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Power & UPS

Battery Backup Reference

DOD limits by chemistry, temperature derating curves, DC bus voltage standards, battery type comparison, typical runtimes and IEEE 485 / EN 50272-2 rules. Use alongside the Battery Backup Estimator.

Last updated: June 2026

Terms

IECInternational Electrotechnical Commission
The international body that writes electrical safety standards used across most of the world outside North America. When a chart cites an IEC number, it's pointing to the official rulebook behind a calculation.
UPSUninterruptible Power Supply
A battery backup that keeps equipment running for a short time if mains power cuts out, giving generators time to start or equipment time to shut down safely.

Battery Chemistry Comparison

Common rechargeable battery types used in UPS, data centre and critical infrastructure backup systems.

ChemistryTypical DODCycle lifeEnergy densitySelf-discharge / monthTemperature rangeTypical DC voltage per unitNotes
VRLA / AGM (lead-acid)50 %200–500 cycles30–50 Wh/kg2–3 %−20 to +50 °C2 V / 6 V / 12 VMost common UPS battery; replace every 3–5 years
Gel (lead-acid)50–60 %300–700 cycles30–50 Wh/kg1–3 %−20 to +50 °C2 V / 6 V / 12 VBetter deep-cycle tolerance than AGM; no spill risk
Li-Ion (NMC)80 %1 000–2 000 cycles100–200 Wh/kg1–2 %0 to +45 °C3.6–3.7 V / moduleEmerging in data centre UPS; higher upfront cost
LiFePO₄ (lithium iron)80–90 %2 000–6 000 cycles80–160 Wh/kg< 1 %−20 to +60 °C3.2 V / moduleSafest Li chemistry; wide temp range; home and telecom
Nickel-Cadmium (NiCd)60–80 %1 000–2 000 cycles40–60 Wh/kg10–20 %−40 to +50 °C1.2 V / cellExtreme temperature tolerance; restricted in EU (REACH)

DOD vs. Cycle Life — Lead-Acid

Depth of discharge (DOD) has a dramatic effect on total cycle life for lead-acid batteries. Design for the shallowest practical DOD consistent with the required backup time.

DODApprox. cycle life (VRLA/AGM)Design recommendation
20 %1 500 – 2 000+ cyclesIdeal for daily cycling; size bank large
30 %1 000 – 1 500 cyclesGood for daily cycling with moderate bank size
50 %500 – 800 cyclesStandard for standby UPS applications (IEEE 485)
80 %200 – 300 cyclesAcceptable only for occasional emergency use
100 %< 100 cyclesAvoid — severe damage; voids manufacturer warranty

Temperature Derating — Lead-Acid

Battery capacity decreases significantly at low temperatures. The values below are approximate — always check the manufacturer datasheet for the actual capacity-vs-temperature curve.

TemperatureCapacity factor (VRLA/AGM)Capacity at 100 Ah ratedNotes
40 °C1.05 – 1.10~105 AhCapacity slightly higher; lifespan severely reduced
25 °C1.00 (reference)100 AhStandard rating temperature (IEEE 485)
20 °C0.96 – 0.98~97 AhMinimal derating; common indoor UPS room
10 °C0.85 – 0.90~87 Ah15 % derating — apply in unheated spaces
0 °C0.70 – 0.75~72 Ah25–30 % derating — outdoor enclosures in winter
−10 °C0.55 – 0.65~60 Ah40 % derating — consider heated enclosure
−20 °C0.40 – 0.50~45 AhSevere derating; AGM may not start at all

Common DC Bus Voltages

DC bus voltageTypical applicationBattery string (12 V cells)Standard reference
12 VConsumer UPS, home backup1 × 12 VManufacturer spec
24 VSmall UPS, solar systems2 × 12 V in seriesManufacturer spec
48 VTelecom, small DC UPS, home energy storage4 × 12 V in seriesETSI EN 300 132-2; ITU-T L.12
−48 VTelecom central offices (negative ground)4 × 12 V (negative ground)ETSI EN 300 132-2
120 V DCUtility / industrial UPS, switchgear control10 × 12 V in seriesIEEE 485; NFPA 70
240 V DCLarge data centre UPS, high-power systems20 × 12 V in seriesIEC 60896-2; IEEE 1188
380 V DCData centre DC distribution (emerging)Module-based (Li-Ion)IEC 60906-3; ETSI EN 300 132-3

Worked Example — Server Room Battery Sizing

Critical load: 5 000 W. Target runtime: 1 hour. DC bus: 48 V. Battery: 12 V / 100 Ah AGM. Inverter efficiency: 92 %. DOD: 50 %. Temperature derating: 90 %. Aging factor: 80 %.

