Office desktops
Eight workstations at about 120 W steady each—roughly 0.96 kW before monitors or PoE on the same feed.
Estimate total UPS load in kW from device counts and average watts—a device-watt roll-up. Not an UPS capacity / kVA frame picker (that is a separate page).
UPS load (kW) is the real power your protected equipment draws—not UPS nameplate kVA and not an Eaton/APC/CyberPower SKU pick. This vendor-neutral UPS load calculator multiplies device count × average watts ÷ 1000. Example: eight devices at 120 W = 960 W = 0.96 kW. Searching for an UPS capacity calculator (kW→kVA with PF/surge/growth)? Open the separate required UPS kVA page—this URL only does watts→kW. Workflow: (1) inventory kW here → (2) required kVA there → (3) OEM tools for frames. After load kW, you can also check minutes in UPS runtime.
Enter device count and average watts per device for an instant kW total.
960 W total from 8 devices at 120 W each.
Quick Examples
Estimates only. Verify with metering, nameplate review, and qualified engineering for critical designs.
Results
Total UPS load: 0.96 kW (960 W)
Default: 8 devices × 120 W. Adjust inputs to update.
Operational guidance
Light IT branch
Typical desktop or small-office envelope. Document device list and remeter after adds or moves.
Same watts per device; device count varies around your entry (highlighted row).
| Devices | Load (kW) |
|---|---|
| 4 | 0.48 |
| 6 | 0.72 |
| 8 (your count) | 0.96 |
| 10 | 1.20 |
| 12 | 1.44 |
Load rises with device count at fixed watts per device
Downstream: UPS capacity, N+1 redundancy, runtime, battery Ah sizing, bank layout, generator + UPS. Scenarios: Runtime presets, UPS for CCTV sizing, UPS applications on hub. Related: factory load, kW to kVA. Overview: UPS calculator hub.
| Device type | Typical steady watts | Load calculator |
|---|---|---|
| Desktop PC / workstation | ~120 W | |
| Monitor (LCD) | ~30 W | |
| Network / PoE switch (small) | ~60 W | |
| IP camera (PoE) | ~10 W | |
| NVR / DVR | ~50 W | |
| 1U / tower server | ~450 W |
Ranges are screening averages for inventory roll-ups—not brand models. Prefer clamp-meter or PDU readings for binding designs. For mixed devices, apply one line at a time or use Advanced extra watts.
This UPS load calculator is a vendor-neutral watts→kW screen from device counts—not an APC, Eaton, or CyberPower model picker. OEM selectors map to SKUs and discharge curves; use this page to build an honest kW inventory, then size kVA on the UPS capacity calculator and reconcile frames on manufacturer tools.
Eight workstations at about 120 W steady each—roughly 0.96 kW before monitors or PoE on the same feed.
Four servers at about 450 W each—about 1.8 kW; validate with rack PDU metering.
Six terminals at about 80 W each—about 0.48 kW; add printers or displays if on the same UPS.
Twelve seats at 90 W each—about 1.08 kW if all active at peak; apply diversity only with engineering sign-off.
Load (kW) = (Number of devices × Average watts per device + Extra branch load W) ÷ 1000. Extra watts apply in Advanced mode for monitors, PoE, or shared peripherals. See formula notes and worked examples below in the depth section.
Wrong page for that query. This URL only rolls up device watts → load kW. For ups capacity calculator / required kVA from load kW (PF, surge, growth), open /tools/ups-capacity-calculator.
No. This page only rolls up device watts to load kW. Required kVA, PF, surge, and growth belong on the required UPS kVA tool—keep that step as a separate URL for kVA sizing searches.
Measured steady-state watts are best when available. Nameplate values are conservative upper bounds; discuss derating with your engineer before locking UPS kVA.
No. Brand selectors recommend SKUs from their catalog. This page is a vendor-neutral device-watts → kW roll-up. After you have kW, use the UPS capacity calculator for required kVA, then confirm frames on OEM tools.
No. This step estimates real power in kW. Power factor and apparent power are handled in the UPS capacity calculator.
Open the UPS capacity calculator with load kW, power factor, surge factor, growth margin, utilization, and redundancy policy.
Only if the average watt value honestly represents the blend. For heterogeneous loads, prefer itemized schedules.
Factory load tools estimate broader site demand. Use this step for a UPS-scoped kW envelope, then reconcile with distribution studies.
kW = (devices × average W + extra branch W) ÷ 1000. Example: 8 devices at 120 W each → 960 W → 0.96 kW. Use measured steady-state watts per device; add monitors or PoE in Advanced mode under Extra branch load (W). Power factor and kVA sizing come next in the UPS capacity calculator.
The UPS load value is the total real power your protected equipment draws—shown here as Total UPS load (kW). It is not UPS nameplate kVA, battery Ah, or runtime minutes. Carry this kW into capacity sizing, then runtime or battery steps in the UPS hub workflow.
Industrial UPS load inventory begins with a defensible estimate of real power (kW) on the protected bus for the operating cases you care about—normal utility, transfer to generator, or on-battery support. This calculator uses a compact device model: you supply a representative device count and an average watt draw per item, we aggregate to total watts, then convert to kilowatts for the next workflow step (the UPS capacity calculator).
The model favors speed and clarity over full site metering. It works well for relatively uniform fleets—office IT racks, desktop groups, or small control rooms—where loads are similar and diversity is understood. When large motors, VFDs, or intermittent peaks dominate, treat the output as a bracket estimate and refine with measured data or itemized nameplate review under your licensed engineer.
After kW is established here, you translate to required UPS apparent power using power factor, surge allowance, growth margin, and target utilization in the UPS capacity calculator, then validate backup time against stored energy in the runtime and battery amp-hour tools. Document assumptions so future expansions can be compared against the original sizing basis.
Advanced: refine average watts per device using metering or nameplate review before locking UPS kVA downstream.
Total load (kW) = (Number of devices × Average watts per device) ÷ 1000
Average watts should reflect steady-state draw where possible; if lumped averages hide motor starting, add explicit allowances upstream of this step.
This is the same watt-to-kilowatt scaling used in broader facility load roll-ups—here we isolate only the branch you intend to place on UPS output.
Eight devices at 120 W steady each gives 960 W, which is 0.96 kW. Carry 0.96 kW forward to UPS capacity sizing and keep margin for monitors or PoE switches if those ride on the same protected feed.
Twelve positions at 90 W each yields 1.08 kW if usage is simultaneous. If only half the desks are active at peak, your engineer may apply a diversity factor—but this tool intentionally leaves diversity to professional judgement outside the simple average model.
One device at 2,500 W is 2.5 kW. Pair this result with inrush data from the manufacturer before selecting UPS kVA; the kW figure alone does not capture starting apparent power.