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Substation auxiliary power systems are the low-voltage AC and DC supplies that feed the station’s own equipment: protection, control, communications, transformer cooling, heating, lighting and safety loads. The primary circuits move energy to customers, while the auxiliary systems keep the substation itself observable, controllable and safe. Design guidance such as IEC 61936-1 treats batteries and the associated protection, control and auxiliary systems as part of the installation itself, not as an afterthought.
Before any supplier can quote a substation package, someone has to answer three questions: which loads exist, which of them must survive a loss of AC supply, and for how long. This guide walks through that reasoning and ends with the RFQ inputs a supplier needs.

Start with a load inventory rather than a system diagram. Every substation consumes energy for its own operation, and each of those consumers is an auxiliary load: protection relays, breaker mechanisms, control and interlocking circuits, SCADA and communications equipment, transformer cooling fans and pumps, tap-changer drives, anti-condensation heaters, ventilation, lighting and socket outlets.
Two supply systems serve that inventory. The AC auxiliary supply carries the larger continuous and thermal loads, and the DC auxiliary system carries the loads that must never be interrupted. Technical references on station DC supply put it plainly: when the AC source sags or is lost, the DC system must still trip and close breakers, power protection and control, and keep communications alive long enough to bring the network to a safe state.
For readers building broader context on the equipment itself, the overview of substation equipment covers the primary apparatus that these auxiliary systems serve.
The AC side normally begins at one or more station transformers or local network connections, runs through a main distribution board, and splits into feeders for cooling, heating, lighting and general station services. Its arrangement is a reliability decision before it is an electrical one.

Ask the project team to settle the following points early:
A single station transformer can be acceptable for one project and unacceptable for the next. Duplication practice differs between owners, which is why the reliability requirement belongs in writing before the enclosure or board is chosen.
Unlike the AC side, the DC auxiliary system is built around stored energy. Its core is a battery, a battery charger and a DC distribution board with monitoring, as described in the reference material on substation DC auxiliary supply. A station can operate one DC system or several, and owners with higher availability requirements duplicate the battery and charger sets and connect the sections through a bus tie that stays open in normal service.
Why so much care for a small system? Because a failed DC supply can silently remove the station’s ability to detect faults, trip breakers and report its own state, a failure chain spelled out in the analysis of the auxiliary DC power system. Earth-fault detection, voltage supervision and charger alarms exist precisely because the DC system fails quietly rather than loudly.
Practitioner discussions also show that DC voltage levels and battery arrangements vary widely between utilities and plants. Treat the DC nominal voltage, the number of systems and the supervision scheme as owner decisions to confirm, not as catalog defaults.
Allocate each load deliberately, because the allocation defines what survives an AC outage. Segregation between essential and non-essential feeders also decides how quickly staff can restore comfort loads without touching protection circuits.
| Load group | Typical supply | Reasoning to record |
|---|---|---|
| Protection relays, trip coil and close coil circuits | DC, battery-backed | Must operate during the exact moment AC is disturbed |
| SCADA, RTU and communications equipment | DC, battery-backed | The network operator must see and command the station during outages |
| Emergency lighting and safety systems | DC or dedicated backup per owner rule | People may need to work in the station during a blackout |
| Transformer cooling fans, pumps and tap-changer drives | AC, essential feeder | Large motors are impractical on batteries; loss tolerated briefly with load limits per OEM guidance |
| Anti-condensation heaters, ventilation, general lighting, sockets | AC, non-essential feeder | Comfort and condition loads that can wait for supply restoration |
Do not copy this table into a specification as-is. It is a starting point for the project’s own load inventory, and the owner’s operating philosophy, the OEM manuals and the applicable standards decide the final allocation.
In normal service the battery charger is the real DC source: it carries the continuous DC load and keeps the battery on float charge. The battery discharges only when the charger or its AC feed is lost, or when a momentary load such as a breaker operation exceeds the charger’s capability. That division of labour is why charger supervision matters as much as battery condition.
Battery capacity is not guessed. Recognized sizing practice, summarized well in the Battery Design overview of the lead-acid sizing method, works from a defined duty cycle: the sequence of continuous, intermittent and momentary loads the battery must carry for the required backup time, with corrections for temperature, ageing and design margin so voltage never falls below what the connected equipment tolerates.
Three inputs therefore come from the project, not from any article: the load inventory with durations, the required backup time set by the owner, and the minimum voltage windows of the connected equipment. Battery technology choice, cell count and capacity follow from those inputs in the responsible engineer’s calculation.
In a compact or prefabricated substation, the auxiliary systems share one documented enclosure with the primary equipment. The product standard for such assemblies, IEC 62271-202, frames them as enclosed assemblies with defined service conditions and rated characteristics, which means auxiliary circuits, heaters, lighting and monitoring are part of the configuration the supplier documents rather than a site improvisation.
That integration changes the buyer’s job in three ways:
Compact stations are attractive partly because this engineering arrives pre-coordinated, a theme explored in the article on the advantages of medium voltage substations. The coordination is only real, however, when the quoted configuration documents it.
Fit boundary: this guide helps a buyer scope auxiliary AC and DC systems and prepare an RFQ. It does not select a DC voltage, size a battery or charger, set autonomy times or define acceptance values; those are project- and OEM-controlled decisions that need a load study and the owner’s reliability requirement. Confirm the load inventory, the reliability requirement and the equipment voltage windows before fixing any arrangement.
For a substation package in which auxiliary circuits, monitoring and the enclosure are engineered together, begin with the YB-12 Intelligent Integrated Substation family from the prefabricated substations category. Where the priority is station-level supervision and data, the intelligent electrical system solution shows how JUBANG approaches monitoring integration. Both are family starting points: suitability, ratings and the auxiliary configuration of any quoted assembly must come from current JUBANG documentation and project review.

Send these RFQ inputs through Online Message so the review starts with substance:
For anything that does not fit a form, raise it with the engineering team through Contact Us.
Anything the station consumes for its own operation: protection relays, breaker mechanisms, control circuits, SCADA and communications, transformer cooling, tap-changer drives, heaters, ventilation, lighting and safety equipment. The load inventory should name every item with its duty type.
The AC system carries larger continuous and thermal loads economically, while the DC system provides stored energy for the loads that must ride through an AC disturbance. Removing either one leaves the station either unserviceable or unprotected.
Loads whose failure would prevent fault detection, tripping, closing, indication or operator visibility: protection, trip and close circuits, SCADA and communications, plus emergency loads the owner assigns to DC. The allocation is recorded per project, not assumed.
The responsible engineer builds a duty cycle from the load inventory and required backup time, then applies recognized sizing practice with temperature, ageing and design-margin corrections so voltage stays above the equipment minimum. No generic capacity value substitutes for that calculation.
Sometimes. The owner’s reliability requirement decides whether a second source, a transfer scheme or duplicated DC systems are required, and practice differs widely between utilities and industrial plants. State the requirement in the RFQ instead of assuming a default.
Auxiliary circuits, heaters, lighting and monitoring form part of the documented assembly configuration, engineered together with the primary equipment inside one enclosure. The supplier’s configuration documents, not the product family name, establish what a specific unit includes.
The load inventory with duty types, AC source and transfer expectations, required backup time, equipment voltage windows, monitoring scope, expected documentation, quantity and delivery terms. With those inputs a supplier can propose an arrangement worth reviewing.