Power Transformers

Image Part Number Description / PDF Quantity Rfq
FP24-500-B

FP24-500-B

Triad Magnetics

PWR XFMR LAMINATED 12VA TH

17604

VPT36-2780

VPT36-2780

Triad Magnetics

PWR XFMR TORO 100VA CHAS MT

272

F-272U

F-272U

Triad Magnetics

PWR XFMR LAMINATED 160VA CHAS MT

240

F7-24-B

F7-24-B

Triad Magnetics

PWR XFMR LAMINATED 56VA CHAS MT

0

FS120-01

FS120-01

Triad Magnetics

PWR XFMR LAMINATED 1.1VA TH

0

F-279U

F-279U

Triad Magnetics

PWR XFMR LAMINATED 60VA CHAS MT

0

FP12-1900

FP12-1900

Triad Magnetics

PWR XFMR LAMINATED 24VA TH

89

F-340X

F-340X

Triad Magnetics

PWR XFMR LAMINATED 26.8VA CHAS

48

VPP24-420

VPP24-420

Triad Magnetics

PWR XFMR LAMINATED 10VA TH

99

VPP16-1250-B

VPP16-1250-B

Triad Magnetics

PWR XFMR LAMINATED 20VA TH

0

F-215U

F-215U

Triad Magnetics

PWR XFMR LAMINATED 192VA CHAS MT

14310

FS36-1000

FS36-1000

Triad Magnetics

PWR XFMR LAMINATED 36VA TH

84

FP16-3000

FP16-3000

Triad Magnetics

PWR XFMR LAMINATED 48VA TH

13

F48-125

F48-125

Triad Magnetics

PWR XFMR LAMINATED 6VA TH

56

F-93X

F-93X

Triad Magnetics

PWR XFMR LAMINATED CHASSIS MT

997

VPM24-2080

VPM24-2080

Triad Magnetics

PWR XFMR TORO 50VA CHAS MT

42

FD6-10

FD6-10

Triad Magnetics

PWR XFMR LAMINATED 30VA CHAS MT

2049

F36-170

F36-170

Triad Magnetics

PWR XFMR LAMINATED 6VA TH

197

FD6-28

FD6-28

Triad Magnetics

PWR XFMR LAMINATED 30VA CHAS MT

3125

FS36-170-C2

FS36-170-C2

Triad Magnetics

PWR XFMR LAMINATED 6VA TH

0

Power Transformers

1. Overview

Power transformers are static electrical devices that transfer energy between circuits through electromagnetic induction. They enable voltage conversion (step-up/step-down) while maintaining galvanic isolation. These components are fundamental in power distribution systems, renewable energy integration, and industrial equipment, ensuring efficient energy transmission and voltage level adaptation.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Distribution TransformersMedium voltage conversion (1kV-36kV), compact designUrban power grids, residential areas
Transmission TransformersHigh voltage (66kV-800kV), grid stability focusSubstations, long-distance power lines
Instrument TransformersMeasurement and protection (CT/VT types)Energy metering, relay protection
Specialty TransformersCustom configurations (furnace, traction, marine)Industrial furnaces, railway systems

3. Structure and Components

Typical construction includes:

  • Core: Grain-oriented silicon steel laminations for magnetic flux path
  • Windings: Primary/secondary copper/aluminum coils with insulation layers
  • Insulation: Mineral oil, synthetic esters, or solid materials (e.g., epoxy)
  • Cooling System: Radiator tanks, fans, or forced-oil circulation
  • Tap Changer: On-load/off-load voltage regulation mechanism
  • Protection: Buchholz relay, pressure relief valves, temperature sensors

4. Key Technical Parameters

ParameterTypical RangeSignificance
Rated Voltage230V-800kVDetermines system compatibility
Power Capacity50kVA-1000MVADefines energy throughput
Voltage Ratio1:1 to 1:20Specifies transformation ratio
Efficiency95%-99.5%Impacts operational costs
Short Circuit Impedance4%-20%Affects fault current limitation
Insulation ClassA (105 C) to C (220 C)Determines thermal endurance

5. Application Areas

Major sectors include:

  • Electricity distribution networks (urban/rural)
  • Renewable energy systems (wind/solar grid-tied inverters)
  • Industrial machinery (CNC, smelters, compressors)
  • Railway traction systems (15kV-25kV conversion)
  • Data centers (HVDC conversion systems)

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
Siemens EnergyBlue TransformersEnvironmentally friendly synthetic ester insulation
Asea Brown Boveri (ABB)550kV UHV Transformer 500kV DC transmission capability
General Electric (GE)Premier SeriesSmart monitoring with Predictivity analytics
Mitsubishi Electric330MVA Traction TransformerCompact design for Shinkansen trains

7. Selection Guidelines

Key considerations:

  • Voltage levels (primary/secondary requirements)
  • Load profile (continuous vs. intermittent duty)
  • Cooling requirements (ONAN/ONAF/OFAF modes)
  • Environmental conditions (temperature, altitude, seismic zones)
  • Protection features (IP rating, fire resistance)
  • Smart grid compatibility (IoT sensor integration)

Case Study: Wind farm grid connection selected 33/132kV ONAF-cooled transformer with 12% impedance to meet fault ride-through requirements.

8. Industry Trends

Current development directions:

  • Smart transformers with real-time monitoring (IEEE C57.163 compliant)
  • Amorphous metal core adoption (50% core loss reduction)
  • Hydrogen-cooled systems for offshore applications
  • Modular solid-state transformer (SST) prototypes (DOE GRID DATA initiative)
  • Increased demand for 132kV+ mobile transformers in disaster recovery

Market forecasts indicate 6.2% CAGR through 2030, driven by grid modernization and EV charging infrastructure expansion.

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