
At a glance
| Country | Kenya |
|---|---|
| Location | Nairobi |
| Application | Urban and peri-urban distribution reinforcement |
| System | 33 kV/11 kV distribution substation — transformer, RMU, LV switchgear, power distribution cabinets and related accessories |
| Voltage | 33 kV incoming / 11 kV outgoing |
| Frequency | 50 Hz |
| Standards basis | IEC 60076 series (transformer), IEC 62271-200 (MV switchgear), IEC 61439-1/-2 (LV assemblies), IEC 60529 (enclosure protection) |
| Completion | Commissioned March 2023 |
The engineering problem
A 33 kV/11 kV step-down point in a growing city carries two competing demands. It has to absorb load growth without repeated outages, and it has to fit into a constrained urban plot alongside existing feeders.
At 33 kV the incoming supply is usually a ring or a looped radial. That makes ring main unit switching the practical choice: the substation can be fed from either direction, and a fault on one section can be isolated without dropping the transformer. Air-insulated open busbar work at this voltage would need clearances that an urban plot rarely has, so a metal-enclosed, compartmented switching arrangement is what fits.
On the 11 kV and LV side the issue is fault energy and selectivity. As distribution capacity grows, prospective fault current at the LV board rises, and the switchgear short-time withstand rating has to be chosen against the transformer impedance rather than against the load current alone.
Nairobi’s climate adds a third constraint: sustained humidity, seasonal dust and lightning activity on overhead feeders. Insulation coordination, surge protection and enclosure sealing carry real weight here, not just paperwork weight.
System configuration
| Item | Description | Specification notes |
|---|---|---|
| Power transformer | 33 kV/11 kV distribution transformer | Rating, vector group and impedance set by the project's load and fault-level study — see *Details to confirm* below |
| 33 kV ring main unit | Metal-enclosed MV switching and protection for the incoming ring | Type-tested to IEC 62271-200; internal arc classification and cable-box arrangement matched to the incoming cable |
| 11 kV / LV switchgear | Outgoing distribution switchboard | IEC 61439-1/-2 assembly; short-time withstand coordinated with transformer impedance and cable let-through |
| Power distribution cabinets | Feeder and auxiliary distribution enclosures | Segregation form, busbar current density and cable termination space defined by the outgoing schedule |
| Protection and metering | Overcurrent, earth-fault and transformer protection with associated CTs/VTs | Grading between incoming, transformer and outgoing stages; settings agreed with the network operator |
| Earthing system | Substation earth grid, equipment bonding and neutral earthing | Conductor cross-section sized for fault current and clearing time; step and touch potential checked against IEC 61936-1 practice |
| Surge protection | Arresters on exposed circuits | Rated voltage selected against system earthing arrangement and expected temporary overvoltage |
| Cable system and accessories | MV and LV cabling, terminations, glands, supports | Bending radius, screen bonding and gland sealing follow the accessory manufacturer's qualified method |
| Enclosure and civil interface | Foundation, cable trench, ventilation and access | Trench routing and pull-in points sized so cables are never bent inside the minimum radius |
Installation sequence

Site overview
The overview establishes the substation layout: incoming 33 kV route, transformer position, MV switching room and LV distribution. Layout is not cosmetic. It fixes cable lengths, and cable length fixes voltage drop, screen-bonding scheme and the pulling tension a contractor can apply without damaging insulation. It also fixes access — a transformer that cannot be withdrawn later for repair is a maintenance liability for the life of the asset. Clearances to walls, ventilation paths and the position of the earth grid relative to the equipment footprint are all resolved at this stage, before any concrete is poured.

Transformer placement
Setting the transformer is the critical lift of the project. Rigging points are the ones the manufacturer provides, and the sling geometry has to keep the resultant through the unit’s centre of gravity — a transformer’s mass is offset toward the core and windings, not the tank centre. The plinth is checked for level before the unit is lowered; out-of-level seating loads the tank base unevenly and can distort gasket compression at the cover and radiator flanges. After placement, oil level, gas relay and gasket condition are inspected, and the unit is left to settle before terminations are made.

MV switching
The 33 kV ring main unit is positioned, levelled and bolted down, then the incoming and interconnecting cables are terminated. Terminations are the most failure-prone part of an MV installation: semiconducting screen cut-back length, cleanliness of the insulation surface and correct stress-cone seating decide whether the joint survives. Cable screens are bonded to the RMU earth bar with a conductor sized for the prospective earth-fault current. Mechanical interlocks between switch, earth switch and cable compartment access are proved by operation, not assumed, before the compartment is closed.

LV distribution
The LV switchboard is assembled, aligned and bolted so that busbar sections meet without being pulled into position — forcing alignment leaves permanent stress at the joint. Every busbar and terminal connection is torqued to the stated value and marked. Under-torqued joints raise contact resistance, and contact resistance is what turns a rated joint into a hot spot; over-torqued joints relax as the bolt yields. Insulation resistance is measured phase-to-phase and phase-to-earth, and protective device settings are checked against the grading study before the board is made live.

Feeder distribution
The distribution cabinets are set, bonded and cabled. Each cabinet’s protective earth path is proved by continuity measurement back to the main earth bar — a painted or powder-coated panel face is not a conductor, so bonding relies on the dedicated earth studs and serrated washers. Gland plates are fitted so the cable entry is sealed against dust and water ingress to the enclosure’s declared IP rating, and single-core cables are glanded through non-magnetic plates to avoid induced circulating currents and local heating. Circuit identification and as-installed schedules are completed here rather than after energisation.

Completed substation
Before energisation the substation is proved as a system. Transformer ratio and vector group are verified, insulation resistance and, where specified, oil condition are recorded, earth grid resistance is measured, and protection is tested end-to-end by injection so that the relay, the CT circuit and the trip coil are confirmed as one chain. Interlocks, labelling, signage and access control are checked. Only then is the substation charged in a controlled sequence, with load applied progressively while temperatures and readings are monitored.
Specification options
For a comparable 33 kV/11 kV enquiry, MARS can configure the voltage ratio and tapping range, capacity, vector group and impedance, copper or aluminium windings, oil-immersed or cast-resin construction, and cooling from ONAN through ONAF or AF for dry-type units. Insulation class, temperature-rise limits and overload capability can be set for the site ambient. Enclosures can be supplied in the required IP rating and corrosion protection class, with anti-condensation heating and ventilation for humid climates. Protection and monitoring interfaces range from conventional relays through winding-temperature indication, gas relay and oil-level contacts to full digital monitoring with IEC 61850, Modbus RTU/TCP or DNP3 communication. RMU and LV assemblies can be extended, reconfigured or supplied with alternative internal arc classification.
What we need to quote a comparable system
Send as many of the following as you have. Missing items are not a problem — we will ask.
- Single-line diagram of the substation and its connection to the network
- Incoming and outgoing voltages, tapping range and required vector group
- Transformer capacity, expected loading profile and overload requirement
- System fault level and required short-time withstand rating and duration
- Neutral earthing arrangement and protection philosophy, with the grading study if one exists
- Site ambient temperature range, altitude, humidity and pollution or salinity level
- Utility or network operator specification and approval requirements
- Number, size and type of incoming and outgoing cables, plus entry direction
- Communication protocol and SCADA or monitoring interface required
- Enclosure IP rating, corrosion protection class and paint specification
- Civil interface: foundation and trench drawings, available access route and lifting equipment
- Delivery terms, destination port, required documentation and test certificates