| Definition | Static AC electrical device | A one-phase transformer transfers alternating-current electrical energy between circuits through electromagnetic induction without changing the frequency. |
| Number of AC phases | One phase | The transformer is designed for a single-phase alternating-voltage supply and load arrangement. |
| Primary winding | Input winding | The primary winding receives the AC input voltage and produces an alternating magnetic field in the core. |
| Secondary winding | Output winding | The secondary winding delivers an induced AC voltage to the connected load. It may be electrically isolated from the primary. |
| Magnetic core | Laminated ferromagnetic core | The core provides a low-reluctance path for magnetic flux. Laminations help reduce eddy-current losses. |
| Operating principle | Mutual electromagnetic induction | Alternating current in the primary creates changing magnetic flux, which induces an alternating voltage in the secondary. |
| Voltage relationship | V2/V1 ≈ N2/N1 | For an ideal transformer, the voltage ratio is approximately equal to the secondary-to-primary turns ratio. |
| Current relationship | I2/I1 ≈ N1/N2 | Ignoring losses, a reduction in voltage corresponds to an increase in available current, and vice versa. |
| Frequency | Unchanged from input to output | A transformer changes voltage and current levels, but it does not act as a frequency converter. |
| Common voltage function | Step-up or step-down | A step-down transformer has fewer secondary turns than primary turns, while a step-up transformer has more. |
| Electrical isolation | Available in isolating designs | Separate primary and secondary windings can provide galvanic isolation while transferring energy magnetically. |
| Power rating | Specified in volt-amperes (VA) or kilovolt-amperes (kVA) | The rating indicates the apparent power the transformer can supply under specified temperature, voltage, frequency, and cooling conditions. |
| Efficiency | Less than 100% in practical units | Copper winding losses, core losses, leakage flux, and heating cause the output power to be slightly lower than the input power. |
| Main losses | Copper loss and core loss | Copper loss is mainly I2R heating in the windings. Core loss consists primarily of hysteresis and eddy-current losses. |
| Typical applications | Residential, commercial, and light industrial systems | Common uses include control circuits, chargers, lighting systems, electronic equipment, distribution supplies, and isolation applications. |
| Key limitation | Not intended to convert DC directly | Direct current does not provide continuously changing magnetic flux, so a conventional transformer cannot operate normally from a steady DC source. |