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Dry Type Transformer: What It Is & How to Choose

A dry type transformer is a transformer that insulates and cools its windings with air and solid insulation instead of liquid. That single design choice removes the fire and spill risk of mineral oil, which is why dry types are the default indoors — in high-rises, hospitals, data centers, tunnels, and mines. Choosing one comes down to nine decisions: kVA, voltage, enclosure, temperature rise, efficiency tier, harmonic duty, sound, site derating, and total cost of ownership.

This guide walks through all nine in the order a real project needs them. It includes the sizing math with actual numbers, the US efficiency tiers that change on April 23, 2029, the fire-code cost nobody prices at bid time, and the eight spec mistakes that show up on your invoice instead of your drawing.


The 60-second version

If you only read one section, read this one.

  1. “Dry” does not mean “uninsulated.” It means the cooling medium is air, not oil. The windings still carry epoxy, varnish, Nomex, or all three.
  2. Three build types, not two. Cast resin (epoxy-encapsulated), VPI (vacuum pressure impregnated), and open-wound. They differ in moisture tolerance, repairability, and price by 20–50%.
  3. Size from measured demand, not from nameplate totals. Connected kW × diversity factor ÷ power factor × 1.15–1.25 growth, then round up to a standard kVA rating.
  4. Temperature rise is your cheapest insurance. An 80 °C rise unit built on a 220 °C insulation system gives you roughly 30% continuous overload headroom for a modest premium. A 115 °C rise unit gives about 15%.
  5. US efficiency is a legal floor, not a feature. Under DOE 10 CFR 431.196, a 300 kVA three-phase low-voltage dry type must hit 99.02% today — and 99.22% if it is manufactured on or after April 23, 2029.
  6. A >112.5 kVA unit can trigger a one-hour fire-rated room under NEC 450.21(B) — unless it has Class 155 or higher insulation and is completely enclosed except for ventilating openings. Specify that on the PO, not after the walls go up.
  7. Loss money dwarfs purchase money. On a 750 kVA unit running 24/7 at 60% load, the difference between a standard and a low-loss design is about $707/year — roughly $17,700 over 25 years.
  8. Field sound runs 6–10 dB above the catalog number. NEMA ST-20 values are measured in a chamber. Your electrical room is not a chamber.
  9. “Maintenance-free” means “no oil,” not “no attention.” Annual insulation resistance testing and cleaning still decide whether you get 20 years or 30.
  10. Above 1,000 m (3,300 ft) or 40 °C ambient, you derate. Tell the manufacturer your site conditions before you get a price, not after.

What is a dry type transformer?

A dry type transformer is a transformer whose core and windings are cooled by ambient or forced air and insulated with solid materials — epoxy resin, polyester varnish, Nomex, or fiberglass — rather than by a liquid such as mineral oil. It steps voltage up or down by electromagnetic induction exactly like any other transformer; only the cooling and insulation medium is different.

Here’s the thing most guides skip: the electricity behaves identically. What changes is where you’re allowed to put it, what the fire marshal will say, and what your 25-year maintenance bill looks like.

How it actually works

Alternating current in the primary winding creates a changing magnetic field in the laminated silicon-steel core. That field induces a voltage in the secondary winding. The ratio of turns between the two windings sets the output voltage. The core and windings generate heat — “no-load loss” from the core, which runs 24/7 the moment you energize, and “load loss” from winding resistance, which rises with the square of the current.

All of that heat has to leave the transformer somehow. In an oil-filled unit it leaves through circulating liquid. In a dry type, it leaves through air moving across the winding surfaces. That’s the whole difference — and it drives every other decision in this guide.

What “dry” does and does not mean

It meansIt does not mean
No liquid coolant or liquid insulationNo insulation at all
No oil containment pit, no oil testing, no PCB paperworkZero maintenance
Self-extinguishing insulation (typically UL 94 V-0 for cast resin)It cannot overheat or fail
Safe for occupied buildings under NEC Article 450It can be installed anywhere, including outdoors in the rain

The three build types: cast resin, VPI, and open-wound

Cast resin dry type transformers encapsulate the windings in epoxy cast under vacuum. VPI (vacuum pressure impregnated) transformers bond the windings with varnish under vacuum and pressure, leaving an open-coil structure. Open-wound units use only high-temperature conductor insulation with a simple dip-and-bake varnish. Cast resin wins on moisture and short-circuit strength; VPI wins on first cost and repairability.

