High Voltage Step Up: Guide

33kV GIS switchgear is a medium-voltage gas-insulated assembly for switching, protection, isolation and distribution at 33 kV. The primary conductors, busbars and switching devices are enclosed in grounded compartments with controlled insulation, allowing a smaller footprint than many air-insulated layouts. This guide covers the 33 kV duty, ratings, interfaces, installation, maintenance and procurement checks.

33kV GIS selection in brief

  • Verify rated voltage, lightning impulse withstand, normal current, short-time withstand and fault interruption together.
  • Check cable terminations, pressure-relief direction, earthing switches and interlocks on the approved single-line.
  • Specify gas or alternative-insulation monitoring, filling, recovery and end-of-life responsibilities in the purchase contract.
LBAJI 35 kV box-type substation illustrating 33kV GIS project context
33 kV GIS is normally evaluated as part of the complete transformer and distribution bay, not as an isolated enclosure.

What Is Air-Insulated Switchgear?

AIS uses atmospheric air as the principal external insulation between energized parts and earth. Indoor medium-voltage AIS commonly has separate breaker, busbar, cable and low-voltage compartments. Outdoor high-voltage AIS uses bus conductors and equipment separated by open-air clearances.

Its strengths include visible construction, familiar maintenance, easier component access and often lower initial equipment cost. Its disadvantages are larger footprint and greater sensitivity to dust, salt, humidity, condensation and small animals if the enclosure or building is not controlled.

What Is Gas-Insulated Switchgear?

GIS encloses primary conductors, switching devices and busbars inside sealed grounded compartments. The controlled insulating medium permits smaller clearances, creating compact equipment resistant to external contamination. GIS is common where land is expensive, space is limited or the environment is severe.

LBAJI 35 kV Chinese-type substation product illustrating GIS installation interface
GIS bay layout must leave room for cable bending, pressure relief, lifting and future extension.

GIS vs AIS Comparison

FactorGISAIS
FootprintCompactLarger
Environmental exposurePrimary parts sealedMore exposed to air and contamination
Visual accessLimitedGreater
Routine primary maintenanceOften lowerGenerally more accessible
Specialized serviceGas/sealed-module skillsConventional air-insulated skills
Initial equipment costOften higherOften lower
Land/building costOften lower footprint costGreater space requirement

Footprint and Layout

GIS can dramatically reduce bay width and building area. However, total project footprint must include cable terminations, gas zones, pressure relief, lifting space and future extensions. AIS needs greater electrical clearance but can offer straightforward access and simpler building interfaces.

Reliability in Harsh Environments

Sealed GIS is attractive for coastal salt, industrial pollution, dust, high humidity and confined underground sites. AIS can also perform reliably when enclosure, heaters, ventilation, creepage distance and maintenance match the environment. Neither technology compensates for poor cable sealing or inadequate room control.

LBAJI 35kV oil-immersed transformer used as a GIS transformer-interface reference
Transformer ratings, impedance and cable interfaces determine the GIS feeder duty.

SF6 and Environmental Considerations

SF6 has excellent dielectric and arc-quenching properties but a very high global-warming impact. Projects using SF6 should define leakage limits, density monitoring, trained handling, recovery, reporting and end-of-life treatment. Regulations differ and continue to evolve.

Alternative designs use lower-GWP gas mixtures, clean air, vacuum interruption and solid insulation. “SF6-free” does not automatically prove overall environmental superiority; compare insulating medium, material use, losses, service life, repairability and recycling.

Maintenance and Diagnostics

AIS maintenance includes cleaning, insulation inspection, mechanism service, contact resistance, breaker timing, thermography and partial-discharge assessment. GIS reduces exposure of primary parts but requires density/pressure checks, leak monitoring, mechanism service and specialized intervention if an internal sealed component fails.

LBAJI oil-immersed transformer product illustrating 33kV GIS supply planning
Fault level, transformer connection and protection coordination should be recorded before final GIS selection.

Internal-Arc and Operator Safety

Both GIS and AIS can be tested for internal-arc performance. Specify accessibility sides, arc current, duration and installation conditions. Pressure-relief ducts and room volume must match the tested arrangement. Internal-arc classification reduces consequences under defined conditions but does not replace isolation, grounding, remote operation and safe work procedures.

