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Grounding Transformer

Product

Overview

A grounding transformer creates an earthing point on a power system that has none of its own. Delta-connected sources, and many industrial and distribution systems fed through delta windings, have no accessible neutral, so there is no defined path for earth-fault current. Without that path, the first earth fault produces little current, which sounds harmless but actually raises the voltage on the healthy phases and lets the fault persist undetected until a second fault somewhere else causes real damage. A grounding transformer supplies the missing neutral and a controlled path for zero-sequence current, so an earth fault draws a measurable current that protection can detect and clear.

The usual construction is a zig-zag, or interconnected-star, winding. It has no secondary in the normal sense; its job is to present a low impedance to zero-sequence (earth-fault) current while presenting a high impedance to balanced positive- and negative-sequence current. Because it does nothing during normal operation, its continuous rating is small, only the magnetising load, but it must survive a large earth-fault current for the short time the protection needs to clear, typically ten to thirty seconds. That short-time rating, not a continuous kVA, sizes the conductors and the thermal mass.

The zig-zag principle

The zig-zag winding is the heart of the device. Each phase is split into two half-windings wound on different limbs of the core and connected in series so their normal-frequency voltages oppose. For balanced positive-sequence current the two halves cancel magnetically, presenting a high impedance, so almost no current flows and the transformer draws only its small magnetising current. For zero-sequence current, which is identical in all three phases during an earth fault, the half-windings on each limb aid rather than oppose, and the winding presents a low impedance. An interconnection lead cross-connects the halves between limbs to set up this behaviour. The result is a winding that is nearly invisible in normal service but provides a ready path the instant an earth fault appears.

Neutral and earthing system

The neutral the winding creates is brought out through the neutral bushing to the earthing system. How the neutral is earthed sets the fault current. A solid earth gives the highest current and the simplest protection. A neutral earthing resistor limits the current to a chosen value, often a few hundred amps, which reduces fault damage and touch potentials while still being large enough to detect. A tuned reactor, the Petersen coil used on a compensated or resonant-earthed system, is set so its inductive current nearly cancels the network's capacitive earth-fault current, so many faults self-extinguish without a trip. A neutral current transformer measures the earth-fault current for the protection scheme, and the earth-grid connection bonds everything to the substation earth.

Core, windings and insulation

The Magnetic Core is a three-limb stacked design of grain-oriented silicon-steel laminations, conventional except that the thermal rating follows the short-time fault rather than a continuous load. The winding conductor is paper-insulated copper sized for the rated short-time current, restrained by clamp rings against the large electromagnetic forces a fault produces. Some units add an auxiliary secondary winding so the same tank can also supply station-service load, which is economical at a remote substation. The insulation system is standard oil-paper-pressboard practice: mineral oil, kraft paper, and pressboard barriers with angle rings grading the field.

Tank, cooling and protection

Because the duty is mostly standby, the cooling is simple ONAN, a welded tank with radiators cooling by natural convection. Three line bushings connect the phases. Protection follows utility practice: a Buchholz relay, a pressure-relief device, and oil and winding temperature indicators, with the bushing and neutral CTs feeding the earth-fault scheme. The conservator with its air cell and silica-gel breather keeps moisture out of the oil, and the marshalling cabinet wires the auxiliaries to the substation.

Standards, variants and use

Grounding transformers are designed to IEC 60076-6 and IEEE C57.32, with system-earthing guidance in IEEE C62.92. The main variants are the zig-zag type described here and the wye-delta grounding transformer, where an earthed star primary and a closed delta secondary provide a similar zero-sequence path. The choice between solid, resistance, and resonant earthing is a system-design decision driven by the acceptable fault current, the need for sensitive earth-fault detection, and continuity-of-supply requirements. These transformers appear wherever a delta source or an ungrounded network needs an earth reference: wind and solar collector systems whose inverters present a delta interface, industrial plants fed from delta-secondary supply transformers, and distribution networks being converted from ungrounded to resistance-earthed operation. Often the grounding transformer is the only piece of equipment that gives such a system a defined neutral at all.

Bill of materials for Grounding Transformer

9 top-level lines as of r78124
# Item / sub-assembly Part no. Qty/assy Ext. qty Parts Type
1 Magnetic Core 6 parts grounding-transformer-core 1× 1 0 assembly
2 Zig-Zag Winding 7 parts grounding-transformer-zigzag-winding 3× 3 0 assembly
3 Neutral and Earthing System 5 parts grounding-transformer-neutral-system 1× 1 0 assembly
4 Insulation and Dielectric System 5 parts grounding-transformer-insulation 1× 1 0 assembly
5 Tank and Cooling System 6 parts grounding-transformer-tank-cooling 1× 1 0 assembly
6 Bushing Set 3 parts grounding-transformer-bushings 1× 1 0 assembly
7 Conservator and Preservation 4 parts grounding-transformer-conservator 1× 1 0 assembly
8 Protection and Monitoring 5 parts grounding-transformer-protection 1× 1 0 assembly
9 Control and Marshalling Cabinet 6 parts grounding-transformer-marshalling 1× 1 0 assembly

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