FactorCast resin (CRT)VPIOpen-wound
ProcessWindings cast in epoxy under vacuumWindings impregnated with varnish under vacuum + pressureHigh-temp insulation, simple dip and bake
Moisture toleranceExcellent — tolerates 100% RH, condensing environmentsModerate — needs anti-condensation heaters in humid roomsPoor
Dust / salt / chemicalExcellent (sealed)FairPoor
Heat dissipationGoodSlightly better (thinner coating)Best
Short-circuit strengthExcellent — epoxy mass distributes forceMeets ANSI/IEEE requirementsLowest
Partial discharge (typical industry figures)< 10 pC achievableCommonly 10–50 pCHighest
RepairableNo — replace the coil assemblyYes — coils can be rewoundYes
Relative first cost1.3–1.5× VPI1.0×Lowest
Best fitCoastal, wastewater, tunnels, mining, outdoor enclosures, hospitalsClean indoor electrical rooms, commercial buildings, data centersSmall control transformers

Two honest caveats. Cast resin is the right answer in a wet or corrosive room and an over-specification in a conditioned one. And the “cast resin is heavier” complaint is real — budget for floor loading and rigging on anything above roughly 1,000 kVA.


Dry type vs. oil-filled: an honest scorecard

Dry type transformers cost roughly 40–80% more than an equivalent oil-filled unit FOB, but they eliminate oil containment, fire suppression, and oil testing. Indoors, dry type usually wins on installed cost and always wins on fire code. Outdoors at utility scale, oil-filled still wins on cost per kVA. This is a commonly quoted budgetary range — verify against your own quotes.

DimensionDry typeOil-filled
Purchase price (1,000 kVA class, indicative)HigherLower
Indoor installed costLower — no vault, no pit, no suppressionHigher — vault or fire-rated room + containment
Typical practical size ceiling~30 MVA; commonly ≤2,500 kVA in buildingsEffectively unlimited
Voltage classCommonly up to 36 kVUp to 1,000 kV+
Full-load efficiencyRoughly 98–99%Roughly 98.5–99.5%
Short-term overload~110–120%~130–150% sustained
Fire behaviorSelf-extinguishing; no pool fireRequires containment / separation / suppression
Routine maintenanceCleaning, IR scan, megger, torqueAdds oil testing, DGA, filtration, leak monitoring
Expected service life20–30+ years30–40 years with maintenance
End-of-lifeCore/coil reclamationOil drainage + hazardous waste handling

The cost nobody prices at bid time

This is the part that bites. Under NEC Article 450.21, indoor dry type transformers fall into three tiers:

RatingRequirement
≤112.5 kVAAt least 12 in (300 mm) from combustible material — unless separated by a fire-resistant heat-insulating barrier, or the unit is ≤600 V and completely enclosed except for ventilating openings
>112.5 kVAA transformer room of fire-resistant construction with a minimum one-hour rating — unless it has Class 155 or higher insulation and is either (a) separated from combustibles by a barrier or by ≥6 ft horizontally and 12 ft vertically, or (b) completely enclosed except for ventilating openings
>35,000 VA vault per NEC Article 450 Part III — walls and roof at 3-hour rating (reducible to 1 hour with automatic suppression)

Bottom line: a $6,000 insulation-class upgrade can delete a $60,000 fire-rated room from your budget. That is the single highest-leverage line on a dry type spec, and it is decided at purchase time, not at construction time.


How to choose a dry type transformer: the 9-step process

Step 1 — Size it from demand, not from nameplates

To size a dry type transformer, add up connected load in kW, apply a diversity factor (commonly 0.5–0.8), divide by power factor, add 15–25% for growth, then round up to a standard kVA rating. Sizing from raw connected load is the most common — and most expensive — mistake in the whole process.

“ kVA = (connected kW × diversity factor) ÷ power factor × (1 + growth margin) “

Standard three-phase low-voltage dry type ratings in North America: 15, 30, 45, 75, 112.5, 150, 225, 300, 500, 750, 1,000 kVA. Non-standard ratings are quoted, but they cost more and arrive later.

One counter-intuitive note: bigger is not automatically safer. A badly oversized transformer runs at a very low load factor, which means its fixed no-load loss dominates the bill, and it can also make downstream fault current coordination harder. Aim for a steady-state loading around 60–80%.

