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Power Plant Cooling Tower Platforms

Non-conductive platforms for maintenance access

FRP grating access platform around cooling tower fans with yellow guardrails at a power plant
Project Overview

Power Plant Cooling Tower Platforms

A power plant's cooling tower decks were corroding under continuous water spray and treatment chemicals. Maintenance crews also needed electrically safe access near live equipment. The plant specified FRP for the replacement.
The Challenge

What We Solved

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Cooling water chemistry corroding steel decks

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Electrical safety for maintenance crews

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Wet/dry cycling degrading timber walkways

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Access above water basins required

Our Solution

How ZeAllgrate Delivered

ZeAllgrate supplied molded grating, structural profiles and handrail systems for cooling tower decks — non-conductive, chemical-resistant and engineered for the thermal cycling environment.

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Non-conductive access certified for live areas

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Zero maintenance in wet thermal service

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30-year design life on cooling tower decks

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Installation in one planned outage

Project Data

Project Parameters

ProductMolded Grating + Profiles + Handrail
ResinChemical-resistant isophthalic
ApplicationCooling tower decks & walkways
ClientPower plant, Jiangsu Province
Year2022
Project Gallery

In the Field

Installation and product imagery from this project type.

FRP grating walkway with blue guardrails over a process basin at a power plant

FRP walkway over power plant basin

FRP grating platform with guardrails beside industrial piping

FRP platform beside industrial piping

FRP grating platform and guardrails at a cooling tower

FRP platform at cooling tower

Project Background

A power plant's cooling tower decks were failing on two fronts. Continuous water spray and treatment chemicals corroded the steel grating within a few years, while the wet/dry cycling degraded timber walkways that had been tried as an alternative. Maintenance crews also needed electrically safe access near live equipment — a requirement steel could not meet without added earthing. With access above water basins needed for inspection and maintenance, the plant required a replacement material that survived chemical treatment, thermal cycling and high humidity without painting and without conductive risk.

Design Parameters

ParameterValue
ProductMolded grating, structural profiles, handrail systems
ResinIsophthalic polyester, FR grade for fire-rating compliance
Service environmentContinuous water spray, treatment chemicals, wet/dry cycling, high humidity
Electrical requirementNon-conductive access certified for live-area work
InstallationReplacement over water basins with staged panel handling
AccessoriesStainless fasteners; thermal movement gaps at supports

Engineering Approach

The cooling tower was specified as three integrated components — grating decks, structural profiles for framing and handrail for fall protection — so the whole access system shared one corrosion and thermal strategy. Isophthalic polyester was selected for the water-treatment chemistry, with an FR grade where fire-rating was required. Non-conductive construction removed the step-and-touch risk around live equipment, and the thermal cycling environment was handled by engineered gaps and stainless fasteners that allow panel movement without stress. Panel layouts were planned so replacement could be staged over the water basins without draining them.

Measured Outcomes

  • Non-conductive access certified for live-area maintenance — electrical safety requirement met without earthing additions.
  • Zero corrosion or coating maintenance in the treatment-water environment; the steel decks required paint cycles every 2–4 years.
  • Wet/dry thermal cycling produced no visible delamination or edge damage in the first inspection cycles.
  • Staged replacement completed over live water basins with no basin downtime.

What Made It Work

The plant got a single-material system that satisfied both failure modes at once — chemical corrosion and electrical hazard. Specifying the thermal behaviour (gaps, fasteners, staged access) at design stage is what keeps a cooling-tower deck maintenance-free for decades rather than for years.

Engineering Notes

Cooling tower platforms combine treated-water chemistry, UV exposure and machinery vibration: vinyl ester is specified where panels sit in the chlorinated water, UV-stabilised resin for the sun-exposed decks, and the span is checked against the load table with the deflection limit applied — fans and pumps impose dynamic loads on the platform, so resonance is checked on long spans. SS316 hardware avoids corrosion in the wet service, and the lightweight panels install without cranes between fills.

What to Specify

  • Vinyl ester for the treated-water side; UV-stabilised for exposure.
  • Span and deflection checked; resonance reviewed near machinery.
  • Grit-top on wet traffic surfaces.
  • SS316 hardware; lightweight install without cranes.
  • Vinyl ester for the treated-water side; UV-stabilised for exposure.
  • Span and deflection checked; resonance reviewed near machinery.
  • Grit-top on wet traffic surfaces.
  • SS316 hardware; lightweight install without cranes.

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