Lifecycle Cost

Compare equipment, land/building, installation, outages, maintenance, gas management, spares, training and disposal. GIS may justify higher purchase price by reducing footprint and environmental maintenance. AIS may offer lower cost and easier repair where space and conditions are favorable.

Product Options

For conventional 12 kV metal-clad AIS, review KYN28A-12 switchgear. Compact sealed networks can use the LBHB-12 environmentally friendly RMU. For 40.5 kV applications, compare KYN61-40.5 AIS with HC-40.5 sealed ring-network switchgear.

Selection Checklist

  1. Voltage, current, insulation and fault ratings.
  2. Available room/land and future extension.
  3. Pollution, humidity, altitude and temperature.
  4. Internal-arc and pressure-relief requirements.
  5. Protection, cable and communication interfaces.
  6. Local gas regulations and environmental targets.
  7. Maintenance skills, spares and outage strategy.
  8. Complete lifecycle cost and end-of-life plan.

Main components of gas-insulated switchgear

GIS integrates busbars, circuit breakers, disconnectors, earthing switches, CTs, VTs, cable or bushing interfaces and gas compartments in grounded metal enclosures. Density or pressure monitoring, interlocks and relief arrangements are part of the primary safety system.

Questions to ask before choosing GIS

Confirm footprint and extension needs, gas or alternative insulation policy, leakage guarantees, environmental reporting, spare modules, cable interfaces, outage strategy and local service capability. Compact size is valuable, but lifecycle access and future bay additions can dominate the project decision.

Technical references and further reading

The following independent sources support the standards, terminology, calculations, and safety context discussed in this guide:

33kV GIS protection and cable interfaces

At 33 kV, the GIS specification should state the system earthing method, rated short-circuit current, peak withstand, duration, breaker operating sequence and cable termination type. Cable boxes, separable connectors or dry-type terminations impose their own clearances and test requirements. Coordinate the GIS bushing arrangement with the transformer, reactor, overhead-line transition or cable route shown on the one-line diagram.

Protection may include feeder overcurrent, earth fault, busbar differential, breaker failure and intertripping. A compact enclosure does not remove the need for CT saturation checks, relay coordination and arc-energy assessment. Define CT class, burden, ratio, polarity and test-terminal access at procurement stage. If the GIS includes a voltage-detection system, specify the interface and proving method used by the operating procedure.

Factory and site acceptance tests

Request routine-test records for dielectric withstand, main-circuit resistance, mechanical operation, wiring, interlocks, pressure or density alarms and control-circuit insulation. Site acceptance should confirm shipping damage, compartment identification, torque, cable termination workmanship, earthing, phase sequence, local controls, remote signals and protection trip paths. Test values must be compared with the manufacturer’s limits and the approved commissioning plan.

GIS equipment is often delivered in sections. Check flange cleanliness, enclosure bonding, alignment, lifting points and the specified joining procedure before assembly. If a gas or alternative medium is involved, record filling or evacuation data, leak checks and the responsible technician. Do not infer gas quality from a pressure gauge alone; use the method specified by the supplier.

Lifecycle service planning

Compact GIS reduces exposed primary parts, but it still needs an access and service strategy. Provide working space for cable testing, relay replacement, density-monitor inspection, pressure relief and lifting. Keep an equipment history with switching operations, alarms, test results and any medium handling. For environmentally sensitive installations, include recovery, recycling and disposal responsibilities in the contract.

A 33kV GIS quotation should identify the complete bay: busbar arrangement, feeder count, breaker duty, disconnectors, earth switches, CTs, VTs, surge arresters, cable terminations, auxiliary supply, communications and spare ways. Ask for drawings showing shipping dimensions and future extension points. Comparing only the panel face can hide civil, protection and commissioning costs.

Neutral technical video

Further viewing: The Engineering Mindset — How Three Phase Electricity works – The basics explained. This video provides background principles; it does not specify LBAJI equipment ratings or replace a project design.

How Three Phase Electricity works - The basics explained

Keep the GIS nameplate, bay drawing, cable schedule, relay file and medium-handling record together. This documentation lets a future team verify the rated duty and isolation boundary before opening a compartment or changing a relay setting. It also gives the owner a defensible record for planned maintenance and extensions. Label every isolated bay and retain the last approved switching diagram at the control point.