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Wind Turbine Power Calculator

Result

42,336.00W

Result: 42,336.00 W

Wind power rises with the cube of the wind speed, so doubling the wind gives eight times the output. A 100 m² rotor at 12 m/s with a power coefficient of 0.4 delivers about 42.3 kW. No rotor can pass 16/27 of the wind's power — the Betz limit, roughly 0.593.

The numbers at a glance

Held fixed: Air density 1.225 kg/m³, Rotor swept area 100.0 m², Wind speed 12.0 m/s.

Power coefficient CpResult (W)
0.30031,752.00
0.35037,044.00
0.400Your value42,336.00
0.45047,628.00
0.50052,920.00

Worked examples

Case 1
Air density
1.225kg/m³
Rotor swept area
100
Wind speed
12m/s
Power coefficient Cp
0.4

42,336.00W

Open with these values
Case 2
Air density
1.2kg/m³
Rotor swept area
50
Wind speed
8m/s
Power coefficient Cp
0.45

6,912.00W

Open with these values
Case 3
Air density
1.225kg/m³
Rotor swept area
100
Wind speed
12m/s
Power coefficient Cp
0.593

62,763.12W

Open with these values

How it's calculated

P = ½ × ρ × A × v³ × Cp

  1. StepAir density: 1.225 kg/m³ at sea level and 15 °C, less at altitude.
  2. StepSwept area: π × r² for a rotor of radius r, in square metres.
  3. StepWind speed in m/s — divide km/h by 3.6 — and it enters cubed.
  4. ResultPower coefficient: 0.35 to 0.45 in practice, never above 0.593.

Reference table

Density, area, speed, CpWhat it showsPower
1.225, 100, 0, 0.4No wind, no power0
2, 1, 1, 0.5Unit check: one square metre at 1 m/s0.5
1.225, 1, 10, 0.5One square metre at 10 m/s306.25
1.2, 50, 8, 0.45Small turbine on a warm day6912
1.225, 100, 12, 0.4Realistic rotor and coefficient42336
1.225, 100, 12, 0.593Same rotor at the Betz limit62763.12

Questions

How do I calculate wind turbine power?

Use the wind power equation P = ½ × ρ × A × v³ × Cp. Multiply half the air density by the swept area, the cube of the wind speed and the power coefficient. With kg/m³, m² and m/s the answer is in watts — 1.225, 100 m², 12 m/s and 0.4 come to about 42.3 kW.

What is the power coefficient Cp?

It is the fraction of the wind's power the turbine actually extracts, between 0 and 1. It can never exceed the Betz limit of 0.593, because the air has to keep moving to leave the rotor. Modern utility-scale turbines reach roughly 0.35 to 0.45 in practice.

What is the Betz limit?

It is the theoretical maximum share of the wind's kinetic energy a turbine can turn into mechanical power: 16/27, about 59.3 %. Albert Betz derived it in 1919 for any open-flow rotor, since slowing the air completely would stop the flow through it. It is a derived bound rather than a measurement, which is why the coefficient field here stops at 0.593.

Why does doubling the wind speed give eight times the power?

Because the wind speed enters cubed. Power scales with v³, so twice the speed is 2³ = 8 times the output and three times the speed is 27 times. That is why a few extra metres per second of average wind decide whether a site is worth building on.

Where does 1.225 kg/m³ come from?

It is the air density of the International Standard Atmosphere at sea level, 15 °C and 1013.25 hPa. Warmer air and higher ground are thinner, so the same rotor yields less; on a hot day at 1000 m you might use about 1.1 kg/m³ instead. The field is editable for exactly that reason.

Which units should I use?

SI throughout: kg/m³ for density, m² for the swept area and m/s for the wind speed, which gives power in watts. If your wind speed is in km/h, divide by 3.6 first. A thousand watts make one kilowatt, so 42336 W is 42.3 kW.

Sources and last check

  1. en.wikipedia.org

Information, not professional advice.