Step 1 — Energy required: 5 000 W × 1 h ÷ 0.92 = 5 435 Wh

Step 2 — Combined derating: 0.50 (DOD) × 0.90 (temp) × 0.80 (aging) = 0.36 effective

Step 3 — Required Ah: 5 435 Wh ÷ (48 V × 0.36) = 315 Ah

Step 4 — Batteries in series: 48 V ÷ 12 V = 4 in series per string

Step 5 — Strings in parallel: 315 Ah ÷ 100 Ah = ⌈3.15⌉ = 4 strings

Step 6 — Total batteries: 4 series × 4 parallel = 16 batteries (12 V / 100 Ah AGM)

Actual bank capacity: 4 × 100 Ah = 400 Ah at 48 V = 19 200 Wh gross

Typical Runtime by Application

ApplicationTypical backup requirementPurpose
Server room UPS (IT shutdown)5 – 15 minutesGraceful shutdown or generator transfer
Data centre UPS (with generator)15 – 30 minutesGenerator start and transfer sequence
Data centre UPS (no generator)2 – 4 hoursFull work-day bridge until power restored
Telecom central office4 – 8 hoursRegulatory minimum; typically 8 h in EU (ETSI)
Critical medical / life-safety2 – 24 hoursRegulatory requirement; varies by jurisdiction
Home / SOHO backup30 min – 4 hoursBridging typical local outage duration
Remote / off-grid site24 – 72 hoursBetween generator fill cycles or solar recharge

Frequently Asked Questions

What is the correct C-rate for sizing a UPS battery?

Battery Ah ratings are stated at the C/10 (10-hour) rate. A UPS discharging in 15 minutes operates at C/4, and in 5 minutes at C/12 but in reverse (high current). At high discharge rates, available capacity is lower than the nameplate rating — use the manufacturer's discharge table for the actual runtime at your load. For example, a 100 Ah AGM battery may only deliver 65–70 Ah at C/2 rate. The estimator uses nameplate Ah; add a 20 % margin to compensate.

What does IEEE 485 say about battery sizing?

IEEE 485 (Recommended Practice for Sizing Lead-Acid Batteries for Stationary Applications) specifies sizing to 25 °C with specific gravity correction, a design margin of at least 10 % over calculated Ah, an aging factor of 1.25 (inverse of 80 % capacity at end-of-life), and DOD not to exceed 80 % of nameplate capacity. It is the primary reference for industrial UPS and utility battery rooms in North America.

When do I need a separate charger study?

The charger must restore the battery bank to 95 % charge within the site's specified recharge time (typically 8–12 hours). Charger current = Bank Ah × 1.15 ÷ recharge time (hours). For large banks (> 500 Ah) or fast recharge (< 4 h), the charger current can exceed 50–100 A — cable sizing, protection fusing and heat dissipation all require engineering review.

How do I handle ventilation for lead-acid batteries?

Lead-acid batteries off-gas hydrogen during charging. IEC 60896-2 and IEEE 1187 specify ventilation requirements to keep hydrogen below 1 % (LEL is 4 %). The minimum ventilation rate (m³/h) depends on battery count and charging current. Sealed VRLA/AGM batteries produce far less gas than flooded cells, but still require adequate ventilation in enclosed spaces. Never install in sealed, unventilated cabinets.

Can I add more batteries to extend runtime later?

Only if you add whole strings of identical batteries at the same age and state of health. Adding new batteries to an existing bank causes the new cells to be charged/discharged unequally — they will fail prematurely. Plan your battery room for the full future bank from day one, or plan a full bank replacement cycle.