Autotransformer
ProductOverview
An Autotransformer connects two transmission voltage levels using a single winding per phase that both circuits share, instead of two electrically separate windings. Part of the winding, the common winding, is shared by the high and intermediate voltage circuits; the rest, the series winding, is in series with it and supplies the voltage difference. Because the two circuits are electrically connected as well as magnetically coupled, only the difference in power has to be transformed magnetically. The rest passes straight through by conduction.
That property is the whole reason autotransformers exist. For two voltages that are close in ratio, say 400 kV to 220 kV, the magnetically transformed power is only a fraction of the throughput, so the core and windings can be much smaller, lighter and cheaper than a two-winding Power Transformer of the same MVA. The penalty is that the two systems are no longer galvanically isolated, and the unit must be applied where that shared connection is acceptable, which is normal between two earthed transmission systems.
The autoconnection and co-ratio
The economy is captured by the co-ratio, the fraction of rated throughput that is actually transformed. It equals one minus the ratio of the lower voltage to the higher. For a 400/220 kV unit the co-ratio is about 0.45, meaning the active part is sized for roughly 45 percent of the nameplate MVA. The closer the two voltages, the smaller this fraction and the greater the saving. This is why autotransformers dominate transmission interties where ratios are modest, and why they are rarely used for large step-down ratios where the saving disappears.
Core and windings
The Magnetic Core is a grain-oriented silicon-steel core with three limbs and two yokes, held by clamping frames and earthed through the earthing strap. Flux shunts keep stray flux off the tank.
The common winding sits on the limb and carries only the difference current, so it can be wound from transposed conductor sized below the full throughput. The series winding adds the voltage difference and is graded for impulse with static rings. A closed delta tertiary is almost always fitted: it gives a low-impedance path for triplen (third-harmonic) currents so the magnetising flux stays sinusoidal and the neutral stays stable, and it can also supply station auxiliaries or carry reactive compensation. A tap winding feeds the on-load tap changer. The whole stack is insulated with kraft paper, barrier cylinders and pressboard spacers.
Insulation and dielectric
Because the HV and IV circuits share a winding, the insulation system needs careful field grading at the junction where the series and common windings meet. The mineral oil fills and cools the active part, while angle rings and end blocks shape the field at the high-stress edges. The neutral end is only lightly insulated, which is reflected in the much lower neutral BIL on the nameplate.
Cooling, bushings and tap changer
The tank and cooling system is conventional: a welded tank with radiators, fans and pumps giving ONAN, ONAF and OFAF stages. Connections cross the tank cover through bushings: HV and IV condenser bushings for the two transmission levels, tertiary bushings for the delta, and a neutral bushing at the shared star point.
Ratio control is by on-load tap changer. The selector pre-selects a tap and the diverter switch transfers load current with transition resistors, driven by the motor drive. Tap-changer placement on an autotransformer needs care because the regulating turns interact with both circuits, and designs differ in whether the taps sit at the line end or the neutral end of the winding.
Protection, preservation and application
Oil volume change is taken up by the conservator with its air-cell and silica-gel breather. Faults are caught by the Buchholz relay, sudden-pressure relay and pressure-relief devices, and temperatures are watched by the winding and oil temperature indicators feeding the marshalling cabinet. One protection point specific to the autoconnection: because HV and IV share a winding, a surge arriving on one side can transfer to the other, so surge arresters are applied on both line terminals and the impulse insulation is coordinated across the whole winding.
Autotransformers are built and tested to IEC 60076 and IEEE C57.12.00. They are the standard choice for interconnecting adjacent transmission voltages (765/400, 400/220, 230/115 kV and similar) where the systems are solidly earthed and the modest ratio makes the autoconnected design markedly cheaper, lighter and lower-loss than a full two-winding transformer of the same throughput.
Bill of materials for Autotransformer
9 top-level lines as of r9736| # | Item / sub-assembly | Part no. | Qty/assy | Ext. qty | Parts | Type |
|---|---|---|---|---|---|---|
| 1 | Magnetic Core 7 parts | autotransformer-core | 1× | 1 | 0 | assembly |
| 2 | Winding Assembly 7 parts | autotransformer-windings | 1× | 1 | 0 | assembly |
| 3 | Insulation & Dielectric System 5 parts | autotransformer-insulation | 1× | 1 | 0 | assembly |
| 4 | Tank & Cooling System 9 parts | autotransformer-tank-cooling | 1× | 1 | 0 | assembly |
| 5 | On-Load Tap Changer 7 parts | autotransformer-oltc | 1× | 1 | 0 | assembly |
| 6 | Bushing Set 6 parts | autotransformer-bushings | 1× | 1 | 0 | assembly |
| 7 | Conservator & Oil Preservation 5 parts | autotransformer-conservator | 1× | 1 | 0 | assembly |
| 8 | Protection & Monitoring 7 parts | autotransformer-protection | 1× | 1 | 0 | assembly |
| 9 | Marshalling Cabinet 6 parts | autotransformer-marshalling-cabinet | 1× | 1 | 0 | assembly |
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