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200V to 240V Buck-Boost Transformers

A 240 volt heating element fed at 200 volts delivers about 69 percent of its rated output, because resistive power falls with the square of applied voltage. Choose the system phase and equipment nameplate amps below to see an available, buyable unit.

2

Load current (amps)

Single-Phase

Three-Phase Delta

2.08 amps0.86 kVA · $490.58 · Ships in 2-3 weeks2.41 amps1 kVA · $636.52 · Ships in 2-3 weeks3.12 amps1.3 kVA · $658.81 · Ships in 2-3 weeks4.17 amps1.73 kVA · $662.11 · Ships in 2-3 weeks4.81 amps2 kVA · $662.11 · Ships in 2-3 weeks5 amps2.08 kVA · $665.42 · ✔ In Stock: 16.01 amps2.5 kVA · $851.92 · ✔ In Stock: 17.22 amps3 kVA · $877.01 · Ships in 2-3 weeks7.29 amps3.03 kVA · $877.33 · Ships in 2-3 weeks10 amps4.16 kVA · $1,060.47 · ✔ In Stock: 212.03 amps5 kVA · $1,383.43 · ✔ In Stock: 214.43 amps6 kVA · $1,423.14 · ✔ In Stock: 315 amps6.24 kVA · $1,428.95 · ✔ In Stock: 315.6 amps6.48 kVA · $1,432.31 · ✔ In Stock: 318.04 amps7.5 kVA · $1,528.54 · ✔ In Stock: 320 amps8.31 kVA · $1,559.18 · ✔ In Stock: 220.8 amps8.65 kVA · $1,564.84 · ✔ In Stock: 221.65 amps9 kVA · $2,107.60 · ✔ In Stock: 225 amps10.39 kVA · $2,163.41 · ✔ In Stock: 228.87 amps12 kVA · $2,210.65 · ✔ In Stock: 230 amps12.47 kVA · $2,219.64 · ✔ In Stock: 231.2 amps12.97 kVA · $1,795.36 · Ships in 2-3 weeks31.25 amps12.99 kVA · $2,225.16 · ✔ In Stock: 236.08 amps15 kVA · $3,152.78 · ✔ In Stock: 240 amps16.63 kVA · $3,216.48 · Ships in 2-3 weeks41.7 amps17.33 kVA · $3,229.19 · Ships in 2-3 weeks48.11 amps20 kVA · $3,834.02 · Ships in 2-3 weeks50 amps20.78 kVA · $3,868.31 · Ships in 2-3 weeks52.1 amps21.66 kVA · $3,889.48 · Ships in 2-3 weeks60 amps24.94 kVA · $3,889.48 · ✔ In Stock: 160.14 amps25 kVA · $3,889.48 · Ships in 2-3 weeks62.5 amps25.98 kVA · $3,908.93 · ✔ In Stock: 172.17 amps30 kVA · $3,864.15 · ✔ In Stock: 1
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Sizing uses the correction winding only. Verify load current against the equipment nameplate and install per the included wiring diagram and applicable NEC requirements.

Quick answer

Measured input
200V
Required output
240V
Correction
Boost (raise voltage) · 20.0%
Size from
System phase and equipment nameplate amps
Technical details

200V to 240V technical overview

A 240 volt heating element fed at 200 volts delivers about 69 percent of its rated output, because resistive power falls with the square of applied voltage. A 200V to 240V buck-boost transformer applies a 20 percent boost and gives that element the voltage it was built for. This is the largest correction in the 200 volt family, and it appears wherever 240 volt equipment has been installed on a legacy 200 volt system or on a 208 volt service that reads 200 under load. Single-phase and three-phase, 10 through 60 amps.

Where 200V to 240V correction is used

240 volt equipment on a low 200 volt supply is a mismatch that usually arrives with the equipment rather than with the building. Someone specifies a machine, an appliance or a charger built for a 240 volt residential or light commercial system, and it lands on a commercial service that reads 200 when everything is running.

Where this happens most:

  • Process heat: duct heaters, immersion heaters, ovens, kilns, and platen or band heaters on extruders
  • Commercial kitchens: fryers, griddles, holding cabinets and dishwasher booster heaters specified at 240V
  • Welding and plasma cutting equipment carrying a 240 volt input rating
  • EV charging equipment and shop machinery built for a 240 volt single-phase supply
  • Older 240 volt production machinery relocated into a building fed at 208

Resistive loads dominate that list for a reason. A motor at 200 volts on a 240 volt nameplate is 17 percent low and will usually trip or fail outright, so the problem announces itself. A heater does not trip at all. It quietly runs at roughly two thirds of its rating while the process falls behind schedule.

