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Substations · integrated

Skid-mounted and containerised substations

Transformer, MV switchgear and LV board assembled on a steel frame or inside a transportable enclosure, wired and tested in the factory. On site: site acceptance, connections and commissioning still need to be planned.

Skid · container · e-houseWired & tested in the factoryIEC 62271-202Delivered in 16–20 weeks
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Tell us the product, approximate rating and your e-mail. We will review the requirement and identify any missing information. For voltages, delivery country and project details, use the full configurator.

Medium-voltage substations in transportable enclosures, ready for shipment
The substation travels with the site. A skid or a container can be dismantled, reloaded and reinstalled elsewhere. That matters for temporary power, a construction base, a provisional extension, or an asset that must be removable at end of life.
Solar option within the skid range

Inverter, step-up transformer and MV interface in one integrated assembly

The photographed unit is not a separate product family. It is a solar configuration of our skid or containerised substation: the inverter section, step-up transformer, MV switchgear and plant interfaces are engineered together for the project and factory-tested before shipment.

The accepted electrical architecture, protection, grid code, ventilation and documentation scope are confirmed against the plant and utility specification.

Solar inverter and step-up transformer integrated on a project-specific skid

Why an integrated unit rather than loose equipment

On a conventional substation the transformer, the MV switchgear and the LV board arrive separately and are married on site. Every interface is then a risk: a dimension that does not land, a busbar to rework, a fault that only shows at energisation, with a different contractor responsible for each package. An integrated unit moves that work into the factory. Everything is assembled, wired and tested as one before shipment, then delivered as a single object under a single responsibility, ours.

The gain shows up on site. Civil works must suit the ground conditions, loads and approved layout; the unit is craned onto a prepared bearing surface. The time to energisation depends on site readiness, connection tests and the network operator. And where a project involves several identical substations, a solar farm or a site built in phases, the second unit is an exact copy of the first, which a substation built in place never guarantees.

Where they are used

This format has taken hold wherever power arrives before buildings do. Battery storage projects and solar and wind farms use it as a step-up substation, close to the inverters or the machines. Data centers use it to deliver capacity in phases without committing a permanent room at every step. High-power EV charging hubs get a complete substation on a small footprint. Industrial sites, quarries, ports and construction bases value being able to power a zone without committing to a building.

If your substation is meant to stay put and to mark the boundary with the public network, look at the prefabricated MV substation instead. Above 36 kV, see the engineered HV substation.

Skid, container or e-house

The choice comes down to three questions: does anyone need to walk inside, does the unit need to move, and what rating must it carry.

CriterionOpen skidContainerisedE-house
Principlewelded steel frame, equipment mounted on topclosed enclosure, ISO container or bespokeprefabricated electrical building, walk-in
Operator accessfrom outsideservice doors, no aisleinternal operating aisle
Usual ratingup to ≈ 2,000 kVAup to ≈ 2,500 kVAseveral MVA, several bays
Transportlifting lugs, lashed on a flatbedISO corner castings, standard handlingmodules, abnormal load possible
Civil workslevel bearing, ground beamslevel bearing or padsdesigned slab
Climate controlnot applicablenatural or forced ventilationventilation, heating or air conditioning
Natural groundBESS, solar, constructiondata center, EV charging, industry, portsprocess industry, high rating

Indicative values. Real limits depend on voltage level, cooling method and the transport constraints to your site, confirmed at quotation and validated with the factory.

MV switchgear: what actually decides the substation

In an integrated substation the transformer draws the attention, but the medium-voltage switchgear sets the architecture, the safety level and, more often than not, the lead time. It does three things: connect the substation to the network, protect the transformer, and allow safe isolation for operation. It is also the cost item on which two apparently identical offers diverge the most.

Three elementary functions

A switch-disconnector (IM) cubicle opens and isolates an incomer or a feeder: it is the connection building block. A switch + fuses (QM) cubicle adds fuse protection of the transformer; compact and economical, it covers the usual distribution ratings. A circuit-breaker (DM) cubicle protects through a digital relay: more expensive, it becomes necessary beyond the fuse range, where selectivity must be adjustable, or where the network operator requires it at the delivery point.

Single feed or ring

A single-feed substation has one incomer and one protection: the shortest and cheapest configuration, but an outage upstream takes the site down. A ring substation adds a second incoming cubicle (2 × IM + protection) and can be fed from either side of the MV loop. In France the choice is not free: it follows the local network operating scheme and NF C 13-100. Settle it before pricing, because it changes the cubicle count and the enclosure footprint.

The classes that matter: LSC, PM, IAC

Three IEC 62271-200 classes describe what happens during operation and under fault. Loss of service continuity (LSC) states which part of the board stays live during work on one cubicle: LSC2A allows access to a cubicle's cable compartment without de-energising the others, LSC2B without even de-energising that cubicle's busbar. Partition class PM means the internal separations are metallic and earthed, rather than insulating (PI). Internal-arc classification (IAC) is read together with its accessible sides — AFLR for front, lateral and rear — and with a current in kA for a duration: an "IAC" quoted without kA/s means nothing. We fix all three at quotation, according to who operates the substation and how accessible it is.

Fluorinated-gas-free by design

For EU medium-voltage switchgear up to and including 24 kV, Regulation (EU) 2024/573 addresses putting into operation from 1 January 2026, with specified derogations. The breaking medium and insulation medium must both be checked against the project requirements. Article 13

Why the switchgear drives the lead time

A distribution transformer is built in a few weeks. A complete MV board requires type-test evidence valid for the exact configuration delivered, and if your operator mandates a switchgear brand, procurement leaves our usual route. That is why we ask for the function, the cubicle count and any mandated brand at enquiry stage rather than at order.

