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Mathematical modeling of catalytic-surface combustion of reacting flows
Wai Cheung Timothy Tong
, Mohsen M. Abou-Ellail
, Yuan Li
Research output
:
Journal article publication
›
Journal article
›
Academic research
›
peer-review
11
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Dive into the research topics of 'Mathematical modeling of catalytic-surface combustion of reacting flows'. Together they form a unique fingerprint.
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Keyphrases
Mathematical Modeling
100%
Catalytic Surface
100%
Reacting Flow
100%
Platinum Surface
100%
Surface Combustion
100%
Chemical Reaction
50%
Numerical Data
50%
Methane-air Mixture
50%
Mass Transfer
25%
Surface Temperature
25%
Surface Species
25%
Formaldehyde
25%
Good for
25%
Computational Results
25%
Gas Phase
25%
Hot Plate
25%
Gas Flow
25%
Combustion Products
25%
Steady-state Conditions
25%
Heat Transfer
25%
Balance Equations
25%
Adsorption
25%
Numerical Computation
25%
Flow Properties
25%
Surface Interface
25%
Desorption
25%
Adsorption-desorption
25%
Finite Volume
25%
Transfer Reactions
25%
Carbon-containing Compounds
25%
Adsorbed Species
25%
Methane Catalytic Combustion
25%
Elementary Reaction
25%
Surface Chemical Reaction
25%
Volume Equation
25%
Produced Gas
25%
Gasses
25%
Carbon Element
25%
Engineering
Mathematical Modelling
100%
Air Mixture
100%
Reacting Flow
100%
Numerical Data
100%
Methane
100%
Gas-Phase
50%
State Condition
50%
Numerical Computation
50%
Flow Property
50%
Hot Plate
50%
Produced Gas
50%
Elementary Reaction
50%
Combustion Product
50%
Gas Flow
50%
Balance Equation
50%
Material Science
Surface (Surface Science)
100%
Reacting Flow
100%
Platinum
71%
Numerical Computational Method
14%
Desorption
14%
Gas Flow
14%
Oxidant
14%
Chemical Engineering
Desorption
100%
Combustion Product
100%