1 MW Pumping Station Power System Cost Breakdown (Q3 2026 China Supplier Pricing)
1 MW Pumping Station Power System Cost Breakdown (Q3 2026 China Supplier Pricing) — itemized bill of materials and FOB pricing for a typical configuration.
Estimated total (FOB): $144,312 · 1000 kVA transformer
Bill of materials
| Item | Specification | Qty | Price (USD) |
|---|---|---|---|
| HV incoming panel (KYN28A-12-630-25) | 630 A / 25 kA · vacuum | 1 | $2,226 |
| Main transformer (SCB13-1000/10) | 1000 kVA · Dry-Type · Copper · SCB13 | 1 | $15,962 |
| LV incoming panel (GGD-1600) | 1600 A busbar · In 1443 A | 1 | $4,549 |
| LV feeder panel (GGD-1600) | distributes 6 circuits | 1 | $4,549 |
| PFC capacitor bank (200 kVAR) | automatic · GCK LV cabinet | 1 | $2,800 |
| Cable branch box (LV) (DFW-0.4) | 1-in / 4-out · 0.4 kV · 630 A | 1 | $630 |
| Series reactor (detuned) (CKSG-12.0/0.4) | 12.0 kVAR · 6% · 0.4 kV | 1 | $71 |
| Main feeder cable (TX→LV) (YJV 0.6/1kV 240 mm² ×4) | 4× 240 mm² Cu · ΔU 1.17% @ 80 m · $123.0/m | 4 | $39,360 |
| Feeder cable — Pump 1 (×6) (YJV 150 mm²) | 150 mm² Cu · 272 A · ΔU 1.4% · $86.0/m | 6 | $41,280 |
| Branch trunk cable (LV → branch box 1) (YJV 150 mm² ×2) | 2× 150 mm² Cu · 543 A · ΔU 1.4% · $86.0/m | 2 | $13,760 |
| Main busbar (Cu) (Cu 100×10) | 100×10 · 2000 A rating · ref $118/m | included | POA |
| Grounding electrode (Φ20mm × 2.5m rod) | R₁ 39.6 Ω → 13 rod(s) ≤ 4 Ω | 13 | $125 |
| Soft starter cabinet (×5) (160 kW) | Soft starter (3.0× In) | 5 | $19,000 |
| Pump units (motor + impeller) (160 kW) | centrifugal pump · duty/standby | 6 | POA |
| Control valves & actuators (DN (per line)) | flow control / isolation valves + actuators | 3 | POA |
Single-line diagram
How it was calculated
- Pumps: 6 × 160 kW = 960 kW connected
- Demand P = 960 × 0.7 = 672 kW
- Start method Soft starter: start kVA = 627 kVA → dip 3.8% (limit 15%)
- Fixed-speed energy = 4 × 160 × 0.85 × 4000 h = 2,176,000 kWh/yr
- VFD energy (affinity law) = 4 × 160 × 0.7³ × 4000 h = 878,080 kWh/yr
- Saving = 1,297,920 kWh/yr (60% ≈ $129,792/yr @ 0.1 $/kWh)
- Loads: P=960 kW, PF 0.85, 6 circuits
- Demand: 960 × 0.7 = 672 kW
- PFC: Qc = 672 × (0.620 − 0.329) = 196 kVAR → 200 kVAR bank
- Transformer: S = 672 ÷ 0.95 = 707.4 kVA → 1,000 kVA standard
- Loading: 707 ÷ 1,000 = 71% (good range)
- Voltage regulation: 71% × 6% × sinφ ≈ 1.3% at full load
What drives the cost
- Equipment — the transformer/switchgear/inverter is the largest single line item.
- Storage (where applicable) — batteries are the biggest swing factor.
- Copper & freight — copper-linked cabling and freight shift landed cost ±5–10%.
Frequently asked questions
Soft-starter or VFD — which is better for a pump station?
Soft starters suit constant-flow pumps where only the start is harsh; they cost 40-60% less than a VFD and have lower losses. VFDs pay off when flow varies (average flow below ~80% of rated) because pump power follows the affinity cube law — cutting speed 20% saves nearly 50% of energy. The calculator compares both and estimates payback on variable-speed operation.
How much energy can a VFD save on a pump?
Pump power varies with the cube of speed (affinity laws). Running at 80% speed uses about 51% of full-speed power; at 70% speed it is 34%. For a 160 kW pump running 4000 h/yr at 0.7 average flow, a VFD can save 40-50% energy versus throttling. The calculator quantifies the kWh and cost saving for your duty point.
What transformer size does a multi-pump station need?
Sum pump ratings, apply a simultaneity factor (0.6-0.8 for multiple pumps) and power factor (0.85-0.9), then select the next standard kVA. Six 160 kW pumps at 0.7 simultaneity and 0.88 pf need about 760 kVA, so select 800 kVA. Account for the largest pump starting; the calculator sizes the transformer and switchgear together.
What cable sizing rules apply to pump motor feeders?
Pump feeder cables are sized for ampacity (IEC 60364-5-52) and voltage drop, and to withstand the motor starting current. A 160 kW, 0.4 kV motor draws ~290 A full-load and ~5x on DOL start; the cable must carry the starting current briefly and keep steady-state drop under 5%. The calculator recommends the cross-section and checks the starting dip.
How do I compare fixed-speed vs variable-speed pump energy?
Fixed-speed pumps run at full speed and throttle flow (wasting head), while variable-speed pumps match speed to demand. For a duty point at 70% flow, variable speed cuts energy ~34%. The calculator takes annual operating hours, average flow and tariff to compute both energy costs and the simple payback of a VFD investment.
What protection does a pump motor need?
A pump motor needs overload (thermal), short-circuit, phase-loss and earth-fault protection, plus dry-run protection for submersible pumps. IEC 60947 and GB/T 14048 define the protection devices; motor starters integrate a contactor plus thermal relay. The calculator's BOM includes a motor soft-starter or VFD with integrated protection per pump rating.
Size your own configuration
Run the calculator for your exact load and get a full BOM + FOB price.
Open calculator Request a Quote