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FRP Rods Manufacturer
About Our Product

Engineered FRP Composites for Demanding Environments in Dahod

Surolia Enterprises is a trusted manufacturer and supplier of FRP Rods Manufacturer in Dahod, delivering corrosion-free composite reinforcement for infrastructure, marine and industrial projects.

FRP Rods are di-electric composite strength members built from resin, glass reinforcement, additives and a surface veil, consolidated by thermal pultrusion into a rod of consistent diameter and shape.

They are used as the central or peripheral strength member in optical fibre and telecom cables, and suit multi-loose tube, uni-tube, slotted core and ribbon cable designs. Because the rod is di-electric it carries no current and needs no bonding or earthing, unlike a steel strength member.

Rods are available from 0.4 mm to 5.0 mm diameter, with EAA, polypropylene or HDPE coating to suit the jacket material. Applications extend beyond cable into electrical, agricultural, engineering and transport uses.

It Includes-

  • Di-electric — carries no current, no earthing required
  • High strength with low weight
  • Minimum bend radius gives flexibility with anti-buckling resistance
  • Good adhesion to jacket material
  • Consistent diameter and shape along the length
  • Diameters 0.4 mm to 5.0 mm; EAA, PP or HDPE coating
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Applications

Industries We Serve

Composite reinforcement performs best where corrosion, electromagnetic interference or structure weight limit what steel can do. These are the sectors we supply.

Why Composite

Advantages of FRP Composites

Corrosion-Free Reinforcement

Glass fibre and resin do not rust. In chloride-rich environments — coastal structures, water treatment tanks, de-iced roads — there is no rebar corrosion and therefore no concrete cracking or cover spalling.

High Tensile Strength

Tensile strength typically ranges from about 700 to 1,000 MPa, well above the 500 MPa yield strength of conventional Fe500 steel rebar, allowing efficient reinforcement designs.

Lightweight Handling

At roughly a quarter the density of steel, bars are carried and placed by hand. This cuts crane time, transport load and on-site labour, and speeds up cage assembly.

Electrically & Magnetically Transparent

The bars are non-conductive and non-magnetic, making them suitable for MRI suites, substations, telecom facilities, railway signalling zones and any structure sensitive to electromagnetic interference.

Long Service Life, Lower Lifecycle Cost

Because the reinforcement does not degrade, structures avoid the repair and cover-replacement cycles that corroding steel forces. Higher material cost is offset over the life of the asset.

Material Comparison

FRP VS STEEL

Corrosion Behaviour

FRP does not corrode. Steel rebar rusts when moisture and chlorides reach it; the expanding rust cracks the concrete cover from within.

Weight & Density

FRP has a density of roughly 2.0 g/cm³ against 7.85 g/cm³ for steel — about one quarter the weight for the same bar size.

Tensile Strength

FRP bars reach roughly 700–1,000 MPa in tension, compared with a 500 MPa yield for Fe500 steel.

Stiffness (Elastic Modulus)

Steel is stiffer: about 200 GPa against 40–60 GPa for GFRP. Members are designed for deflection and crack width accordingly, per ACI 440 guidance.

Conductivity

FRP is electrically and thermally non-conductive and non-magnetic. Steel conducts both heat and electricity and interferes with magnetic fields.

Fabrication

Steel can be cut, bent and welded on site. FRP is cut on site with a diamond blade, but bends must be moulded during manufacture — bar schedules are finalised before production.

FAQ

Frequently Asked Questions

FRP (Fibre Reinforced Polymer) rebar is a reinforcing bar made from continuous fibres bound in a polymer resin matrix. When the fibre is glass it is called GFRP. The bar is produced by pultrusion and then surface-treated — sand-coated or ribbed — so it bonds with concrete in place of conventional steel reinforcement.

No. There is no steel in the bar, so there is nothing to rust. This is the main reason it is specified for marine and coastal structures, water and wastewater treatment plants, chemical plants and bridge decks exposed to de-icing salts, where corroding steel would eventually crack and spall the concrete cover.

In tension, FRP is stronger: typically about 700–1,000 MPa against the 500 MPa yield strength of Fe500 steel. It is, however, less stiff — the elastic modulus of GFRP is roughly 40–60 GPa compared with about 200 GPa for steel, and the bar behaves elastically up to failure rather than yielding. Members are therefore designed for deflection and crack width using FRP-specific provisions, not by substituting bars one-for-one into a steel design.

It can be cut on site with a diamond or carbide blade. It cannot be bent on site — bends are formed while the resin cures during manufacture. Stirrups, links and any bent bars must therefore be specified and produced to the bar schedule in advance. FRP also cannot be welded.

Material and testing requirements for glass-fibre bars are set out in ASTM D7957. Design and detailing of concrete reinforced with FRP bars is covered by the ACI 440 series of guidance. Project specifications in India may additionally reference the relevant BIS specification for FRP rebars.

Anywhere corrosion, electromagnetic interference or handling weight drives cost. Typical cases are coastal and marine works, water-retaining structures, bridge decks and parking decks, MRI rooms and substations, railway and metro works near signalling equipment, and tunnel soft-eyes where the reinforcement must later be bored through by a TBM — something steel cannot accommodate.
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