208V to 222V Buck-Boost Transformer
Equipment nameplated 220V turns up constantly on imported machinery, older US-built gear and packaged systems designed around a 220 to 230 volt band. Choose the system phase and equipment nameplate amps below to see an available, buyable unit.
Load current (amps)
Quick answer
- Measured input
- 208V
- Required output
- 222V
- Correction
- Boost (raise voltage) · 6.7%
- Size from
- System phase and equipment nameplate amps
Technical details
208V to 222V technical overview
Equipment nameplated 220V turns up constantly on imported machinery, older US-built gear and packaged systems designed around a 220 to 230 volt band. On a 208V service that equipment runs about 5.5 percent low, which looks acceptable on paper but leaves nothing in reserve when the building sags under afternoon load. A 208V to 222V buck-boost transformer applies a deliberately modest 6.7 percent boost, landing just above 220V without pushing 220V-rated coils, timers and power supplies toward their upper limits. Both phase configurations are offered, and the selection is made by circuit amperage.
Where 208V to 222V correction is used
The 220V nameplate is a legacy of both older American practice and of equipment designed for markets where 220V and 230V are the standard. It arrives in US buildings by import, by purchase of used machinery, and by specification of packaged systems engineered somewhere else.
- Commercial laundry: washer-extractors, tumble dryers and flatwork ironers in hotels, care facilities and route laundries.
- Imported woodworking, CNC, plastics and packaging machinery whose control transformers and starters are configured for 220V.
- Laboratory and medical equipment including autoclaves, centrifuges, incubators and sterilizers.
- Bakery and food processing equipment: proofers, dough sheeters, slicers and small deck ovens.
- Older shop machinery kept in service long past the era when 220V was the common way to describe a two-pole circuit.
The recurring situation is a machine that arrives with a European or Asian data plate, gets connected to whatever the shop has available, and then throws intermittent faults that the supplier blames on the installation while the installer blames the machine. A meter at the disconnect usually settles it.
Why this 208V to 222V voltage pair matters
The argument for 222V is restraint. Overvoltage does its own kind of damage: contactor and relay coils run hotter, core losses in motors and control transformers rise, electronic power supplies and drives lose service life, and equipment rated 220V sits roughly 9 percent over if it is boosted all the way to 240V. Landing at 222V keeps a 220V rating within about 1 percent while still clearing the load out of the undervoltage region.
The second reason is that a buck-boost transformer is a fixed-ratio device with no regulation. Whatever the supply does, the output follows in proportion. A 208V service that floats up to 214V at 2 a.m. produces about 228V through a 208 to 222 configuration, which remains comfortable for both 220V and 230V equipment. That same 214V through a 208 to 240 configuration produces about 247V, which some 220V-rated components will not tolerate for long.
Installation notes
Sizing guidance
Take two voltage readings before selecting anything: one with the building at full working load and one at its quietest. Those two readings define the range the transformer will multiply, and the high end is what tells you whether a small correction such as 208 to 222 is the right choice rather than a larger one.
Then select amperage from the load. Use the nameplate full-load current of the machine, or the sum of currents if a subpanel is being fed, and choose from the 10, 15, 20, 30, 40, 50 and 60 amp ratings at or above that figure. Imported machines often list current at their native voltage, so recalculate at the corrected voltage where the difference is significant.
Phase follows the machine. Three-phase equipment on a 208Y/120 service takes the three-phase configuration, and two-pole single-phase equipment takes the single-phase configuration. The transformer processes only the 14-volt difference, so its rating is a fraction of the load it supports.
Installation notes
Verify the input voltage with a meter at the point of connection rather than trusting the panel schedule, then repeat the check once the transformer is energized so the delivered voltage is documented against the equipment nameplate.
The unit is an autotransformer, not an isolating device. Input and output share a common winding, the supply grounding reference carries through to the load, and there is no galvanic separation between them. Where a machine's manual calls for an isolation transformer for noise or grounding reasons, a buck-boost transformer does not satisfy that requirement.
Three-phase installations are connected open-delta using two coils, which corrects the three phase-to-phase voltages without creating a neutral. A machine needing both 220V power and a separate neutral-referenced supply still takes its low-voltage circuit from the original panel. Size conductors and overcurrent protection per the branch-circuit rules and NEC Article 450, and have the connection verified by a licensed electrician.
Common questions
- What is the difference between 220V, 230V and 240V equipment?
They are largely different labels applied in different eras and different markets to equipment intended for the same nominal system. In practice a 220V nameplate is common on imported and older machinery, 230V on North American motors, and 240V on newer North American appliances and HVAC equipment. What matters for voltage correction is the tolerance band around the nameplate figure, typically plus or minus 10 percent for motors under NEMA MG-1.
- Is 222V high enough for equipment nameplated 230V?
Yes for most equipment. 222V is about 3.5 percent below 230V, well inside the plus or minus 10 percent range NEMA MG-1 allows for motors. It is a sensible choice for a mixed panel holding both 220V and 230V loads, because it keeps the 220V items near nominal while pulling the 230V items up out of the undervoltage region.
- Does a buck-boost transformer change 50 Hz equipment to 60 Hz?
No. A buck-boost transformer changes voltage only. Frequency passes through unchanged, so a machine designed for 50 Hz connected through one on a 60 Hz supply still receives 60 Hz. Motors run about 20 percent faster on 60 Hz than on 50 Hz, which requires a review of drive ratios, cooling and connected load. Changing frequency requires a frequency converter, not a transformer.
- Can a 208V to 222V buck-boost transformer be fed from two legs of a 208Y/120 panel?
Yes. A single-phase buck-boost transformer is normally supplied from two ungrounded legs of a 208Y/120 panel, which measure 208V between them, and it delivers a corrected 222V two-wire circuit. The panel neutral is not part of that circuit and no neutral appears on the output, so any 120V loads remain on the original panel.