248V to 230V Buck-Boost Transformer
Two tolerance figures apply to a 230V load and they do not agree. Choose the system phase and equipment nameplate amps below to see an available, buyable unit.
Load current (amps)
Quick answer
- Measured input
- 248V
- Required output
- 230V
- Correction
- Buck (lower voltage) · 7.3%
- Size from
- System phase and equipment nameplate amps
Technical details
248V to 230V technical overview
Two tolerance figures apply to a 230V load and they do not agree. NEMA MG-1 allows a general-purpose motor to run at plus or minus 10% of nameplate, which tolerates 248V without objection. A great deal of packaged machinery instead specifies plus or minus 5%, and that window closes at about 241V. A 248V to 230V buck-boost transformer exists for the second case: equipment with a narrow input specification sitting on a service that is entirely legal and still too high for it. The unit trims 18 volts, roughly 7% of the incoming supply.
Where 248V to 230V correction is used
Machinery with a narrow supply window is where this correction earns its place. Imported CNC machine tools, packaging and filling lines, printing and converting equipment, injection molding auxiliaries, textile and woodworking machinery and automated test benches are commonly built to a 230V nominal supply with a stated tolerance far tighter than the plus or minus 10% a domestic motor enjoys.
The same applies to electronics-heavy equipment that happens to be 230V rated: laboratory instruments, imaging and diagnostic support equipment, laser systems, environmental chambers and rack-mounted power distribution in equipment rooms. These loads are dominated by switching power supplies and drive input sections rather than by induction motors, and their tolerance is defined by capacitor and semiconductor ratings rather than by winding insulation.
Buyers usually arrive at this pair after a specific event: a machine commissioned into a plant where it reports supply faults it never reported at the vendor's site, an intermittent drive overvoltage trip nobody can reproduce, or a manufacturer's technical support call that begins by asking what the measured supply voltage is.
Why this 248V to 230V voltage pair matters
The correction is worth making because the tolerance that governs the equipment is the manufacturer's, not the motor standard's. At 248V a 230V-rated machine sits about 8% above nameplate. That is comfortable for a general-purpose motor and outside the stated range of a great deal of packaged equipment.
What fails is rarely dramatic. Drive and inverter input sections see a DC bus voltage that tracks the incoming line, so a supply near the top of the range leaves less room before an overvoltage trip during deceleration or a regenerative event. Switching power supplies run their input capacitors closer to rating and hotter. Contactor and relay coils dissipate more. Control boards and displays age faster in enclosures that were already warm.
The symptom is usually intermittent rather than terminal: a fault code that clears on a restart, a board replaced twice in the same cabinet, a machine that runs fine in winter and reports supply errors in summer. Removing 18 volts moves the whole cabinet away from the edge.
Installation notes
Sizing guidance
Take the current figure from the machine's own data plate rather than from the individual motors inside it. A packaged machine states a full-load current for the complete assembly, which already accounts for the spindle, the auxiliaries, the control power and the cooling, and that is the number to size against. Where several machines share one supply point, total their full-load currents.
Then choose phase and rating. Single-phase and three-phase configurations are both offered, with amperage options of 10, 15, 20, 30, 40, 50 and 60 amps. Select the first option above your total.
Measure the supply with a true-RMS meter at the machine disconnect while the machine runs its heaviest cycle. Equipment fed through drives and switching supplies draws non-sinusoidal current, and an averaging meter will misread it. Because the transformer only processes the difference between 248V and 230V, its own rating is a small fraction of the machine it feeds, so there is no reason to size it as though it were a full step-down transformer.
Installation notes
Confirm the measured supply first. A buck-boost has a fixed ratio and no regulation, so an 18-volt correction is only correct if the service genuinely sits near 248V rather than swinging widely through the day.
In service the device is an autotransformer. The 230V output is not electrically isolated from the 248V input, and the installation does not create a separately derived system, so if the machine specification calls for isolation this is not the right device. Three-phase corrections are wired open delta, typically with two units, adjusting all three line-to-line voltages.
The connection derives no neutral. Machines that need 120V control power must take it from an existing neutral or from their own control transformer, which most packaged machinery already carries. Line and load conductors both carry full load current, so size conductors and overcurrent protection for the load, not for the transformer rating. Verify the corrected voltage at the machine terminals under a working cycle before handing the equipment over.
Common questions
- Is 248V within tolerance for 230V equipment?
It depends which tolerance applies. NEMA MG-1 permits a general-purpose motor to run at plus or minus 10% of nameplate, so a 230V motor is rated to 253V and 248V is inside that band. A great deal of packaged machinery instead specifies plus or minus 5%, which caps a 230V supply at about 241V, and 248V is outside it. Check the equipment manual rather than assuming the motor standard governs.
- Why does a variable frequency drive trip on overvoltage when the supply is high?
Because the drive's internal DC bus voltage tracks the incoming line voltage. A supply near the top of the permitted range raises the bus at rest, which leaves less margin before the drive's overvoltage threshold when a decelerating load feeds energy back into the bus. Reducing the supply voltage to nameplate lowers the resting bus voltage and restores that margin.
- Will a buck-boost transformer supply 120V control power?
No. A buck-boost transformer is an insulating transformer reconnected as an autotransformer, and the connection derives no neutral. It changes the line-to-line voltage only. Control power at 120V must come from an existing neutral, a separate control transformer, or the machine's own onboard control transformer.
- Does a buck-boost transformer have to be rated for the machine's full power?
No. A buck-boost transformer processes only the difference between the input and output voltage, which for a 248V to 230V correction is 18 volts, so its own rating is a small fraction of the load it supports. This is why a buck-boost is far smaller and less expensive than an isolation transformer serving the same equipment. Selection is based on the full-load current of the machine, with options of 10, 15, 20, 30, 40, 50 and 60 amps.