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Shunt Reactor

Product

Overview

A shunt reactor is, in effect, an inductor for a high-voltage transmission line. It is connected from line to earth and absorbs reactive power, the opposite of a capacitor bank. Long extra-high-voltage lines and cables behave as large capacitors: at light load they generate reactive power and push the line voltage up, sometimes far above the nominal value, an effect that becomes severe on lightly loaded 400 kV and 765 kV circuits and on long cable systems. A shunt reactor draws an inductive (lagging) current that cancels that capacitive generation, holding the line voltage near its target. Ratings run from tens of megavars on a single line to several hundred megavars in banks, at voltage classes from 132 kV up to 800 kV.

Unlike a transformer, a shunt reactor has only one winding per phase and no secondary; it is built to present a precise, stable inductance rather than to transfer power. The most important design feature is the gapped core. The gaps make the inductance almost independent of the steel's non-linear magnetisation, so the reactor draws a clean, nearly sinusoidal current and stays linear up to about 1.5 times rated voltage. That linearity is what lets it hold voltage during the switching surges and load rejections where it is needed most.

The gapped core

The magnetic core is what sets a shunt reactor apart. Instead of a continuous steel limb, each limb is split into a series of short core packets separated by precise non-magnetic gap spacers of ceramic or high-density pressboard. The reluctance of these gaps dominates the magnetic circuit, so the inductance is fixed by the gap geometry rather than by the steel, which is why the reactor stays linear and its var rating is so repeatable. The gaps come at a cost: each gap face carries a strong fringing flux and a large pulsating magnetic pull, which is the main source of vibration and audible hum. The packets are squeezed by high-tension tie rods and a heavy clamping frame so the gaps cannot move, and flux shields collect the fringing flux to keep it from heating the tank and clamps.

Winding and insulation

The reactor winding surrounds the gapped limb and carries the full reactive line current. It is a disc-wound coil of transposed copper in kraft paper, with static rings grading the impulse field for the line voltage class. Because the gap forces vibrate the whole active part, the winding is held under axial pressure by spring-loaded clamps so it cannot loosen and buzz. The insulation system is standard oil-paper-pressboard practice with one special region: the insulation around the gaps is reinforced, because the concentrated fringing flux there would otherwise drive local eddy heating and partial discharge.

Tank, cooling and noise control

The active part sits in a stiffened steel tank cooled by radiators, ONAN at base rating and ONAF with fans at full load. Noise is a defining concern for shunt reactors, more so than for transformers, because magnetostriction and the magnetic pull at the gap faces both excite the structure at twice the line frequency. The noise-control system addresses this with vibration isolators decoupling the core from the tank, tank stiffeners that raise the wall's natural frequency away from the 100 or 120 Hz hum, and sound-attenuating panels. Reactors near communities are sometimes specified to tight sound limits that drive much of the mechanical design.

Bushings, conservator and protection

Three line bushings connect the phases and a neutral bushing brings out the star point, which on some long lines passes through a separate neutral reactor in a four-reactor scheme that aids single-pole auto-reclosing. Protection is thorough because a turn-to-turn fault in a single-winding reactor is hard to detect from the terminals: a Buchholz relay, sudden-pressure relay, and pressure-relief device guard against internal faults, temperature indicators watch loading, and many modern reactors add an online dissolved-gas monitor and a vibration sensor whose trend reveals loosening clamps or gap movement before a fault develops. The conservator with its air cell and silica-gel breather keeps moisture out, and the marshalling cabinet wires the auxiliaries to the substation.

Variants, standards and use

Shunt reactors are designed to IEC 60076-6 and IEEE C57.21. The main variants are the directly connected (bus or line) reactor that is permanently in circuit, the breaker-switched reactor that is brought in only at light load, and the variable shunt reactor whose inductance is adjusted by an on-load tap changer to track changing line conditions, an increasingly popular option as networks carry more variable renewable generation. Dry-type air-core reactors exist for lower voltages, but the gapped oil-immersed design described here dominates at transmission voltages. The application is voltage control: a shunt reactor is installed wherever a long overhead line or cable would otherwise overvolt at light load, at the line ends of EHV interconnectors, at cable terminations, and in substations feeding lightly loaded networks. It is one of the standard tools, alongside switched capacitor banks and static var compensators, that keep transmission voltage inside its operating band.

Bill of materials for Shunt Reactor

9 top-level lines as of r155203
# Item / sub-assembly Part no. Qty/assy Ext. qty Parts Type
1 Gapped Magnetic Core 8 parts shunt-reactor-gapped-core 1× 1 0 assembly
2 Reactor Winding 7 parts shunt-reactor-winding 3× 3 0 assembly
3 Insulation and Dielectric System 6 parts shunt-reactor-insulation 1× 1 0 assembly
4 Tank and Cooling System 7 parts shunt-reactor-tank-cooling 1× 1 0 assembly
5 Bushing Set 4 parts shunt-reactor-bushings 1× 1 0 assembly
6 Vibration and Noise Control 4 parts shunt-reactor-noise-control 1× 1 0 assembly
7 Conservator and Preservation 4 parts shunt-reactor-conservator 1× 1 0 assembly
8 Protection and Monitoring 8 parts shunt-reactor-protection 1× 1 0 assembly
9 Control and Marshalling Cabinet 8 parts shunt-reactor-marshalling 1× 1 0 assembly

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