Short answer
Roughly 80 percent of a dairy plant's total energy is spent generating steam and hot water. In systems without a preventive maintenance programme, approximately 20 percent of steam leaving the boiler can be lost through failed traps, and distribution losses waste a further 10 to 20 percent. Metering fuel input, steam output, condensate return ratio and blowdown turns those losses from an assumption into a measured, chaseable number.
The largest energy consumer is usually the least instrumented
A dairy meters electricity because a meter arrives with the supply. Thermal energy gets a fuel bill and a boiler log sheet. Yet around 80 percent of total energy consumption goes to generating steam and hot water for pasteurisation, sterilisation, evaporation, drying and CIP heating.
That imbalance between where the energy goes and where the instrumentation sits explains why most dairy energy programmes plateau. They optimise the visible 20 percent and leave the other 80 percent to a maintenance schedule.
Where the thermal energy actually goes missing
Failed steam traps
A steam trap is meant to pass condensate and hold steam. When it fails open it passes live steam continuously, straight to the condensate system or to atmosphere. It makes no noise anyone notices in a plant room, it raises no alarm, and a large dairy can have hundreds of them.
Approximately 20 percent of steam leaving a boiler plant can be lost to leaking traps in systems without a preventive maintenance programme. Trap surveys catch this, but a survey is a snapshot. A trap that fails the week after the survey costs money for the rest of the year.
Unreturned condensate
Condensate is hot, already treated, already paid for. Every litre not returned to the boiler feed tank has to be replaced with cold make up water that must be softened, chemically treated and heated from ambient.
Blowdown that is not managed
Surface and bottom blowdown typically runs at about 5 percent of total steam production. Blowdown is necessary, but blowdown rates set conservatively and never revisited discharge hot, treated water continuously. Heat recovery from blowdown is well established and rarely instrumented well enough to prove it is working.
Distribution and insulation losses
Distribution losses waste 10 to 20 percent of generated steam in poorly maintained systems, and leaks in steam and condensate systems can contribute as much as 19 percent of overall plant energy consumption in some assessments. Missing insulation on a header or a valve body is a permanent, silent loss.
The four measurements that close the thermal balance
| Measurement | What it reveals |
|---|---|
| Fuel input | Energy purchased, converted to a common unit alongside electricity for a single energy picture |
| Steam flow at the header and per major user | Where thermal energy is actually going, and boiler efficiency as output over input |
| Condensate return flow and temperature | Return ratio, the headline indicator for trap and distribution health |
| Feedwater make up and blowdown | Closes the water side of the loop, and links thermal loss to water cost |
With those four, boiler efficiency and thermal distribution loss become calculated numbers that trend continuously, rather than annual survey findings.
Why the thermal and water balances belong together
A dropping condensate return ratio and a rising boiler make up volume are the same event seen from two sides. In most plants they are also two different departments: energy owns the boiler, utilities owns the water meter, and nobody correlates the two.
In an Aqueduct deployment they sit in one model. The water balance and the thermal balance share the boiler house, so a failed trap shows up as an unexplained rise in make up water and a fall in return ratio at the same moment, which is a far more specific diagnosis than either number alone.
What to do first
- Meter fuel and steam. Without both, boiler efficiency is a nameplate figure rather than a measurement.
- Meter condensate return. Establish the ratio, then treat any sustained fall as a trap survey trigger.
- Meter make up and blowdown. This ties the thermal loop into the plant water balance and reveals losses that neither balance would catch alone.
- Trend by production. Steam per litre of milk processed, per shift, is the number that survives a change in production volume.
How much energy in a dairy plant goes to steam?
Around 80 percent of a dairy plant's total energy consumption goes to process heating, pasteurisation, sterilisation, drying and cleaning, which are almost entirely steam and hot water loads. The remaining roughly 20 percent is electricity across refrigeration, mechanical processes, ventilation and lighting.
How much steam is lost to failed steam traps?
In steam systems without a preventive maintenance programme, approximately 20 percent of the steam leaving the boiler plant can be lost through leaking traps. Distribution losses waste a further 10 to 20 percent in poorly maintained systems, and steam and condensate leaks can account for as much as 19 percent of overall plant energy consumption in some assessments.
Why does condensate recovery matter so much?
Condensate is hot, already treated water. Every litre not recovered is replaced with cold make up that has to be softened, chemically dosed and heated from ambient. The loss is therefore paid three times, in water, in chemicals and in fuel. Condensate return ratio is one of the highest value single metrics in a dairy plant.
Can steam systems be monitored without shutting the plant down?
Largely yes. Clamp on flow measurement, surface temperature sensing, fuel meter integration and reading existing boiler control panels over Modbus or OPC UA can all be done while running. Inline steam flow meters that require a line break are scheduled into a planned shutdown.



