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Experimental investigation of aluminum particle dust cloud combustion
Grant A. Risha
, Ying Huang
,
Richard A. Yetter
, Vigor Yang
Division of Business, Engineering, and Information Sciences & Technology (Altoona)
Mechanical Engineering
Research output
:
Contribution to conference
›
Paper
›
peer-review
40
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Scopus citations
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Keyphrases
Aerosol
100%
Oxidizer
100%
Aluminum Particles
100%
Particle Breakup
66%
Flame Speed
66%
High-resolution
33%
Nanoparticles
33%
Operating Conditions
33%
Shear Velocity
33%
Aluminum Oxide
33%
Al Particles
33%
Flow Velocity
33%
Thermal Diffusivity
33%
Thermal Conductivity
33%
Jet Momentum
33%
Microparticles
33%
Flame Temperature
33%
Al2O3 Particles
33%
High Thermal Conductivity
33%
Nano-aluminum
33%
Inlet Velocity
33%
Equivalence Ratio
33%
Small Variation
33%
Dust Concentration
33%
Flame Zone
33%
Aerosol Composition
33%
Dust Cloud
33%
Data Analyzing
33%
Particle-laden
33%
Air Mixture
33%
Micron-sized Aluminum
33%
High Temperature Steam
33%
Bunsen Flame
33%
Engineering
Experimental Investigation
100%
Oxidizer
100%
Dust Cloud
100%
Sized Particle
66%
High Resolution
33%
Nanoparticle
33%
Equivalence Ratio
33%
Constant Flow Rate
33%
Thermal Conductivity
33%
Flame Temperature
33%
High Thermal Conductivity
33%
Constant Rate
33%
Inlet Velocity
33%
Micrograph
33%
Flame Zone
33%
Air Mixture
33%
Dispersion Energy
33%
Al Particle
33%
Phase Composition
33%
Flow Velocity
33%
Thermal Diffusivity
33%
Bunsen Burner
33%