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Preparation and Mechanical-Fatigue Properties of Elastic Polyurethane Concrete Composites
by
Jia, Dongzhe
, Wang, Yanqi
, Sun, Quansheng
, Ding, Hongjian
, Jia, Zhen
in
Atomic force microscopes
/ Atomic force microscopy
/ Bending fatigue
/ Bridges
/ Building materials
/ Cement
/ Composite materials
/ Compression tests
/ Concrete pavements
/ Constitutive relationships
/ Construction materials
/ Curing
/ Elastic properties
/ Energy dissipation
/ Fatigue failure
/ Fatigue life
/ Fatigue strength
/ Fatigue tests
/ Finite element method
/ Girder bridges
/ Girders
/ Green buildings
/ Highway construction
/ Impact strength
/ Mechanical properties
/ Morphology
/ Particle size
/ Polyurethane resins
/ Research methodology
/ Room temperature
/ Rubber
/ Service life
/ Shear strength
/ Stiffness
/ Strain gauges
/ Tensile strength
/ Tensile tests
/ Tires
/ Viscosity
2021
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Preparation and Mechanical-Fatigue Properties of Elastic Polyurethane Concrete Composites
by
Jia, Dongzhe
, Wang, Yanqi
, Sun, Quansheng
, Ding, Hongjian
, Jia, Zhen
in
Atomic force microscopes
/ Atomic force microscopy
/ Bending fatigue
/ Bridges
/ Building materials
/ Cement
/ Composite materials
/ Compression tests
/ Concrete pavements
/ Constitutive relationships
/ Construction materials
/ Curing
/ Elastic properties
/ Energy dissipation
/ Fatigue failure
/ Fatigue life
/ Fatigue strength
/ Fatigue tests
/ Finite element method
/ Girder bridges
/ Girders
/ Green buildings
/ Highway construction
/ Impact strength
/ Mechanical properties
/ Morphology
/ Particle size
/ Polyurethane resins
/ Research methodology
/ Room temperature
/ Rubber
/ Service life
/ Shear strength
/ Stiffness
/ Strain gauges
/ Tensile strength
/ Tensile tests
/ Tires
/ Viscosity
2021
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Preparation and Mechanical-Fatigue Properties of Elastic Polyurethane Concrete Composites
by
Jia, Dongzhe
, Wang, Yanqi
, Sun, Quansheng
, Ding, Hongjian
, Jia, Zhen
in
Atomic force microscopes
/ Atomic force microscopy
/ Bending fatigue
/ Bridges
/ Building materials
/ Cement
/ Composite materials
/ Compression tests
/ Concrete pavements
/ Constitutive relationships
/ Construction materials
/ Curing
/ Elastic properties
/ Energy dissipation
/ Fatigue failure
/ Fatigue life
/ Fatigue strength
/ Fatigue tests
/ Finite element method
/ Girder bridges
/ Girders
/ Green buildings
/ Highway construction
/ Impact strength
/ Mechanical properties
/ Morphology
/ Particle size
/ Polyurethane resins
/ Research methodology
/ Room temperature
/ Rubber
/ Service life
/ Shear strength
/ Stiffness
/ Strain gauges
/ Tensile strength
/ Tensile tests
/ Tires
/ Viscosity
2021
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Preparation and Mechanical-Fatigue Properties of Elastic Polyurethane Concrete Composites
Journal Article
Preparation and Mechanical-Fatigue Properties of Elastic Polyurethane Concrete Composites
2021
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Overview
In order to solve issues related to bridge girders, expansion devices and road surfaces, as well as other structures that are prone to fatigue failure, a kind of fatigue-resistant elastic polyurethane concrete (EPUC) was obtained by adding waste rubber particles (40 mesh with 10% fine aggregate volume replacement rate) to conventional engineering polyurethane concrete (PUC). Based on the preparation and properties of EPUC, its constitutive relation was proposed through compression and tensile tests; then, a scanning electron microscope (SEM), an atomic force microscope (AFM) and a 3D non-contact surface profilometer were used to study the failure morphology and micromechanisms of EPUC. On this basis, four-point bending fatigue tests of EPUC were carried out at different temperature levels (−20 °C, 0 °C, 20 °C) and different strain levels (400 με~1200 με). These were used to analyze the stiffness modulus, hysteresis angle and dissipated energy of EPUC, and our results outline the fatigue life prediction models of EPUC at different temperatures. The results show that the addition of rubber particles fills the interior of EPUC with tiny elastic structures and effectively optimizes the interface bonding between aggregate and polyurethane. In addition, EPUC has good mechanical properties and excellent fatigue resistance; the fatigue life of EPUC at a room temperature of 600 με can grow by more than two million times, and it also has a longer service life and reduced disease frequency, as well as fewer maintenance requirements. This paper will provide a theoretical and design basis for the fatigue resistance design and engineering application of building materials. Meanwhile, the new EPUC material has broad application potential in terms of roads, bridges and green buildings.
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