Epoxy Coated Rebar: Proven Corrosion Protection for Concrete Structures

More than 50 years in service.
More than 80,000 bridges.
One coating standing between chloride and steel.

Close-up of epoxy coated rebar showing an intact green fusion-bonded epoxy coating conforming to the deformations of the bar

In Southern Exposure testing by the University of Kansas for the Kansas DOT and FHWA, epoxy-coated bar in good coating condition did not initiate corrosion until the chloride content at the bar reached 7.28 lb/yd³ of concrete (water-soluble), versus 1.58 lb/yd³ for uncoated bar — roughly 4.6 times the chloride load before corrosion initiates.

Evaluation of Multiple Corrosion Protection Systems for Reinforced Concrete Bridge Decks (published as SM Report No. 100 by the University of Kansas Center for Research, Inc.)
Authors: Matthew O’Reilly, David Darwin, JoAnn Browning, and Carl E. Locke, Jr.
(The report is based directly on the Ph.D. thesis of Matthew O’Reilly)
Sponsoring Agencies: Major funding for the research was provided by the Kansas Department of Transportation (KDOT) and the Federal Highway Administration (FHWA)
Green is the most common color, which is why the product is often called green rebar. The color comes from pigment in the epoxy powder and has nothing to do with how the coating protects the steel. A smooth green coating (ASTM A775) signifies a flexible coating designed for fabrication after being coated. Smooth purple and gray colors (ASTM A934) designate less flexible coatings designed for application after fabrication. All colors meet the same protective requirements.

Why is epoxy coated rebar green?

How Epoxy Coated Rebar Is Made

The fusion-bonded epoxy coating process runs in four steps, and every step is governed by specification.

  1. Surface preparation. Bars are abrasive blast-cleaned to a near-white metal finish (SSPC-SP10 / Nace no. 2), stripping mill scale, rust, and salt and leaving an anchor profile of 1.5 to 4.0 mils for the coating to grip.
  2. Heating. Bars are heated to approximately 450°F, usually by electrical induction.
  3. Powder application. The hot bar passes through a spray booth where electrostatically charged epoxy powder is applied. On contact the powder melts, flows into the anchor profile, and conforms to the ribs and deformations of the bar.
  4. Cure. The film hardens in roughly 30 seconds, forming a single continuous fusion-bonded coating.

Why Specifiers Choose Epoxy Coated Rebar

CORROSION PROTECTION

SERVICE LIFE

LIFE-CYCLE COST

SUSTAINABLE

CERTIFIED QUALITY

PROVEN AT SCALE

Where Epoxy Coated Rebar is Used

Epoxy coated rebar is specified anywhere reinforced concrete meets chloride — from deicing salt, from seawater, or from both. EIG documents applications for epoxy coated rebar across six structure types.

  • Bridges and bridge decks. The largest single application, and the one with the deepest performance record. Decks take the heaviest deicing salt loads of any structure type.
  • Parking structures. At least $100 million is spent every year repairing parking decks in the United States, most of it traceable to winter deicing salt carried in on vehicles.4
  • Marine structures. Piers, wharves, seawalls, and causeways in permanent chloride exposure.
  • Pavements. Continuously reinforced concrete pavement, and dowel bars in jointed pavement. As of a 2005 survey, 26 of 33 transportation agencies were using epoxy coated dowels.
  • Buildings. Below-grade parking levels, plaza slabs, and exposed balconies — an application that began in the 1980s and now covers tens of thousands of structures.
  • Concrete repair. Coated bars in a patch reduce the ring anode effect that otherwise drives new corrosion at the edges of the repair.

The scale of individual projects tells the same story. The San Francisco–Oakland Bay Skyway Bridge used 30,000 tons of epoxy coated reinforcing steel against a 150-year design life, with every bar below 23 feet above sea level coated. The Indian River Inlet Bridge in Delaware used 3,000 tons on a 100-year minimum service life. The Biloxi Bay Bridge, rebuilt after Hurricane Katrina, used 11,000 tons. Browse more Project Examples across bridges, buildings, parking structures, and marine work.

Specifications and Standards

Epoxy coated bars are specified through ASTM and AASHTO standards, with design carried out under ACI 318. Bars should be purchased from CRSI-certified coating plants.

