All you need to know about the natural passivation layerin galvanized cooling towers

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04 August 2026

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Natural Passivation & PZHC Formation

Natural passivation of Galvanized Steel produces Penta-Zinc Hydroxycarbonate (PZHC), a thermodynamically stable compound that forms spontaneously in mildly alkaline, aerated water without chemical additives.

Its formation is highly sensitive to water chemistry and system operating conditions, and naturally ceases once a coherent protective layer is established.

Critical Formation Phase

The formation and stability of the PZHC layer depend critically on a narrow envelope of water quality parameters during the initial exposure period (typically the first 4 to 12 weeks).

Depending on the parameter, manufacturer recommendations may vary. The values presented here reflect a combination of OEM guidance, laboratory research, and field observations.

Any passivation strategy must be adapted to the equipment and the specific operating conditions.

Water Quality Parameters

ParameterRecommended range
pH7.4 – 8.5
Conductivity250 – 2’400 µS/cm
M-Alkalinity100 – 500 ppm (CaCO₃)
Total Hardness (TH)> 50 ppm (Ca²⁺ / Mg²⁺)
Dissolved OxygenSaturated (> 6 ppm at 20 °C)
Temperature< 60 °C (140 °F)
Chlorides / Sulfates< 250 ppm

These parameters must be monitored and maintained in real time during the passivation phase.

Any deviation, such as high pH from caustic leaks or insufficient buffering from low alkalinity, can result in non-adherent Zn(OH)₂ or amorphous carbonates, both precursors to white rust.

A blend of co-passivating agents can be used during the passivation of galvanized cooling towers. It is compatible with natural passivation and enhances penta-zinc hydroxycarbonate (PZHC) structural development

Strictly Avoid During Passivation

To ensure the PZHC layer forms slowly and uniformly, the following must be strictly avoided :

CategoryCritical factors to avoidImpact on passivation
Chemicals and additives• Oxidizing biocides (e.g., chlorine, bromine, FRC > 0.5 ppm)
• Corrosion inhibitors: phosphonates, phosphates, orthophosphates
• Molybdates
• Polymers with corrosion inhibition properties 
Disrupts electrochemical equilibrium, promotes porous oxide films or alters natural layer structure
Hydraulic and operational design• Presence of copper upstream or in recirculation loop
• No pre-commissioning passivation protocol 
Promotes galvanic corrosion and accelerates zinc loss 
Water system conditions• Water stagnation
• Deposits, especially at the bottom of the basin 
Localized corrosion cells and heterogeneous layer formation 
Construction practices• Exposing the CT system to weather before commissioning (e.g., rain ingress, UV, airborne dust)Surface contamination and premature corrosion before controlled passivation 
Material integrity• Poor or non-standard galvanized steel quality (e.g., insufficient zinc layer thickness)Limits the base material’s ability to form protective oxides 
Thermal conditions• Temperatures > 60 °C (140 °F) during startup Accelerates Zn²⁺ release → uncontrolled precipitation 
Water chemistry instabilityCf. Table above Either prevents layer formation or induces non-coherent precipitates

Note: The PZHC layer must not form too quickly to be protective, nor too slowly. The use of effective corrosion inhibitors during the layer formation phase should therefore be avoided.

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