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Cavitation erosion resistance of sewer pipe materials
Charles Fairfield
Research output
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Article
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peer-review
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Dive into the research topics of 'Cavitation erosion resistance of sewer pipe materials'. Together they form a unique fingerprint.
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Earth and Planetary Sciences
Pipe
100%
Erosion
100%
Sewer
100%
Water
50%
Service
50%
Temperature
50%
Clay
50%
Wear
50%
Abrasion
50%
Surface Roughness
50%
Impact Resistance
50%
Speed
25%
Literature
25%
Impact
25%
Information
25%
Damage
25%
Cause
25%
Data Base
25%
Surface Pressure
25%
Parameter
25%
Cooling
25%
Standard
25%
Failure
25%
Plastic
25%
Fracture Strength
25%
Roughness
25%
Modulus of Elasticity
25%
Toughness
25%
Fracture
25%
Thermal Conductivity
25%
Hardness
25%
Correlation Coefficient
25%
Hydraulic Jet
25%
Concrete
25%
Engineering
Properties
100%
Sewer
100%
Cavitation Corrosion
100%
Pipe Material
100%
Erosion Resistance
100%
High Water Pressure
75%
Roughness
75%
Surfaces
50%
Impact Resistance
50%
Temperature
25%
Correlation
25%
Density
25%
Thermal Conductivity
25%
Fracture
25%
Experimental Work
25%
Hardness
25%
Heat Losses
25%
Impact Problem
25%
Maximum Service Temperature
25%
Abrasion Resistance
25%
Young's Modulus
25%
Abrasion
25%
Wear (Damage)
25%
Fracture Toughness
25%
Material Science
Material
100%
Cavitation
100%
Materials Property
50%
Mechanical Strength
50%
Tribological Material
50%
Abrasion
50%
Impact Resistance
50%
Temperature
50%
Surface Roughness
50%
Velocity
50%
Concrete (Composite Building Material)
25%
Fracture Toughness
25%
Hardness
25%
Elastic Moduli
25%
Plastic Material
25%
Wear of Materials
25%
Density
25%
Correlation
25%
Toughness
25%
Thermal Conductivity
25%