164
Subject Index
E
Effect of filler size on absorption rate, 130
Effect of filler type on absorption rate, 129
Effect of gas flow rate on absorption rate,
128
Effect of HCl concentration, 18
Effect of inlet gas flow, 115
Effect of leaching time, 17
Effect of liquid flow rate on absorption rate,
128
Effect of temperature, 18, 115
Effects of agitators, 139
Effects of eccentric stirring, 142
Effects of inlet gas flow, 142
Effects of stirring speeds, 140
Effects of the height of agitator, 143
Efficiency, 6, 10, 13, 14, 16–20, 30, 37–43,
45–49, 62, 65, 66, 76, 96, 124, 128,
129, 131, 149
Electrocatalyst, 3, 4, 11
Electrochemical measurement of material, 6
Electrochemical test, 8
Emission factors, 29, 31, 34, 35
Establishment of thermodynamic model,
150
Establishment of thermodynamic model and
conditions, 150
Experimental program, 138
Experimental system, 63
F
Feature selection, 95, 102, 107, 109
Feature space, 95–97, 100, 101, 103, 105–
107, 109
Feature space division and analysis, 105
Feature variable selection and analysis, 107
Flow patterns and load performance, 43
Flow regimes, 61–63, 65, 67
Flow regimes of gas-liquid two-phase flow,
65
Fly ash, 13–15, 41
Foam flow pattern, 39, 43–45, 48
H
Hematite, 15, 111–118, 120
High coal reactivity, 81
Hydrodynamics, 40, 62, 63, 66, 70–72, 129,
131
Hydrodynamics of gas-liquid two-phase
flow with A/T, 66
Hydrodynamics of gas-liquid two-phase
flow with gas flow rate, 70
Hydrodynamics of gas-liquid two-phase
flow with liquid flow rate, 71
Hydrogen, 8, 51–53, 55, 58, 59, 111, 120,
123, 125, 132, 149, 150, 155–159
I
Industrial application, 41, 88
Influence of dust mass concentration on dust
removal performance, 47
Influence of liquid-gas flow rate ratio on dust
removal performance, 45
Integrated prediction, 95, 103, 109
Integrated prediction model framework, 103
Ironmaking, 30, 32, 35, 36, 75, 111, 112, 149
K
Kaolinite, 87–89, 91, 92
Kinetics of dissolution studies, 91
L
Leaching, 13–20, 87–89, 91–93
Leaching experiments, 16
Load performance, 68
Low coal reactivity, 81
Low temperature, 112, 120
M
Mass transfer process simulation, 123
Measurement of flow patterns, 65
Mesoporous silica, 87–90, 92, 93
Method of numerical investigation, 76
Modeling CCB reaction in BF, 78
Model parameter setting and evaluation indicators, 105
O
Optimization, 14, 17, 20, 36, 39, 62, 63, 96
Overall analysis, 35
Oxygen consumption, 95–97, 100–102, 104,
105, 109
Oxygen enrichment rate, 152
Oxygen evolution reaction, 3–5, 7, 9–11
P
Performance of leaching reagent on rare
earths extraction, 17
Phosphogypsum, 133–137, 145, 146
Physical simulation, 124, 133, 134
PM2.5, 39–41, 48, 62
Subject Index
E
Effect of filler size on absorption rate, 130
Effect of filler type on absorption rate, 129
Effect of gas flow rate on absorption rate,
128
Effect of HCl concentration, 18
Effect of inlet gas flow, 115
Effect of leaching time, 17
Effect of liquid flow rate on absorption rate,
128
Effect of temperature, 18, 115
Effects of agitators, 139
Effects of eccentric stirring, 142
Effects of inlet gas flow, 142
Effects of stirring speeds, 140
Effects of the height of agitator, 143
Efficiency, 6, 10, 13, 14, 16–20, 30, 37–43,
45–49, 62, 65, 66, 76, 96, 124, 128,
129, 131, 149
Electrocatalyst, 3, 4, 11
Electrochemical measurement of material, 6
Electrochemical test, 8
Emission factors, 29, 31, 34, 35
Establishment of thermodynamic model,
150
Establishment of thermodynamic model and
conditions, 150
Experimental program, 138
Experimental system, 63
F
Feature selection, 95, 102, 107, 109
Feature space, 95–97, 100, 101, 103, 105–
107, 109
Feature space division and analysis, 105
Feature variable selection and analysis, 107
Flow patterns and load performance, 43
Flow regimes, 61–63, 65, 67
Flow regimes of gas-liquid two-phase flow,
65
Fly ash, 13–15, 41
Foam flow pattern, 39, 43–45, 48
H
Hematite, 15, 111–118, 120
High coal reactivity, 81
Hydrodynamics, 40, 62, 63, 66, 70–72, 129,
131
Hydrodynamics of gas-liquid two-phase
flow with A/T, 66
Hydrodynamics of gas-liquid two-phase
flow with gas flow rate, 70
Hydrodynamics of gas-liquid two-phase
flow with liquid flow rate, 71
Hydrogen, 8, 51–53, 55, 58, 59, 111, 120,
123, 125, 132, 149, 150, 155–159
I
Industrial application, 41, 88
Influence of dust mass concentration on dust
removal performance, 47
Influence of liquid-gas flow rate ratio on dust
removal performance, 45
Integrated prediction, 95, 103, 109
Integrated prediction model framework, 103
Ironmaking, 30, 32, 35, 36, 75, 111, 112, 149
K
Kaolinite, 87–89, 91, 92
Kinetics of dissolution studies, 91
L
Leaching, 13–20, 87–89, 91–93
Leaching experiments, 16
Load performance, 68
Low coal reactivity, 81
Low temperature, 112, 120
M
Mass transfer process simulation, 123
Measurement of flow patterns, 65
Mesoporous silica, 87–90, 92, 93
Method of numerical investigation, 76
Modeling CCB reaction in BF, 78
Model parameter setting and evaluation indicators, 105
O
Optimization, 14, 17, 20, 36, 39, 62, 63, 96
Overall analysis, 35
Oxygen consumption, 95–97, 100–102, 104,
105, 109
Oxygen enrichment rate, 152
Oxygen evolution reaction, 3–5, 7, 9–11
P
Performance of leaching reagent on rare
earths extraction, 17
Phosphogypsum, 133–137, 145, 146
Physical simulation, 124, 133, 134
PM2.5, 39–41, 48, 62