Step 2 — Nail the electrical basics

Primary and secondary voltage, phase, frequency (50 or 60 Hz), vector group (Dyn11 is common where you need to block triplen harmonics and handle unbalanced load; Yyn0 for general lighting and mixed building load), tap range (typically ±2 × 2.5% on the HV winding), and impedance (commonly 4–6% for distribution duty).

Impedance cuts both ways. Too low and the available fault current can exceed your switchgear’s interrupting rating. Too high and voltage sags excessively on motor starts. Give your coordination study both numbers.

Step 3 — Decide where it lives: NEMA or IP

LocationNorth AmericaIEC world
Clean, dry indoor electrical roomNEMA 1 (ventilated) or NEMA 2 (drip-proof)IP20 / IP00
Damp or dusty indoorNEMA 3R or encapsulatedIP23 / IP31
OutdoorNEMA 3R with weathershieldsIP54 with ventilated weatherproof enclosure
Washdown, coastal, corrosiveNEMA 4X (304 or 316L stainless)IP54–IP66

Also budget clearance. NEC 110.26 requires working space in front, and per NEC 450.9 the nameplate states the minimum clearance from ventilation openings — commonly 6 in for ventilated units and up to 12 in or more for larger ones. Airflow in at the bottom, out at the top, and don’t stack two units vertically where one preheats the other.

Step 4 — Pick insulation class and temperature rise

This is where US and IEC specs use different vocabulary for the same physics.

Temperature rise is how far above ambient the windings run at full load. A lower rise means a cooler-running, longer-lived, more overload-tolerant transformer at a higher first cost. Most North American ventilated dry types are built on a 220 °C insulation system regardless of the specified rise.

Specified riseWhat you actually getWhen it pays
150 °C riseLowest first cost, smallest footprintLight to moderate load, dedicated electrical room, budget-driven projects
115 °C riseCan run as a 150 °C rise unit with roughly 15% continuous overload without shortening normal insulation lifeBuildings with a credible growth plan
80 °C riseCan run as a 150 °C rise unit with roughly 30% continuous overload; runs cooler, ages slowerData centers, hospitals, high ambient, 24/7 duty

In IEC-based projects you’ll see Class F (155 °C) or Class H (180 °C) insulation with a guaranteed winding temperature rise — commonly 80 K, 100 K, or 125 K — under IEC 60076-11. Ask for the rise and the class; quoting only one leaves the door open.

If your spec is IEC-based, also ask for the three behavior classes in IEC 60076-11: E2 (environmental), C2 (climatic), and F1 (fire behavior). Confirm which levels your project actually requires — they’re frequently copied onto specs without anyone checking.

Step 5 — Read the efficiency numbers, not the adjectives

In the US, low-voltage dry type distribution transformers are regulated by DOE 10 CFR 431.196. Minimum efficiency is measured at 35% of nameplate load for low-voltage dry types, and at 50% for medium-voltage dry types. A newer, stricter tier takes effect for units manufactured on or after April 23, 2029.

Three-phase low-voltage dry type, minimum efficiency (%) at 35% load:

kVANEMA TP-1 era (2007)DOE 2016 (today)DOE 2029 tier
1597.0097.8998.31
3097.5098.2398.58
7598.0098.6098.88
15098.3098.8399.06
30098.6099.0299.22
50098.7099.1499.31
75098.8099.2399.38
1,00098.9099.2899.42

Source: 10 CFR 431.196; cross-checked against manufacturer compliance tables. Confirm the current table before you issue a spec, and note that coverage applies by date of manufacture, not by your purchase order date.

Two practical takeaways. First, any compliant unit already meets the floor — efficiency is a tier decision above the floor, not a brand decision. Second, if you’re ordering in 2026 on a long lead time, the 2029 tier is your problem now.

Step 6 — Decide whether you actually need a K-factor rating

A K-factor rating tells you how much extra winding heating a transformer can tolerate from harmonic currents. You need one when a meaningful share of the load is nonlinear — large DC drives, legacy 6-pulse rectifiers, electrolysis, big UPS banks with old front ends. You usually do not need one just because a few VFDs appear on the one-line, because modern IGBT-based drives and UPS front ends often produce under 5% current THD.

