A PET blow molding machine project rarely fails because of the machine. It fails because of the building around it. The order is signed, the machine enters a 30–45 day build slot, and only then does somebody ask the electrical contractor for the connected load, the compressor supplier for the air demand and the chiller vendor for the cooling capacity. Three answers come back, they do not agree with each other, and the installation date starts moving.
The damage is not the paperwork. Utility work sits on the critical path. A transformer upgrade can add months to a project that had a 30–45 day machine lead time. An undersized compressor shows up as blowing pressure that will not hold, and that shows up again as inconsistent bottle wall thickness on the first shift. A chiller running at its limit shows up as cycle time that refuses to come down in summer. Every one of those problems costs less to fix on paper than on the factory floor.
Sailwin has delivered 500+ machines to 60+ countries over 15+ years, manufacturing under ISO 9001:2015 with CE marking and running every unit through a full-load FAT before shipment. This guide sets out the utility sizing framework our engineers use during pre-sales review: which parameters you can design against from day one, which numbers are site-specific and must come from your own load study, and the order in which to freeze them.
Key Takeaways
- Design against three published parameters, not against a brochure: blowing pressure 25–40 bar, preform heating 90–115°C with PID control holding ±1°C, and chilled water at 8–12°C. If a supplier will not state these, no utility plan can be built.
- Two machine features change your utility bill before you buy anything else: a servo drive that reduces power consumption by up to 30%, and high-pressure exhaust recovery that cuts compressor load by roughly 20%. Size the compressor for the recovered figure, not the gross blow demand.
- Utilities must be finished before the machine lands: 30–45 day standard build, 45–60 days for custom configurations, and only 3–7 days of on-site installation and commissioning. There is no window in that schedule for a compressor upgrade.
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1. Why PET Blow Molding Machine Power Consumption Is Not the Number on the Quote
Every quotation states a connected load, and almost every buyer treats it as a running cost. It is not. Connected load is a cable and switchgear sizing figure — the sum of every motor, heater band and valve at nameplate rating. The number that reaches your electricity bill is average demand across the shift, decided by three things: heating efficiency, drive configuration, and how much of the shift the machine actually spends producing.
| Figure | What it actually describes | Who needs it |
|---|---|---|
| Connected load | All installed loads summed at nameplate rating | Transformer, cable and switchgear sizing |
| Peak running demand | Maximum simultaneous draw during heating and blow | Generator sizing and demand tariffs |
| Average demand per production hour | Real consumption on a running line | Energy cost forecasting |
| Consumption per 1,000 bottles | Average demand divided by good output — the only figure that lets you compare two machines on economics | Procurement scoring competing offers |
Sailwin machines make the fourth figure measurable from commissioning onward, because the PLC monitors 40+ parameters in real time — cycle time, heating zone behaviour and pressure trends become visible rather than assumed. On a servo-driven platform the drive reduces power consumption by up to 30%, since the pump supplies flow only when the cycle asks for it. Preform heating runs 90–115°C with PID control holding ±1°C, and less overshoot means fewer heater hours spent producing heat the preform never needed.
Connected load is a cable number. Consumption per 1,000 good bottles is the cost number — ask for both, and be explicit about which one you are comparing.
2. Sizing by Machine Class: What Changes Between 2 and 8 Cavities
Utility demand is not proportional to cavity count alone. Two variables move it: how many blowing stations fire, and how much air each container displaces. A 4-cavity machine running 1,800 ml containers can demand more air per cycle than a 6-cavity machine running 800 ml, even though the second produces more bottles per hour — the most common assumption error in utility planning.
| Model | Cavities and rated output | Container size | What changes in the utility plan |
|---|---|---|---|
| SW-F2-650 | 2 cavities, 2,800 BPH | up to 650 ml | Smallest automatic class; a single high-pressure circuit is normally adequate |
| SW-F4-650 | 4 cavities, 5,500 BPH | up to 600 ml | Air demand scales with cavity count; exhaust recovery begins to justify itself |
| SW-F4-2000 | 4 cavities, 4,500 BPH | up to 1,800 ml | Larger containers mean more air per cycle at the same cavity count |
| SW-F6-2000 | 6 cavities, 7,500 BPH | up to 1,800 ml | Receiver volume and dryer capacity must cover peak simultaneous blow |
| SW-F6H-800 | 6 cavities, 12,000 BPH | up to 800 ml | High-speed class; chilled water capacity and take-away conveyor must keep pace |
| SW-F8H-800 | 8 cavities, 16,000 BPH | up to 800 ml | Highest air and cooling demand in the range; plan recovery and chiller redundancy at design stage |
Below the automatic range, the semi-automatic models change the picture. SW-2000-2 (1,000 BPH up to 2 L), SW-1500-4 (2,000 BPH up to 1.5 L) and SW-880-6L (1,000 BPH up to 6 L) still need high-pressure air and chilled water, but the recovery argument weakens because the duty cycle is intermittent. SW-5G (100–200 BPH up to 25 L) and SW-10L-2 (1,200 BPH up to 10 L) are usually installed where the building supply already exists — start that survey from what the site can deliver.
