Intermediate

Fan Calculator — Fan Affinity Laws (Speed, Flow, Power)

Use the fan affinity laws to calculate how changing fan speed affects flow rate, static pressure, and shaft power — essential for sizing variable-frequency drives and estimating energy savings.

m³/h

Volumetric flow rate at initial speed

Pa

Fan total or static pressure at initial speed

kW

Motor shaft input power at initial speed

RPM

RPM

Target speed (e.g. with a variable-frequency drive)
New shaft power
4,320kW

Power scales as the cube of speed ratio: W₂ = W₁ × (N₂/N₁)³

Speed ratio N₂/N₁
1,2
New flow rate
1 200 m³/h
New static pressure
720 Pa
New shaft power
4,32 kW
Flow change
+20 %
Power change
+72,8 %
Flow rate (m³/h)1,200
Pressure (Pa)720
Power (kW × 100)432
Step by step
  1. 1

    Speed ratio N₂ ÷ N₁

    1 800 ÷ 1 500 = 1,2
  2. 2

    Ratio cubed

    1,2³ = 1,728
    Shaft power scales as the cube of the speed ratio — the cube law.
  3. 3

    New shaft power

    2,5 × 1,728 = 4,320
Les résultats sont des estimations fournies à titre d’information générale uniquement et ne constituent pas un avis professionnel — vérifiez toujours les résultats importants de manière indépendante avant de vous y fier. Lire l’avertissement complet.
Réponse rapide

Comment fonctionne cette calculatrice ?

Fan affinity laws: flow ∝ speed, pressure ∝ speed², power ∝ speed³. Enter initial flow, pressure, power, and both speeds. A 10% speed reduction cuts power by about 27%; a 20% cut saves about 49%. The cubic law makes VFDs on fans one of the most impactful energy-saving measures in HVAC.

Formule
Q₂ = Q₁ × (N₂/N₁) • P₂ = P₁ × (N₂/N₁)² • W₂ = W₁ × (N₂/N₁)³
How this is calculated

The fan affinity (similarity) laws describe how a centrifugal or axial fan's performance scales when its rotational speed changes, assuming the same impeller diameter and air density. The three relationships are: volumetric flow rate scales linearly with speed (Q ∝ N); static pressure scales with the square of speed (P ∝ N²); and shaft power scales with the cube of speed (W ∝ N³). These laws follow directly from dimensional analysis of the Navier–Stokes equations.

The cubic power law has a powerful engineering consequence: reducing a fan from 100% to 80% speed cuts power consumption to 0.8³ = 51.2% of the original — nearly half the energy — while delivering 80% of the flow. This is why variable-frequency drives (VFDs) on fans and pumps are one of the most cost-effective energy-saving measures in HVAC systems.

The laws are exact for geometrically similar fans operating at the same efficiency point and with incompressible flow (density-change effects become material above roughly Mach 0.3, or fan pressures above about 5 kPa). In practice, motor efficiency and mechanical losses also change with speed, so actual power savings are usually somewhat less than the cubic law predicts. Use manufacturer performance curves for final design.

Questions fréquentes

Mechanical power equals pressure times flow rate (W = P × Q). Since pressure scales as speed² and flow scales as speed, their product scales as speed³. This cube relationship makes even small speed reductions very effective at saving energy.

The speed ratio is 1200/1500 = 0.80. Power scales as 0.80³ = 0.512, so the fan uses about 51% of its original power — a saving of roughly 49%. Flow drops to 80% and pressure to 64% of original.

Yes. The same affinity laws (flow ∝ N, head ∝ N², power ∝ N³) apply to centrifugal pumps for the same reasons — they are known as the pump affinity laws and are used in the same way for variable-speed pump drives.

Aussi appelé

fan affinity laws calculator
fan speed power calculator
centrifugal fan law calculator
vfd fan energy savings calculator
fan flow rate speed calculator
hvac fan power calculator
fan rpm flow pressure calculator

APA

TG we-Calculate Editorial Team. (2026). Fan Calculator — Fan Affinity Laws (Speed, Flow, Power) [Online calculator]. TG we-Calculate. https://we-calculate.com/fr/calculator/fan-calculator

Chicago

TG we-Calculate Editorial Team. "Fan Calculator — Fan Affinity Laws (Speed, Flow, Power)." TG we-Calculate. 2026. https://we-calculate.com/fr/calculator/fan-calculator.

IEEE

TG we-Calculate Editorial Team, "Fan Calculator — Fan Affinity Laws (Speed, Flow, Power)," TG we-Calculate, 2026. [Online]. Available: https://we-calculate.com/fr/calculator/fan-calculator

BibTeX

@misc{wecalculate_fan_calculator, title = {Fan Calculator — Fan Affinity Laws (Speed, Flow, Power)}, author = {{TG we-Calculate Editorial Team}}, howpublished = {\url{https://we-calculate.com/fr/calculator/fan-calculator}}, year = {2026}, note = {TG we-Calculate} }

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