Here’s the honest version of the trade-off: K-rated units are oversized in the neutral (commonly 200%), built with electrostatic shielding, and cost more — and they also tend to be less efficient at fundamental frequency and can raise inrush. Ask your supplier for the harmonic spectrum and the IEEE C57.110 derating calculation before you pay for K-13 or K-20. Specifying K-factor by reflex is one of the easiest ways to overspend on a dry type.

Step 7 — Specify the sound level in writing

NEMA ST-20 (2014) sets maximum average sound levels in dB(A) by kVA. Field measurements typically run 6–10 dB above the catalog value because of room reflections and structure-borne transmission, and forced-air cooling adds several dB the moment the fans start.

NEMA ST-20 (2014), selected self-cooled ventilated limits:

Equivalent winding kVA rangeSelf-cooled (dB(A))With fans running (dB(A))
3.01 – 94045
15.01 – 304550
75.01 – 112.55055
150.01 – 2255557

Three things that cost less than a bigger transformer: anti-vibration mounts (structure-borne noise usually dominates), flexible conduit instead of rigid, and keeping the unit off corners where two hard surfaces reflect into each other. And if the room is noise-sensitive, set the fan start point high enough that fans only run at genuine peak — a unit that’s quiet at AN rating can jump several decibels in AF.

Step 8 — Derate for your actual site

Standard ratings assume a 40 °C maximum ambient, 30 °C 24-hour average, and altitude at or below 1,000 m (3,300 ft). Beyond that:

  • Altitude: thinner air cools worse. A widely used planning allowance is roughly 1% of rating per 100 m above 1,000 m — but ask the manufacturer for their actual derating curve, because it varies with cooling design.
  • Ambient: above 40 °C you derate, commonly on the order of 1% per °C. Confirm against the manufacturer’s table rather than assuming.
  • Enclosure: IP54 or a fully-sealed NEMA 4X enclosure restricts heat rejection badly. Sealed + high ambient + high load is the combination that quietly cooks windings.

Step 9 — Buy on 25-year cost, not on invoice cost


Worked example: from 480 kW of load to a 500 kVA order

Let’s run a real one end to end.

✅

That 73% is the number to be proud of. It’s high enough that the transformer runs efficiently, low enough to absorb a future expansion without a change-out.

Now layer on the choices: indoor clean room → NEMA 1 ventilated, VPI construction. Occupied building, unit above 112.5 kVA → specify Class 155 or higher insulation, completely enclosed except ventilating openings, and you’ve just documented your way out of a one-hour fire-rated room. Data center duty → step up to cast resin, 115 °C rise, PT100 RTDs, and a fan start point set above normal peak.


The loss math in four lines

Nobody buys a transformer on losses until you show them the dollars. Here it is for a 750 kVA unit running 24/7 at 60% average load, 8,760 h/year, $0.12/kWh:

Standard designLow-loss design
No-load loss1,400 W980 W
Load loss at full load7,500 W6,800 W
Load loss at 60% load (× 0.36)2,700 W2,448 W
Total running loss4,100 W3,428 W
Annual energy35,916 kWh30,029 kWh
Annual cost$4,310$3,603

Difference: about $707/year, or roughly $17,700 over 25 years before any energy escalation. If the low-loss design carries a $6,000 premium, payback lands around 8.5 years on a 20–30 year asset. That’s a defensible purchase.

Now the same two units in an office that averages 35% load:

Standard designLow-loss design
Total running loss2,319 W1,813 W
Annual energy20,312 kWh15,882 kWh
Annual cost$2,438$1,906
Difference—$532/year, ~$13,300 over 25 years

Payback stretches to about 11 years. Still positive, less dramatic — which is exactly the point. Do this arithmetic with your own load factor and your own utility rate before you argue for a premium design. Generic “high efficiency saves money” claims are why procurement stops believing engineers.


