100%
recovery
71%
phosphorus
65%
sludges
57%
production
55%
precipitation
43%
economics
41%
crystallization
39%
cost
34%
evaluation
33%
reactors
32%
phosphates
30%
removal
28%
nitrification
28%
magnesium
26%
food
22%
anaerobic digestion
21%
magnesium hydroxides
20%
applications
20%
nitrous acid
18%
urine
18%
storage
18%
seawater
18%
nutrients
17%
nitrogen
16%
concentration
15%
methane
15%
kinetics
15%
wastes
14%
sewage sludge
13%
magnesium oxides
13%
performance
13%
management
12%
fluidized bed reactors
12%
water
11%
denitrification
11%
retention
11%
hydraulics
11%
chile
11%
ph value
10%
accumulation
10%
water supply
10%
calcium phosphates
10%
ammonia
9%
bacteria
9%
ambient temperature
9%
ozone
9%
fermentation
9%
chains
9%
reviews
9%
Keyphrases
Phosphorus Recovery
54%
Struvite
45%
Struvite Crystallization
43%
Wastewater Treatment Plant
31%
Reactor
30%
Wastewater
28%
Magnesium
25%
Seawater
24%
Phosphate
23%
Sludge
23%
Magnesium Hydroxide
21%
Magnesium Source
20%
Class A Biosolids
18%
Sanitization
18%
Free Nitrous Acid
18%
Digester Effluent
18%
Partial Nitrification
18%
Hydraulic Retention Time
17%
Sewage Sludge
16%
Hydrolyzed Urine
16%
Struvite Precipitation
16%
Anaerobic Digestion
15%
Fresh Urine
15%
Ammonium Ion
14%
Chemical Precipitation
14%
Industrial Grade
13%
Effluent
12%
Polyhydroxyalkanoates
12%
Nutrient Recovery
12%
Fluidized Bed Reactor
12%
Sludge Production
11%
Denitrification
11%
Urban Wastewater Treatment Plant
11%
Phosphate Concentration
10%
Methane
10%
Operating Conditions
10%
Nitrogen Recovery
9%
Urban Wastewater Treatment
9%
Denitrification Process
9%
Biorefinery
9%
Methane Recovery
9%
Treatment Plant
9%
Food Waste Management
9%
Solid Residence Time
9%
Techno-economic Assessment
9%
Ozone Application
9%
Environmental Impact
9%
Chemical Approach
9%
Intermediate Compounds
9%
Autotrophic Denitrification
9%