Sizing Trafo Substation for BESS
Hey everyone, I hope this is the right place to ask this, and please note Im a junior so please dont mind any stupid statement I may express and sorry for the long post in advance.
I just wanted to check with you if this is correct:
First the BIG picture:
LV BESS output (integrated inverter, lets say 690 VAC or 800VAC) ->LV AC cables/busbar->LV combiner/LV switchgear (breakers, metering, aux power tap-off) -> STEP UP TRANSFORMER( primary 690/800 V to 20/33/35 kV) it has to be biDirectional ->MV cable->MV switchgear/ RMU (Ring Main Unit or breaker cubicles )-> UTILITY POI/ Collector Substation
Complete List of Components:
BESS Unit ( Battery + Inverter)
LV Busbar/ combiner cabinet
LV Circuit Breakers (ACB/MCCB) per BESS feeder
StepUP power transformer
MV Switchgear( RMU or
Protection Relays, CT's and VT's
Surge Arrectors/ SPD's
Auxilary Transformer
LV axillary distrubution box
UPS
ATS ( automatic transfer Switch)
Metering and measurement control unit
Fire and Gas detection
Temp and humidity controller
MV & LV cables / busbar (TMY copper bus)
Enclosure / container / civil works
Interlocking system
Parameters to specify for each component
Step-up transformer
- Rated Power KVA
- the transformer's rated kVA must slightly exceed the maximum continuous apparent power the BESS array can push through it
- Rated Voltage
- 690 V AC or 800VAC/ 20 or 33 or 35 kVA
- Vector Group
- must match the grounding scheme you intend on both sides (e.g., Dy11 gives you a grounded LV neutral for auxiliary loads while keeping the MV side delta-connected; confirm this matches your PCS's expected grounding).
- Impedance
- higher impedance limits how much fault current the transformer lets through (helpful for keeping downstream switchgear/cable ratings lower and cost down), but increases voltage drop under load and slightly increases losses. 6–8% is typical for this power class;
- Cooling type
- ONAN (oil, natural cooling) is standard for this size; if your site is hot and/or high-altitude, either oversize the transformer or specify forced cooling (ONAF)
- Insulation/ temperature class and rise
- 105°C insulation, ~55–65 K average winding rise
- Tap changer
- an off-load tap changer (e.g. ±2×2.5%) lets you compensate for a grid voltage that's persistently a bit high or low;
- Oil type and protections
- Mineral oil (PCB-free); pressure relief valve,
- Buchholz/gas relay, oil/winding temperature indicators, oil level indicator
- USUALLY BUCHHOLZ for protection
- Noise level
- ≤ 65 dB @ 0.3 m
- Dimension and weight
- Corrosion protection class
- Match to site environment (coastal, industrial, desert).
MV Switchgear/RMU
- Rated Voltage
- 24 kV (for a 20 kV system)
- pick equipment rated above nominal system voltage (24 kV class equipment for a 20 kV system, 36 kV class for a 33/35 kV system).
- Rated Current (busbar and feeder)
- must exceed the transformer's MV-side full-load current with margin but the cable/cubicle current rating and the transformer size are usually decoupled (a 630 A-rated RMU cubicle can serve transformers well below its current rating; current rating is about the switchgear's own thermal limits, not a direct multiple of transformer kVA).
- Rated short-time withstand current
- Must exceed the utility's prospective fault current at your point of connection
- ex.20–25 kA / 1–3 s
- get the prospective fault level at your point of connection from the utility (or from a system fault study) and specify switchgear rated at or above it, with margin for network growth.
- Rated Peak withstand Current
- ~50 kA
- The "first-cycle" asymmetrical fault current rating; coordinated with the above.
- Insulation Medium
- Environmental regulations increasingly restrict SF6 (high global-warming-potential gas)
- SF6, vacuum, or SF6-free (air/dry)
- SF6
- Internal arc classification
- e.g. AFLR 20 kA/1 s
- Personnel safety rating confirm which sides (front/lateral/rear) are accredited.
- Witching Device type per cubicle
- Load-break switch (manual) vs. vacuum circuit breaker (electrical)
- Breakers are required wherever protection must clear a fault (e.g., transformer feeder); simple switches are fine for ring/loop sections.
- Withstand voltage (power-frequency & lightning impulse)
- Confirms insulation coordination with your surge arresters.
- Cable entry & size
- Bottom entry, up to 1×630 mm² or 3×630 mm²
- Confirm compatibility with your actual MV cable design.
- Interlocking
- Gas leakage rate (if SF6)
- decide SF6 vs. vacuum/SF6-free early this affects both environmental compliance and long-term maintenance (SF6 leak-rate monitoring, disposal rules).
- Breaker vs. switch: use an electrically-operated circuit breaker on the transformer feeder cubicle (it needs to clear internal transformer faults fast); simple manual load-break switches are adequate on ring/loop sections that don't need to interrupt fault current.
LV switch Gear
- Main incoming breaker rating (ACB)
- Size the main incoming breaker(s) to the transformer's LV-side full-load current, i.e. S_transformer / (√3 × V_LV), with headroom
- Per-BESS-feeder breaker rating
- Size each BESS feeder breaker to that unit's max continuous output current, with margin (don't run breakers at 100% of their frame rating continuously).
- Current transformers (metering/protection)
- e.g. 5000/5A or 6000/5A, 10P20
- Ratio should be close to actual full-load current for good metering accuracy, don't oversize the CT "just in case."
- Surge protection (SPD)
- LV-side transient protection, coordinated with the MV arresters.
- Type I+II, Iimp ≥ 12.5 kA
- Busbar (TMY copper) cross-section
- Confirm the busbar's continuous current rating exceeds the calculated (not just nameplate) current with margin, and check short-circuit withstand (thermal + mechanical).
Auxiliary power system
- Aux transformer rating
- List every auxiliary load (lighting, sockets, fans/heat exchangers, controls, comms, fire system, temp/humidity controller, battery chargers) and sum their connected kVA.
- 100–200 kVA (scales with the size of the main substation)
- Must cover lighting, HVAC/heat-exchangers, controls, comms, chargers, with margin — do a simple load list, don't just copy a "typical" number.
- Aux transformer ratio & vector group
- Size the aux transformer to that sum with margin (reference designs use 100–200 kVA aux transformers on 4.8–6 MVA main substations, a useful rough ratio is roughly 2–4% of the main transformer's kVA, but always do the actual load list
- 690/400 V or 800/400 V, Dyn11
- Confirms a neutral is available for single-phase LV loads.
- Main LV aux breaker
- Sized to aux transformer full-load current
- UPS rating & autonomy
- e.g. 1 kVA / 30 min, or 1 kW / 8 h
- Autonomy should exceed the time needed for an operator (or automatic system) to respond, or to ride through the longest expected aux-supply interruption
- ATS essential-load capacity
- Size the UPS by (a) the kVA of the loads that must ride through an outage (typically protection relays, RTU/comms, fire alarm) and (b) the autonomy time you need
- e.g. "Recommended Essential-Load Supply Capacity: 3 kVA"
- Confirms what will keep running (controls, comms, fire system) if the aux transformer or grid tap is lost.
- Size the ATS by the "essential load" kVA that must be kept alive from a backup source
- Socket/lighting/fan circuit ratings
- 16 A/2P sockets, 10 A/2P lighting, etc.
Environmental, mechanical & enclosure
- Operating temperature range
- Relative humidity
- Altitude rating
- IP/protection degree
- Corrosion category (ISO 12944)
- Cooling method
- Dimensions & weight
- Noise
- Standards compliance