Eight spec mistakes that show up on the invoice

  1. Sizing from connected load. You buy 30% more transformer than you need, pay more up front, and run at a load factor that wastes no-load loss every hour of every day.
  2. Forgetting motor starting and inrush. Energizing a transformer can draw 5–25× primary full-load amps for several cycles. If your protective device trips on energization, the transformer isn’t the wrong size — the coordination is.
  3. Paying for K-13 because a VFD exists. Ask for the harmonic spectrum first. Modern drives often don’t need it.
  4. Specifying NEMA 1 for a coastal or unconditioned room. VPI windings plus salt air plus condensation is a slow, predictable failure. Cast resin plus heat is the fix, and it costs less than one outage.
  5. Discovering NEC 450.21 after the room is framed. One line on the PO — Class 155 or higher, enclosed except ventilating openings — deletes a one-hour fire-rated room.
  6. Ignoring altitude and ambient until commissioning. A unit that’s perfectly rated at sea level and 40 °C can run hot at 2,000 m or in a 50 °C mechanical room.
  7. Believing “maintenance-free.” It means no oil. A dry type that sits de-energized in a humid room for six months and then gets switched on is the classic dry type failure story.
  8. Not specifying sound or mounting. The transformer meets every electrical spec and still gets a complaint on day one, because nobody wrote a dB(A) number or bought vibration pads.

Quick-select cheat sheet

If your installation is…ChooseBecause
Indoor office / high-rise, ≤2,500 kVADry type, VPI, NEMA 1 or 2Fire code accepts it; no vault, no pit
Hospital, data center, 24/7 criticalDry type, cast resin, Class F/H, 80–115 °C rise, PT100Uptime + fire behavior + thermal margin
Coastal, wastewater, tunnel, mineDry type, cast resin, IP54 / NEMA 4XMoisture, salt, dust, no drainage
Heavy harmonics (DC drives, legacy rectifiers)K-factor rated — after checking THDWinding heating from eddy currents
Clean, budget-driven, moderate loadDry type, VPI, 150 °C riseLowest defensible first cost
Outdoor, >2,500 kVA or >35 kVOil-filled (mineral or ester)Cost per kVA, weatherability, overload
Noise-sensitive occupied spaceLow-sound design + anti-vibration mounts + high fan setpointStructure-borne noise dominates

Standards map: who enforces what

PurposeUS / North AmericaInternational
Dry type product standardUL 1561, ANSI/IEEE C57.12.01, NEMA ST-20 (sound)IEC 60076-11
General requirementsIEEE C57.12.00IEC 60076-1
Temperature riseIEEE C57.12.90 / C57.12.01IEC 60076-2, IEC 60076-11
EfficiencyDOE 10 CFR 431.196EU 2019/1783 (PEI), IEC 60076-20
Loading guideIEEE C57.96IEC 60076-12
Harmonics / K-factorIEEE C57.110IEC 61378-1 (converter duty)
SoundNEMA ST-20IEC 60076-10
EnclosureNEMA 250 (1 / 2 / 3R / 4X)IEC 60529 (IP20 / IP23 / IP54)
InstallationNFPA 70 (NEC) Article 450IEC 61936-1 + local code

What “maintenance-free” actually means

A dry type transformer requires no oil handling, but it still requires periodic inspection and cleaning. Expect visual inspection and infrared scanning annually, insulation resistance testing at least once a year, internal cleaning every 6–12 months depending on dust, and torque checks on terminations. Units with PT100 sensors typically start fans near 100 °C, alarm around 130–140 °C, and trip around 150–155 °C.

Practical notes that matter more than the schedule:

  • Clean dry, never wet. Dry compressed air or a soft brush. A damp cloth on insulation surfaces is how you create a tracking path.
  • Megger before re-energizing anything that has sat idle in humidity. A 2,500 V insulation resistance test with an absorption ratio (R60/R15) of 1.3 or better is a common acceptance threshold.
  • Respect the thermal aging rule of thumb. Roughly every 6–10 °C of extra hot-spot temperature halves insulation life. That’s the entire argument for buying a lower temperature rise.
  • Consider partial discharge testing on units past about ten years of service, or after any overload, through-fault, or overvoltage event.
  • Log it. Temperature trend, insulation resistance history, and PD results tell you what’s coming. Most dry type failures are visible in the data months in advance.

The bottom line

Choosing a dry type transformer is nine decisions, and only the first two are electrical.

Size it from demand, not from nameplates. Pick the construction for the room it will live in, not the room you wish you had. Buy temperature rise when the load is critical or the ambient is hot. Treat DOE efficiency as a legal floor and shop above it. Check harmonics before you buy a K-rating. Write a dB(A) number into the spec. Derate for altitude and ambient. And price the next 25 years, not the next 25 days.

Do those nine things and the transformer will be the least interesting piece of equipment in your building — which is exactly what you want from a device you plan to forget about for three decades.

