Step Down 236V to 208V with a Buck-Boost Transformer
A 236V to 208V buck-boost transformer drops a measured 236V supply by about 12% so that 208V-rated equipment sees voltage inside its designed window. Choose the system phase and equipment nameplate amps below to see an available, buyable unit.
Load current (amps)
Quick answer
- Measured input
- 236V
- Required output
- 208V
- Correction
- Buck (lower voltage) · 11.9%
- Size from
- System phase and equipment nameplate amps
Technical details
236V to 208V technical overview
A 236V to 208V buck-boost transformer drops a measured 236V supply by about 12% so that 208V-rated equipment sees voltage inside its designed window. The 236 figure comes off a meter, not off a panel schedule. Services labeled 240V rarely sit at exactly 240, and 234V to 238V is an ordinary reading on a short, lightly loaded service. Choosing the correction from what you measured rather than from the nominal number is what puts the corrected output near the middle of the 208V band instead of at its edge.
Where 236V to 208V correction is used
Most 236V to 208V jobs start as a service call or a tenant fit-out where someone metered before ordering. The building is nominally 240V, the equipment is nominally 208V, and the actual reading lands at 236V.
Typical loads on the 208V side of that correction include rooftop and split-system HVAC, refrigeration condensing units and display cases, commercial laundry equipment, bakery mixers and ovens, elevator and lift controllers, small CNC and shop machinery, dental and veterinary equipment, and rack PDUs or UPS inputs specified for 208V.
The settings repeat as well: property management and tenant improvement contractors working with whatever service a space already has, food service operators moving equipment between locations, and small manufacturers who bought a machine specified for a 208Y/120 shop and installed it in a building fed at 240V single phase. In each case the equipment is correct for its own nameplate and the supply is correct for the utility. Only the pairing is wrong, which makes it a wiring problem rather than an equipment problem.
Why this 236V to 208V voltage pair matters
The two voltage bands do not overlap, and that is the core of it. ANSI C84.1 puts Range A service voltage for a 240V system between 228V and 252V, and Range A utilization voltage for a 208V system between 191V and 218V. A supply sitting at 236V is behaving normally and is still 18V above the highest voltage 208V equipment is defined to operate at. Waiting for the utility to change something will not close that gap.
Left alone, the effects accumulate quietly. Compressor and fan motors run hotter and less efficiently at the top of their tolerance. Contactor coils, timers and control transformers age faster. Electronic control boards sit permanently near the ceiling of their input rating, and 208V heating elements draw about 29% more power than rated, because element power tracks the square of the applied voltage.
Installation notes
Sizing guidance
Measure before you select, and measure in the right place. Take the reading at the terminals where the load connects, with the equipment running, not at the main panel on a quiet morning. Note the highest and lowest values across a working day, because service voltage moves as the building and the surrounding neighborhood load up.
- Confirm whether the supply feeding the load is single phase or three phase, and pick that configuration.
- Pull the current figure from the equipment nameplate, using full-load amps for a motor and minimum circuit ampacity for a packaged unit.
- Total the current of every load that will sit downstream of the correction.
- Select the next amperage step above that total rather than the nearest one.
A buck-boost handles only the difference between 236V and 208V, so the transformer rating is a small fraction of the load it serves. Sizing is driven by current and by the depth of the correction, not by the horsepower of the machine.
Installation notes
- No isolation. The unit is an insulating transformer reconnected as an autotransformer, so the 208V output stays electrically connected to the 236V input. Jobs that call for a separately derived system need a true isolation transformer instead.
- No neutral. The correction changes line-to-line voltage only. A three-wire supply stays three-wire, and no 120V circuits can be taken from the corrected side.
- Three-phase corrections are normally made in an open-delta arrangement, which shifts the line voltages without producing a fourth wire.
- Protect the transformer under NEC Article 450 and size conductors from the ampacity tables, keeping branch-circuit drop near the 3% the NEC 210.19(A) informational notes suggest and total drop near 5%.
- Re-measure after energizing, under load. If the corrected reading is not where you expected it, the input was not what you assumed.
Common questions
- My panel is labeled 240V but I measured 236V. Which number should I use to select a buck-boost transformer?
Use the measured value. A buck-boost transformer is a fixed-ratio device, so the output depends entirely on the voltage actually present at the input. Selecting from a 236V measurement rather than a 240V label puts the corrected output closer to the middle of the 208V operating band, which leaves room for the normal daily swing in service voltage.
- Does a 236V to 208V buck-boost transformer regulate voltage?
No. A buck-boost transformer is not a voltage regulator. It applies a fixed correction ratio, so the output rises and falls with the input. If the supply climbs by 5V, the corrected output climbs by roughly the same proportion. Loads that need a held output regardless of what the supply does require a regulator or a UPS, not a buck-boost transformer.
- Will a buck-boost transformer fix voltage that sags when a motor starts?
No. Voltage sag during starting is caused by impedance in the conductors and the source, and a buck-boost transformer does not reduce that impedance. Sag is addressed by increasing conductor size, shortening the run, or lowering starting current with a soft starter. The NEC 210.19(A) informational notes recommend keeping branch-circuit voltage drop near 3% and total drop near 5%, which is the relevant target.
- Can one 236V to 208V transformer feed several pieces of 208V equipment?
Yes, provided it is selected for the total current of everything downstream and the circuit is protected accordingly. Add the full-load amps or minimum circuit ampacity of each load, choose the next amperage step above that sum, and account for the inrush of the largest motor starting while the remaining loads are already running.