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SCB dry type transformer room design starts from the offered unit’s outline drawing, declared enclosure type and the project’s fire and access rules — not from a generic kVA table or a copied clearance sketch. Coordinate the service envelope, fire behaviour class request, compartment interfaces and maintenance routes on approved drawings first; treat heat rejection and airflow as a linked but separate engineering package handled in the dry-type transformer ventilation guide.

An indoor SCB dry-type transformer room must fit the offered unit: its outline dimensions, terminal arrangement, cooling-air direction, enclosure category, lifting points and documented service envelope. The Siemens cast-resin planning guide and the ABB dry-type transformer design guide both treat manufacturer outline data as the basis for room layout, circulation and inspection access. Nameplate kVA alone does not define wall positions, door swings or fire interfaces.
Begin the multidisciplinary review once the electrical designer has frozen the one-line diagram, the proposed transformer configuration and the room’s place in the wider power transformer selection hub documentation set. Mechanical, fire, structural and procurement disciplines then work from the same drawing issue rather than from assumptions carried over from another project.
Construction terminology for common SCB families — epoxy resin versus resin cast — appears in the SCB10 10 kV epoxy resin dry-type transformer explainer and the SCB14 6 kV resin cast dry-type transformer overview. Those pages support product-family reading; they do not replace the outline drawing for room design.
Clearances serve more than one purpose at once: cooling-air movement, terminal access, inspection, lifting, cable entry, panel door swing and safe working space around live parts. IEC 60076-11 treats several installation conditions, including restricted ventilation, as matters for agreement between purchaser and manufacturer rather than as values that can be copied from an unrelated project.
Important: Do not publish or procure against a generic clearance mm figure taken from another transformer, room or jurisdiction. Show the OEM service envelope on coordinated plans and sections, then let the project electrical rules, access standards and fire engineer review the result; source context: IEC 60076-11 special service and agreement clauses.
| Clearance / envelope item | Drawing evidence required | Review question | Send with quote |
|---|---|---|---|
| Overall outline and lifting points | OEM outline drawing on plan/section | Is the handling route free from beams, ducts and switchgear? | Yes |
| Cooling-air approach and departure zones | Outline plus airflow direction arrow | Do walls, doors or cable trenches block the declared path? | Yes |
| HV/LV terminal and cable-entry space | Terminal arrangement detail | Can cables terminate without violating the service envelope? | Yes |
| Control-panel and monitor access | Panel elevation and door swing | Can operators reach interfaces without removing room finishes? | Yes |
| Inspection and cleaning access | Maintenance side identification | Can routine tasks be done without dismantling unrelated equipment? | Yes |
| Fire-compartment boundary distance | Fire strategy drawing | Does the layout respect the agreed compartment line and egress? | Yes |
The table is a coordination register, not a spacing code. The transformer OEM, electrical designer and fire engineer remain the decision owners.
IEC 60076-11 distinguishes non-enclosed, enclosed and totally enclosed dry-type transformer arrangements. The category changes how room air reaches the active cooling surfaces and how much of the thermal path sits inside the equipment boundary. The SGB-SMIT cast-resin planning guide similarly treats enclosure protection and airflow as a single review item for installation planning.
| Enclosure category (IEC terminology) | Room-design consequence | Typical coordination note |
|---|---|---|
| Non-enclosed | Room surfaces and openings form much of the cooling boundary | Wall/louver positions must match OEM airflow direction |
| Enclosed | Equipment shell modifies the air path; room still provides intake/exhaust | Do not assume the room can shrink because an enclosure exists |
| Totally enclosed | Heat rejection path depends on the offered cooling arrangement | Confirm whether remote heat exchanger, ducted or other means are in scope |

