Fiber-reinforced polymeric (FRP) composites are materials that are increasing in use in civil engineering applications. Despite the excellent mechanical properties and corrosion resistance offered by these organic matrix materials, their susceptibility to the synergistic effects of stress and environmental weathering hinders their widespread acceptance in civil engineering. The durability of a specific formulation of wood-compatible, pultruded, E-glass–phenolic composite is characterized. This composite is unique because its layered structure and void content make it compatible with standard structural wood adhesives. The durability of this wood-compatible FRP reinforcement cannot be directly determined from published work on the durability of E-glass composites because of its unique design. A durability test matrix was generated according to specifications and test standards from the International Conference of Building Officials Evaluation Service, Inc., and from the California Department of Transportation. Physical and mechanical properties that were used as indicators of degradation mechanisms and that applied to the bridge environment included tensile behavior, interlaminar shear strength, void content, and glass-transition temperature. Environmental testing involved exposure to various storage media, such as moisture, saline solutions, and calcium carbonate, followed by mechanical testing. Other exposure treatments included dry heat, cyclic freeze-thaw, accelerated weathering, and natural weathering. In addition to the strength-retention determination after environmental conditioning, control and exposed specimens were examined visually with optical and scanning electron microscopy to determine surface changes and their effect on failure and fracture modes.
[1]
Lawrence C. Bank,et al.
Accelerated Test Methods to Determine the Long-Term Behavior of FRP Composite Structures: Environmental Effects
,
1995
.
[2]
Lawrence C. Bank,et al.
Accelerated Test Methods to Determine the Long-Term Behavior of Composite Highway Structures Subject to Environmental Loading
,
1998
.
[3]
Lawrence C. Bank,et al.
Use of Thermogravimetric Analysis to Develop Accelerated Test Methods to Investigate Long-Term Environmental Effects on Fiber-Reinforced Plastics
,
1997
.
[4]
John W. Gillespie,et al.
The effects of moisture on the material properties and behavior of thermoplastic polyimide composites
,
1997
.
[5]
Andrzej K. Bledzki,et al.
Corrosion phenomena in glass fibers and glass fiber reinforced thermosetting resins
,
1985
.
[6]
Hugh McManus,et al.
Materials and Mechanics Analyses of Durability Tests for High-Temperature Polymer Matrix Composites
,
1997
.
[7]
Lawrence C. Bank,et al.
Microscopic Study of Surface Degradation of Glass Fiber-Reinforced Polymer Rods Embedded in Concrete Castings Subjected to Environmental Conditioning
,
1997
.