What to send suppliers

To get quotes you can actually compare line by line, send every supplier the same package:

kVA · primary / secondary voltage · phase and frequency · vector group · impedance % · tap range · indoor or outdoor + NEMA or IP rating · insulation class and temperature rise · efficiency tier or loss values in watts (no-load and load) · K-factor requirement, or a statement that it is not required · sound level in dB(A) · ambient temperature and altitude at site · required standards and whether type test reports are needed · enclosure and cable entry arrangement · target delivery date

If two quotes come back that you can’t compare line by line, you didn’t send a spec — you sent a wish.


Frequently asked questions

What is a dry type transformer in simple terms?

A dry type transformer changes voltage using air and solid insulation to cool its windings instead of oil. Because there’s no flammable liquid inside, it can go inside occupied buildings without a vault or containment pit. You’ll find them in high-rises, hospitals, data centers, and factories.

Is a cast resin transformer the same thing as a dry type transformer?

All cast resin transformers are dry type, but not all dry type transformers are cast resin. “Dry type” is the umbrella term. Under it sit cast resin (epoxy-encapsulated), VPI (varnish-impregnated), and open-wound designs, each with different moisture tolerance and price.

Can a dry type transformer be installed outdoors?

Yes, but not by just setting it outside. Outdoor service needs a weatherproof enclosure — typically NEMA 3R with weathershields or IP54 — plus corrosion protection, ventilation, and attention to how the enclosure limits heat rejection. Tell the manufacturer it’s going outdoors when you ask for a price.

How long does a dry type transformer last?

A well-specified and maintained dry type commonly delivers 20–30+ years. The dominant variable is winding temperature: as a rule of thumb, roughly every 6–10 °C above the rated hot-spot temperature halves insulation life, which is why a lower temperature rise is worth real money.

Are dry type transformers more efficient than oil-filled ones?

Generally slightly less efficient at full load — dry types run roughly 98–99% versus roughly 98.5–99.5% for oil-filled. But efficiency isn’t the deciding factor indoors. Fire code, containment cost, and maintenance dominate, and there dry type wins decisively.

What size dry type transformer do I need?

Take connected load in kW, multiply by a diversity factor (commonly 0.5–0.8), divide by power factor, add 15–25% for growth, then round up to a standard kVA rating. For example: 480 kW × 0.70 ÷ 0.92 × 1.25 = 457 kVA, so order a 500 kVA unit.

Do I need a K-rated transformer?

Usually not. K-rating protects against extra winding heating from harmonic currents, and it matters for large DC drives, legacy 6-pulse rectifiers, and similar loads. Modern IGBT-based VFDs and UPS front ends often produce under 5% current THD, so a standard unit is fine. Ask for the harmonic spectrum first.

How loud is a dry type transformer?

NEMA ST-20 (2014) sets maximum average sound levels by kVA — for example 50 dB(A) self-cooled in the 75–112.5 kVA range, 55 dB(A) for 150–225 kVA. Field measurements typically run 6–10 dB above the catalog figure, and fans add several dB when they start.

What does “80 °C rise” mean, and is it worth paying for?

It means the windings run 80 °C above ambient at full load, instead of the standard 150 °C. Built on a 220 °C insulation system, that gives you roughly 30% continuous overload capability and slower insulation aging. Worth it for data centers, hospitals, hot rooms, and 24/7 duty.

Is a dry type transformer really maintenance-free?

No — “maintenance-free” means no oil. You still need annual insulation resistance testing and infrared scanning, cleaning every 6–12 months in dusty environments, torque checks on terminations, and verification that fans and temperature controllers work.

How much more does a dry type cost than an oil-filled transformer?

Commonly quoted budgetary ranges put dry type 40–80% higher on equipment price for the same kVA. Indoors, that premium is usually recovered through eliminated fire-rated construction, oil containment, and suppression. Outdoors at utility scale, oil-filled generally remains cheaper per kVA.

What standards apply to a dry type transformer in the US?

UL 1561 for listing, ANSI/IEEE C57.12.01 and C57.12.90 for ratings and testing, NEMA ST-20 for sound, IEEE C57.110 for harmonic derating, DOE 10 CFR 431.196 for efficiency, and NFPA 70 (NEC) Article 450 for installation. IEC 60076-11 is the international counterpart.