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INIS
efficiency
100%
modeling
100%
additives
100%
manufacturing
100%
melting
100%
extrusion
100%
pellets
100%
styrene
66%
processing
33%
screws
33%
ethylene
33%
butylenes
33%
butadiene
33%
acrylonitrile
33%
styrene polymers
33%
data
16%
validation
16%
images
16%
control
16%
removal
16%
variations
16%
performance
16%
balances
16%
tuning
16%
data analysis
16%
scanning electron microscopy
16%
melting points
16%
freezing
16%
drag
16%
thermal conduction
16%
heat dissipation
16%
zone melting
16%
Keyphrases
Melting Efficiency
100%
Pellet Feed
100%
Extrusion Additive Manufacturing
100%
Material Type
50%
Polylactic Acid
50%
Screw
50%
Acrylonitrile Butadiene Styrene
50%
Polymeric Part
50%
Styrene-isoprene-styrene
50%
Styrene Polymers
50%
Downscaling
25%
Product Quality
25%
Image Analysis
25%
Model Validation
25%
Material Properties
25%
Processing Time
25%
Rheological Behavior
25%
Scanning Electron Microscopy Analysis
25%
Processing Temperature
25%
Product Performance
25%
Conventional Extrusion
25%
Viscous Heat Dissipation
25%
Material Product
25%
Melting Zone
25%
Melting Mechanism
25%
Thermal Conduction
25%
Rheological Data
25%
Micro-extrusion
25%
Good Control
25%
Freezing Experiments
25%
Melt Removal
25%
Engineering
Modeling Study
100%
Additive Manufacturing
100%
Melting Point
100%
Polymeric Part
33%
Acrylonitrile Butadiene Styrene
33%
Heat Losses
16%
Processing Time
16%
Image Data
16%
Rheological Behavior
16%
Product Quality
16%
Product Performance
16%
Material Science
Three Dimensional Printing
100%
Polylactide
50%
Materials Class
50%
Acrylonitrile Butadiene Styrene
50%
Electron Microscopy
25%
Scanning Electron Microscopy
25%
Materials Property
25%
Chemical Engineering
Styrene
100%
Butene
40%
Butadiene
40%
Ethylene
40%
Chilling
20%