Standard Scope
ASTM A775/A775M Epoxy-coated steel reinforcing bars — coating applied to straight bars, which are then fabricated. Covers coating application only.
ASTM A934/A934M Epoxy-coated prefabricated steel reinforcing bars — bars bent to shape before coating.
ASTM D3963/D3963M Fabrication and jobsite handling, including repair material qualification, storage, and damage limits.
ASTM A884/A884M Epoxy-coated steel wire and welded wire reinforcement.
AASHTO M284/M284M Coating application, fabrication, and field handling in one specification.
ACI 318 Structural design, including development and splice length provisions for coated bars.
ANSI/CRSI CG1.3 Basis of the CRSI Epoxy Coating Plant Certification Program.

Two limits are worth knowing before bars reach the jobsite. Coating damage must not exceed 2 percent of bar area in any one-foot section, excluding cut ends, and patching material must not cover more than 5 percent of surface area in any one-foot section. All damage — cut ends, cracks, abrasions — is repaired with a two-part epoxy approved by the coating manufacturer. Spray-can materials cannot meet the standards and should not be used.

EIG publishes step-by-step guidance on the fabrication of epoxy coated rebar and on field handling of epoxy coated rebar, along with jobsite inspection guidelines covering acceptance and rejection criteria.

Frequently Asked Questions

How long does epoxy coated rebar last?

Epoxy coated bars are routinely specified for a 75-year design life and often for 100 years, given appropriate concrete cover, mix design, and construction quality.. A 2010 Michigan DOT study of 1,790 bridge decks estimated roughly 70 years to reach poor condition with epoxy coated rebar, against about 35 years with uncoated bar.

ASTM A775/A775M covers bars that are coated in a straight condition and then bent. ASTM A934/A934M covers bars that are bent to shape before coating. Both require the same testing for thickness, continuity, flexibility, and adhesion.

Epoxy coated bars generally cost 25 to 50 percent more than uncoated bars as a material, but rebar is a small fraction of a structure’s cost — on three bridges studied in 1998, the increase was between 0.49 and 2.16 percent of total structure cost. Over a 75-year life, the University of Kansas found epoxy coated decks cost $237/yd² against $444/yd² for uncoated.

In the field studies complied in EIG literature review, epoxy coated reinforcing steel has out performed galvanized in bridge deck service. Among Pennsylvania decks built between 1973 and 1983, 8.9 percent of epoxy coated decks rated below 5, versus 22.5 percent of galvanized. Adoption reflects that record: based on the 2011 Nation Bridge Inventory, more than 74,000 bridge decks use epoxy coated reinforcing steel against roughly 1,000 using galvanized. EIG’s literature review compares epoxy coated vs. galvanized reinforcing steel study by study.

Yes. Epoxy coated bars protect even in cracked concrete. Because the coating is dielectric, coated bars are poor cathodes, which limits the corrosion cell that a crack would otherwise establish.

The coating reduces bond somewhat, so ACI 318 applies a development-length multiplier to smooth coated bars — a known, codified factor that designers account for. ASTM A1124 textured epoxy coating was developed to close this gap. ASTM A1124 testing requirements require textured epoxy deliver bond performance equivalent to uncoated reinforcement.

Store bundles on timber cribbing to minimize sagging, keep coated and uncoated bars separate, and cover with an opaque material that minimizes condensation. ASTM
D3963 requires protective covering where cumulative exposure before concrete placement will exceed two months.

Yes, following AWS D1.4/D1.4M. With Coating removed from the weld zone and adjacent area before welding and properly repaired afterward. ASTM A706 bars are designed for welding without preheating; preheat for both grades is determined by carbon equivalent and bar size under AWS D1.4 and can reach 500°F. Coating damaged by welding is repaired with patch material meeting the requirements of ASTM A775 and applied per ASTM D3963

Epoxy coated bars are made using over 97 percent recycled material, primarily post-consumer, produce no VOCs during manufacture or use, and are recyclable at end of life. Recycled content and regional sourcing both contribute to LEED materials credits.

More questions are answered in EIG’s full epoxy coated rebar FAQs, covering specification, fabrication, field practice, and comparisons with other corrosion-resistant reinforcing systems.

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The Epoxy Interest Group is a not-for-profit group within CRSI serving the United States, Canada, and Mexico. Our resource library holds decades of research, field studies, and project case histories on epoxy coated reinforcing steel — including newer developments such as ASTM A1124 textured epoxy coated rebar, which delivers the bond performance of uncoated bar alongside A775 corrosion protection.