Why this 200V to 240V voltage pair matters

ANSI C84.1 sets the normal utilization voltage range for a 240 volt system at 220 to 252 volts. A 200 volt supply is 20 volts below the bottom of that range and 16.7 percent under nominal, outside anything the standard contemplates and well outside the plus or minus 10 percent NEMA MG-1 allows for motors.

Symptoms depend on the load. Resistive heat is the clearest case: output falls with the square of voltage, so a 240 volt element at 200 volts produces roughly 69 percent of rated watts. An oven takes half again as long to reach setpoint, a booster heater cannot hold sanitizing temperature through a rush, and a line engineered around a heat-up curve never meets it. Motors draw excessive current, run hot and trip overloads. Controls are the quiet failure: a 240 volt contactor coil at 200 volts sits close to its dropout threshold, and a single momentary dip opens it and stops the machine mid-cycle.

Installation notes

Sizing guidance

Resistive loads make this the easiest pair in the family to size. Take the nameplate wattage, divide by 240, and that is the current the transformer must carry once corrected. A load already marked in amps at 240 volts can be used directly. Total everything on the circuit and select the next rating up from 10, 15, 20, 30, 40, 50 or 60 amps.

Motor loads use nameplate full-load amps at 240 volts rather than the breaker rating. Mixed panels use the sum of what runs at the same time.

Phase follows the load, not the service. A three-phase machine on a three-phase supply takes the three-phase correction; a 240 volt single-phase heater, welder or charger takes the single-phase unit.

One caution specific to a 20 percent boost: confirm the input really is near 200 volts. On a supply that spends most of its day at 208, a 20 percent boost lands near 250, above the normal utilization limit for a 240 volt system and hard on coils and electronics.

Installation notes

Measure first, and measure under load. A buck-boost transformer multiplies rather than regulates. On this pair the multiplier is 1.2, so every volt of variation on the input becomes 1.2 volts of variation on the output.

The device is an insulating transformer reconnected as an autotransformer, so the 240 volt output shares a winding with the 200 volt supply and is not isolated from it. It also cannot create a neutral. No buck-boost connection will produce a 120/240 three-wire system with a grounded center tap from a 200 volt source; that requires a separately derived transformer.

Three-phase corrections normally use two units in open delta. Size conductors and overcurrent protection for the full load current, not for a fraction of it. NEC 210.9 and 215.11 govern autotransformers supplying branch circuits and feeders and include an exception for transforming between nominal 208 volts and nominal 240 volts; confirm the current code language and the AHJ's interpretation before rough-in.

Common questions
How much heat output is lost running a 240 volt heater at 200 volts?

A 240 volt resistive heater operated at 200 volts produces about 69 percent of its rated output, roughly a 31 percent loss. Power in a resistive element varies with the square of applied voltage, so the ratio is 200 divided by 240, squared. The element does not fail or trip; it simply runs cooler and slower, which shows up as long heat-up times, missed setpoints and processes that cannot keep pace with demand.

Can a buck-boost transformer give me 120/240 with a neutral from a 200 volt supply?

No. A buck-boost transformer is an autotransformer connection, which means it shares a winding with the source and cannot establish a new neutral or a separately derived system. It corrects the magnitude of the voltage it is given and nothing more. Creating a 120/240 three-wire system with a grounded center tap, or a 4-wire wye from a 3-wire source, requires an isolation or distribution transformer.

Is a 200 to 240 volt buck-boost the same as a 208 to 240 volt unit?

No, they use different tap ratios. A 200 to 240 correction is a 20 percent boost, while 208 to 240 is about 15.4 percent. Because a buck-boost transformer applies a fixed ratio rather than regulating to a target, installing a 200 to 240 unit on a supply that actually sits at 208 produces roughly 250 volts. Select from a voltage measured at the equipment under real load, not from the nominal system voltage.

What is the largest voltage correction a buck-boost transformer can make?

Buck-boost transformers are practical for corrections of roughly 5 to 20 percent, and 200 to 240 volts sits at the top of that range. The economics come from the fact that the transformer only processes the difference between input and output, so as the percentage grows the advantage shrinks. For corrections much beyond 20 percent, a full isolation or distribution transformer is usually the better technical and economic choice.