Typical specification

MV voltageup to ~36 kV; 15 / 20 kV common in France
LV voltage400 / 230 V · 50 Hz (other voltages on request)
Rating250 kVA to several MVA depending on the format
TransformerCast resin (dry-type) or oil / ester immersed with bund
MV switchgearFluorinated-gas-free cubicles — vacuum interruption with solid or air insulation, per Regulation (EU) 2024/573
LV boardIntegrated main board, outgoing ways and metering as required
EnclosureSteel skid, 20 ft / 40 ft ISO container, or bespoke enclosure
ProtectionIP and IK per site exposure, corrosion protection matched to the environment
HandlingLifting lugs, fork pockets or ISO corner castings by format
StandardsIEC 62271-202 (prefabricated substation) · IEC 62271-200 (MV switchgear) · IEC 60076 (transformer) · IEC 61439-2 (LV assembly, design verification) · NF C 13-100 where it is a delivery substation
Switchgear classesService continuity LSC2A or LSC2B, PM partitioning, internal-arc classification IAC AFLR, kA/s value fixed at quotation
TestingRoutine tests on the transformer, tests on the assembled unit, witnessed FAT available
Delivered lead time16 to 20 weeks, manufacture + transport (confirmed at quotation)

Medium-voltage switchgear usually drives the lead time, ahead of the transformer. If your operator mandates a switchgear brand, say so at enquiry stage.

Integration levels

Two units of identical rating can carry very different functions. These four options combine freely; name the ones that apply at enquiry stage, since they often weigh more on price and lead time than the rating itself.

OptionWhat the unit carries in additionWhen it makes sense
Measurement and controlPower-quality meter, temperature monitoring, local alarm reportingCommon baseline, present on every configuration
Remote-management terminalCommunication gateway, remote access to readings and alarmsUnmanned site, distributed fleet, remote operation
Integrated conversion (PCS)Bidirectional inverter housed in the same unit as the transformationBattery storage, solar coupling, grid injection
Separate DC-DC roomDedicated compartment for DC-DC converters, testing includedDC-bus storage architectures

The unit can also take two transformers in one enclosure, or withdrawable LV ways in place of fixed outgoing ways. These choices change footprint and transport: settle them before manufacturing starts.

Compliant and ready to connect

Placed on the EU market under our own brand, the unit ships with CE marking, EU Declaration of Conformity and full technical documentation. Conformity of the transformer (Ecodesign Tier 2, IEC 60076), of the medium-voltage switchgear (IEC 62271-200), of the low-voltage assembly (IEC 61439) and of the prefabricated substation as a whole (IEC 62271-202) is our responsibility as manufacturer. Where the unit marks the boundary with the public network, the design follows NF C 13-100 and the distributor's requirements; exact clause applicability is confirmed with the DSO and the factory.

One point deserves early attention: transport and lifting constraints. Total mass, sling points, road envelope and crane access at the setting-down point drive the format as much as the rating does. We fix them during the study, with general arrangement drawings and a lifting note.

Frequently asked

What is the difference between a skid and a concrete prefabricated substation?

A concrete prefabricated substation sits on a slab and stays there. A skid is a welded steel frame designed to be lifted, transported and set down again: it moves with the site. A skid needs less civil work but imposes lifting and lashing constraints. We supply both.

Is the unit tested before shipment?

Yes, and that is the main point of an integrated unit: transformer, MV switchgear and LV board are wired and then tested together in the factory, with routine tests on the transformer and tests on the assembled unit. Factory acceptance tests can be witnessed, on site or remotely. See our test protocol.

Can a standard ISO container be used?

Yes for most configurations up to roughly 2,500 kVA, in 20 ft or 40 ft. Above that, or where an internal operating aisle is needed, the unit moves to a non-standard enclosure or an e-house. An ISO container markedly simplifies transport, lashing and port handling.

What is the lead time for a containerised substation?

Allow 16 to 20 weeks delivered to site. The medium-voltage switchgear usually drives it, not the transformer: if your operator mandates a switchgear brand, say so at enquiry stage. The exact date is confirmed at quotation.

Is it suitable for a BESS or solar project?

That is its natural ground. Solar farms, wind farms and battery storage projects commonly use skid-mounted or containerised step-up substations: they install quickly, repeat identically from one unit to the next, and can be removed at end of life.

What is an e-house?

An e-house is a larger prefabricated electrical building that an operator can walk into: an operating aisle, lighting, ventilation or air conditioning, sometimes several bays. It is chosen when operation requires internal access, or when the rating exceeds what a compact enclosure allows.

Project essentials

Agree the complete supply scope

ScopeWhat the quotation needs to define
EnclosureConcrete, metal or in-building arrangement is subject to the specification, manufacturing route and supporting evidence. A metal alternative needs the client’s approval.
Equipment and factory workTransformer, switchgear, LV board, internal links and factory tests are itemised in the quotation.
Cable links between substationsSeparate scope: route length, cable quantities per phase, conductor and screen ratings, fault current, clearing time, ducts and terminations must be checked against the interfaces at both ends.
Site workCivil works, ducts, unloading, lifting, earthing, cable pulling, terminations, testing and commissioning are assigned explicitly to each party.
Documents and acceptanceComponent reports do not by themselves demonstrate the complete assembly. The agreed dossier identifies applicable assembly verifications, drawings, routine tests and any type-test evidence.
Delivery and programmeDelivery point, Incoterm, import responsibilities and a project schedule are confirmed in writing. A generic transformer lead time does not establish a complete substation schedule.

For EU MV switchgear up to and including 24 kV, the F-gas rules concern putting equipment into operation from 1 January 2026, with specified derogations. We study fluorinated-gas-free insulation with suitable switching technology. Vacuum interruption alone does not establish that insulation is SF6-free. Regulation (EU) 2024/573, Article 13.

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