3. Compressed Air and Blowing Pressure: The Highest-Risk Stream
Blowing pressure on a PET stretch blow molding machine runs 25–40 bar, so the supply must be built around a dedicated high-pressure compressor rated 30–40 bar. A separate low-pressure ring main at 8–10 bar carries ancillary functions. Mixing the two on one header is the most common installation error we see: every ancillary function that opens while a blow is firing produces a pressure dip exactly when the blow needs stability, and the result is a wall thickness band no recipe can fix.
- Confirm the working range, not the maximum. Design against the 25–40 bar band your containers actually need, and record which pressure each bottle variant uses.
- Size the receiver for peak simultaneous blow. Cavity count multiplied by blow volume, not by average demand, is what the receiver has to absorb.
- Specify the dryer explicitly. Condensate carried into a blowing circuit reaches the mould and the container surface; dew point is a line-quality decision, not an accessory.
- Plan the recovery loop with the machine. High-pressure exhaust recovery reduces compressor load by roughly 20%, but only if the return piping and control logic are part of the original scope.
Exhaust recovery is the single change that most alters the compressor calculation: reducing compressor load by roughly 20% changes the size of the machine you buy and the running cost for the life of the line. It is also the item most often deferred as a later upgrade — and later upgrades rarely happen once the compressor is installed and the pipework is buried.
4. Chilled Water, Temperature Control and Mould Cooling
PET moulds are designed to run with chilled water at 8–12°C. That band matters for two reasons: below it you start condensing moisture on cavity surfaces and pick up surface defects, above it cycle time extends because the bottle is not setting fast enough to release cleanly. Sizing the chiller from the machine’s rated output rather than from the mould circuit count is the mistake that shows up two months after start-up, when the line runs fine in winter and loses output in summer.
- Count the circuits, then count them again. Cavity and base cooling are separate circuits on a well-designed tool; each one needs verified flow at commissioning, not an assumed total.
- Filtration protects the mould, not the chiller. Fine debris blocks the small passages in a base insert first, and a blocked base insert produces an out-of-spec base long before it produces a visible alarm.
- Pair cooling stability with heating stability. Preform heating at 90–115°C under PID control holding ±1°C gives you a repeatable thermal profile; the cooling side must be equally repeatable or the profile is wasted.
One further consequence: mould change takes under 30 minutes on a Sailwin machine. Mould storage therefore belongs inside the production area and cooling connections should be quick-disconnect, or a 30-minute change becomes a two-hour one.
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5. Case Study: Utility Planning for a 4-Cavity Water Bottle Line
A beverage producer building a new 500 ml still-water line specified a 4-cavity automatic machine rated 5,500 BPH. The utility survey was completed before the machine order was released, which is the only reason the schedule held.
- New production hall, empty site, no existing compressed air or chilled water infrastructure
- Compressor and chiller procured from separate vendors, each sizing from the machine nameplate
- Target output 5,500 BPH on 500 ml containers, with a summer ambient that historically penalised cooling
- Utility schedule issued with the machine: blowing pressure band, heating window, chilled water at 8–12°C, separate 30–40 bar and 8–10 bar air mains
- High-pressure exhaust recovery included in the original scope so the compressor was selected on the recovered load
- Commissioning compressed into the standard 3–7 day installation window, with a spare parts kit on site and 7×24 remote support on standby
- Utility scope frozen before shipment — no compressor or chiller upgrade after the machine landed
- Installation fitted the standard window — machine ran its first production shift inside the planned 3–7 day commissioning period
- Recovery loop commissioned with the line, so compressor load and machine parameters could be benchmarked from week one
Scenario based on a Sailwin customer project; site-specific figures available on request during engineering review.
Frequently Asked Questions
Get the Utility Schedule With Your Machine Proposal
Send your bottle drawing, container sample or target output. Our engineering team replies with a machine recommendation, mould assessment and factory-direct quotation within 24 hours.
Related Reading:
• PET Blow Molding Machine — full range from 2 to 8 cavities
• Automatic PET Blow Molding Machines: SW-F series overview
• PET Blow Mould Cost Breakdown: what you are actually paying for
• How Much Does a PET Blow Molding Machine Cost?
• 4 Cavity vs 6 Cavity: output, cost and utility differences
• PET Blow Molding Machine Buying Guide