An enclosure can address contamination or touch protection while creating a ventilation constraint. That is why enclosure selection belongs in the same room-design workshop as clearance and access, not in a late procurement addendum.
Fire behaviour class is part of the purchase specification vocabulary for dry-type transformers in IEC 60076-11. F0 and F1 describe defined fire-behaviour categories used when the purchaser and manufacturer agree that fire performance is part of the requirement. The standard introduces the classes; it does not make every dry-type transformer in every room automatically F0 or F1 without an agreed specification and a manufacturer statement for the offered design.
Use the classes as RFQ language:
Fire class describes transformer fire behaviour under the standard’s definitions. It does not, by itself, replace the building fire engineer’s work on compartmentation, detection, suppression, egress or local code routes.
Fire strategy reaches the transformer room through boundaries, penetrations, cable routes, detection, shutdown logic and emergency access — not only through the transformer body. The Siemens planning guide specifically flags coordination where ventilation ducts cross fire-rated construction. That is an interface item for the fire engineer and the responsible authority, not a detail the HVAC designer resolves alone.
Heat rejection, loss schedules, fan duty and the complete airflow path belong in the dedicated dry-type transformer ventilation guide. This article stops at the interface: the room layout must leave space and penetrations that the ventilation design can use without contradicting the fire strategy.
Room design fails operationally when a technically acceptable layout cannot be serviced. The ABB guide links layout to routine inspection; the Siemens guide expects maintenance and handling clearances to remain available after installation. Treat access as an operational requirement with the same status as electrical clearance.
| Maintenance task | Access input to show on drawings | Common layout failure |
|---|---|---|
| Visual inspection of windings and connections | Unobstructed viewing sides | Switchgear placed in the inspection line |
| Terminal tightening and cable work | Working space at HV/LV terminals | Cable trenches that block hand access |
| Lifting or rolling for major work | Path from delivery door to pad | Narrow doors or turns not checked against outline |
| Filter or screen cleaning (if applicable) | Reach to intake screens or panels | Architectural louvers without service clearance |
| Monitor, sensor or fan service | Panel door swing and stand-off | Panel mounted flush to a wall with no working space |
Agree which tasks will be performed with the unit energized versus isolated, and reflect that in the room access plan and the site operating procedure. The room drawing should make the chosen approach credible.
Room-design intentions bind only when they are written into the RFQ and returned on the OEM drawing set.
| RFQ item | Why the supplier and designer need it | Send with quote |
|---|---|---|
| Transformer configuration and quantity | Fixes the outline basis | Yes |
| OEM outline drawing with service envelope | Controls clearances and lifting | Yes |
| Enclosure category and options | Links equipment boundary to room | Yes |
| Requested F0/F1 class, if applicable | Makes fire behaviour an explicit requirement | Yes |
| Room plan, sections and door schedule | Shows walls, openings and routes | Yes |
| Fire-compartment strategy and penetration list | Coordinates rated boundaries | Yes |
| Cable-entry locations and trench routes | Prevents terminal-space conflicts | Yes |
| Maintenance and inspection access requirements | Preserves operability | Yes |
| Site conditions from IEC special-service list | Triggers OEM review of environment | Yes |
| Ventilation responsibility statement | Separates room layout from airflow design | Yes |
| Interface responsibilities (OEM / EPC / fire / HVAC) | Avoids silent gaps | Yes |
| Required documentation set and deviations | Makes the offer reviewable | Yes |
If mechanical ventilation is in scope, attach or reference the loss-led ventilation input package described in the sibling ventilation article so the supplier and HVAC designer share one duty case.
Once the outline drawing, enclosure request, fire-class language, access plan and interface list exist, a resin-insulated dry-type configuration can be discussed against project documents. The JUBANG 35 kV resin-insulated dry-type transformer page is a product-family starting point for that conversation. It is not a pre-approved answer for every room, fire class or clearance envelope.

This page assigns no universal clearance value, F0/F1 class, fire rating or compliance outcome to any JUBANG product. Those values come from the offered design, the approved drawings and the project’s engineering authorities.
Next step: send the approved room drawing package — outline drawing, room plans, enclosure and fire-class request, site conditions and required document list — for a project-specific configuration review.
The clearances needed are those shown on the OEM outline drawing for the offered configuration, plus the project’s electrical, access and fire rules. There is no single mm table that applies to every SCB room; coordinate the documented service envelope instead of copying another project.
Both are fire-behaviour categories defined in IEC 60076-11 for dry-type transformers when the purchaser and manufacturer agree that fire performance is part of the requirement. The exact meaning is standard-defined; confirm which class applies to the offered unit in the supplier documentation.
Non-enclosed, enclosed and totally enclosed categories change how room air and equipment boundaries interact. Enclosure choice can help with contamination or touch protection while altering the ventilation path, so it must be fixed before final room dimensions are issued.
At minimum: the OEM outline and service envelope, terminal and cable-entry zones, cooling-air direction, lifting and maintenance paths, door swings, fire-compartment lines and major penetrations. Ventilation calculations and fan duties belong in the separate ventilation input package.
Through compartment boundaries, rated doors, penetrations for ducts and cables, detection and shutdown interfaces and egress — coordinated with the fire engineer. Transformer fire class is one input; it does not replace the building fire design.
Plan credible access for inspection, terminal work, cleaning of intake components if used, panel service and any agreed lifting or rolling path for major maintenance. Show these routes on the room drawings before construction fixes walls and equipment positions.
Outline drawing, enclosure type, F0/F1 request if applicable, room plans and sections, fire-interface list, cable routes, site conditions, maintenance requirements, interface responsibilities and the documentation set expected in the offer.
Room layout and clearances are owned in this specification path. Loss schedules, airflow paths, fan duty and the ventilation RFQ register are owned in the dry-type transformer ventilation guide. Link both packages on multidisciplinary drawings.