FRP pultruded profiles are the building blocks of modern corrosion-resistant structures. From simple handrail systems to complex chemical plant superstructures, these profiles offer a unique combination of strength, weight savings, and environmental resistance that traditional metals cannot match.
This guide covers the standard shapes, mechanical properties, and design considerations for FRP pultruded profiles. For more on our profile product range, visit our FRP profiles page.
What Are FRP Pultruded Profiles?
Key takeaway: FRP pultruded profiles are made by pulling continuous fiberglass roving through a resin bath and into a heated steel die. The result is a structural shape with continuous fiber alignment — giving maximum strength along the length of the profile.
The pultrusion process (pull + extrusion) produces profiles with a glass content of 50–70% by weight — significantly higher than molded products. This high fiber content gives pultruded profiles exceptional strength-to-weight ratios. The ACMA composites standards provide design guidelines for structural pultruded shapes.
Standard Profile Shapes
| Shape | Common Sizes | Primary Application |
|---|---|---|
| I-Beam / Wide Flange | 100×50 to 300×150 mm | Primary structural supports, beams |
| Channel (U-Shape) | 50×25 to 250×75 mm | Handrail systems, edge supports |
| Angle (L-Shape) | 25×25 to 150×150 mm | Bracing, brackets, frames |
| Square Tube | 12×12 to 150×150 mm | Leg supports, posts, framing |
| Round Tube | 20 to 200 mm OD | Pipe supports, railings |
| Flat Bar | 25×3 to 300×25 mm | Gussets, connection plates |
| Round Rod | 6 to 50 mm diameter | Cross rods, bracing elements |
| Custom Shapes | Any cross-section | Designed for specific applications |
Mechanical Properties
| Property | FRP Pultruded Profile |
|---|---|
| Tensile strength (longitudinal) | 200–400 MPa |
| Flexural strength | 200–350 MPa |
| Modulus of elasticity | 20–30 GPa |
| Density | 1.7–2.0 g/cm³ |
| Thermal expansion | 8–14 × 10⁻⁶ /°C |
| Service temperature | -50°C to +180°C (resin-dependent) |
Design note: FRP’s modulus of elasticity (~25 GPa) is roughly 1/10 of steel’s (~200 GPa). This means FRP profiles deflect more under load. Designs should be stiffness-driven rather than strength-driven.
FRP vs Steel vs Aluminum
| Factor | FRP Pultruded | Steel | Aluminum |
|---|---|---|---|
| Weight (relative) | 1x | 4x | 1.4x |
| Tensile strength | 200–400 MPa | 400–550 MPa | 150–300 MPa |
| Corrosion resistance | Excellent | Poor (coating needed) | Good |
| Electrical conductivity | Non-conductive | Conductive | Conductive |
| Maintenance | None | Ongoing painting | Minimal |
| Service life | 25–50 years | 10–25 years | 15–30 years |
Joining & Fabrication
FRP profiles cannot be welded. Instead, connections use:
- Bolted connections: Stainless steel bolts with large washers to distribute load
- Adhesive bonding: Epoxy or acrylic adhesives for permanent joints
- Combined: Bolts + adhesive for maximum joint strength
Cutting and drilling require carbide-tipped tools. Unlike steel, FRP does not conduct heat, so thermal cutting is not applicable.
Applications
- Water treatment plant walkways and handrails
- Chemical plant structural framing
- Marine pier fendering and dock structures
- Electrical transmission supports and cable trays
- Cooling tower structural members
- Bridge components and sign supports
- Mining platform structures
Frequently Asked Questions
What are FRP pultruded profiles?
Structural shapes made by pulling fiberglass through resin and a heated die — channels, beams, angles, tubes.
What standard shapes are available?
I-beams, channels, angles, square/round tubes, flat bars, round rods, and custom shapes.
How do they compare to steel?
1/4 the weight, corrosion-resistant, non-conductive, but 1/10 the stiffness — design must account for deflection.
Can they be joined?
Yes, with stainless steel bolts, adhesive bonding, or both. No welding.
What industries use them?
Water treatment, chemical processing, marine, electrical, infrastructure, mining.
Conclusion
FRP pultruded profiles offer a unique combination of properties — light weight, corrosion resistance, high strength, and electrical non-conductivity — that make them ideal for demanding environments. By understanding the available shapes, mechanical properties, and design considerations, engineers can specify FRP profiles with confidence.