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When a tap runs blue, the copper is telling you something. Water that arrives clear and leaves a customer's tap with a pale blue or blue-green tint almost always means copper is being dissolved into the water somewhere upstream — fast enough to stain porcelain, tiles and laundry, and often fast enough to mean a wall of the installation is thinning from the inside.
Two mechanisms sit behind most blue-water complaints. The first is uniform corrosion, where a thin, even layer of copper oxide dissolves steadily under mildly aggressive water; it is cosmetic and slow. The second, and the commercially damaging one, is pitting corrosion — localised, deep, and the usual cause of premature leaks in copper tube that is still legally "young". Distinguishing the two is the first job of any investigation, because the remedies diverge sharply.
Copper protects itself with a thin, self-repairing oxide film. Anything that prevents that film forming — or repeatedly strips it — opens the door to pitting.
Aggressive water typically shows a combination of low pH (below roughly 7.0), high dissolved oxygen, elevated free chlorine residual, high carbon dioxide, and low alkalinity or low total dissolved solids. Soft, slightly acidic supplies from certain boreholes and surface catchments are the classic offenders. The chloride-to-sulphate balance also matters: sulphates are notably aggressive towards copper, and chlorine chemistry, temperature and stagnation drive the worst cases.
Stagnation is the multiplier. Dead legs, rarely used final circuits, and long unoccupied periods in hotels, care homes and student accommodation leave water sitting in contact with copper for days at a time. Add temperatures in the 25–45 °C window and the chemistry runs faster still.
Pitting rarely starts in the middle of a clean, well-installed run. It starts where something disturbs the surface film or concentrates an aggressive species — and that is usually at or near a fitting.
Flux residues are the most common culprit at joints. Soldering fluxes are corrosive by design; if they are not fully neutralised and flushed out after soldering, a bead of residue sitting in the waterway becomes a local corrosion cell. The remedy is unglamorous but effective: use the correct flux for the alloy, apply it sparingly, and flush to the requirements of BS EN 806-4 before the system is commissioned.
Carbon films from over-heating during soldering are a second, overlooked trigger. Burned flux and oil on the tube bore leave a carbon deposit that can support pitting, especially in recirculating hot water. Controlled, uniform heating and prompt post-solder flushing remove most of that risk.
Fittings themselves introduce dissimilar materials. Brass valves, elbows and couplers sit alongside copper tube, so the alloy has to resist its own corrosion. Where brass is used, the critical property is resistance to dezincification — selective loss of zinc that leaves a porous, weak copper sponge behind. ISO 6509 defines the dezincification-resistance test method, and the alloy requirements referenced in EN 1057 Annex B describe the class of brass that performs reliably in potable water. A fitting that is cheap because its alloy is not dezincification-resistant is a false economy: it corrodes, sheds zinc into the water, and can fail at the thread or through the wall.
Recirculating hot water systems deserve special attention. Circulation keeps water moving, which is good for stagnation, but it also holds warm, oxygenated water in constant contact with copper and brass and spreads any corrosion product around the entire loop. Balancing valves, isolation valves and pump connections on a recirculation ring are therefore among the most corrosion-exposed components in a building, and they warrant dezincification-resistant alloys and generous internal bores. A modest reduction in loop temperature, combined with correct balancing, also slows the chemistry that drives pitting.
Before replacing anything, gather evidence in the right order:
The durable fix is usually a combination, not a single silver bullet. Size the system to keep velocities moderate — excessive velocity strips protective films, and that is a subject in its own right. Choose dezincification-resistant brass for fittings and valves, and confirm the alloy rather than assuming it. Insist on controlled soldering and documented flushing. Eliminate dead legs and stagnant branches during design, not after handover. Where supply water is genuinely aggressive, treat it — pH correction, dealkalisation or proportional dosing — before blaming the tube.
For importers and MEP specifiers, the deeper lesson is to treat fittings and valves as part of the corrosion system rather than as neutral hardware. A copper run is only as good as the weakest alloy in it, and the point where a fitting meets aggressive water is exactly where the water will find a way in.
Zhejiang Xindong Sanitary Ware Co., Ltd. designs and manufactures brass and stainless steel taps, valves and fittings from its base in Yuhuan, Zhejiang, China. The company holds more than 65 patents covering tap and valve design and structure, operates in-house design and testing laboratories, and supplies importers, MEP specifiers and OEM partners across Europe, the Middle East and Asia. For valve and fitting selection support or OEM enquiries, contact [email protected] or visit https://www.cn-xindong.com.
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