Tool for calculating the energy output of a wind turbine given a number of different parameters.
- Blade length (radius): between 20 and 80m
- Wind speed: 0 to 75mph (cuts out below 8 and above 55mph)
- Altitude: 0 and 10000m
- Tower height: 20 and 200m
- Kilowatts produced
- Homes served (optional)
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$\rho$ - air density (see formula below) -
$A$ - blade sweep area (see formula below) -
$v$ - wind speed: between 3.6 m/s (8mph) and 24.6 m/s (55mph)
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$p$ - air pressure (see formula below) -
$R$ - air gas constant 287 J/kgK -
$T$ - temperature at altitude (see formula below)
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$L$ - Blade length: between 20 m and 80 m
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$g$ - gravitaional acceleration 9.8$m/s^2$ -
$R$ - air gas constant 287 J/kgK -
$\alpha$ - atmospheric lapse rate 0.0065 K/m -
$T$ - temperature at altitude -
$T_s$ - temperature at sea level -
$P_s$ - pressure at sea level 101,300 Pa.
The exponent
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$T_s$ - temperature at sea level assume 293°K (20°C) -
$\alpha$ - altitude: between 0 and 10,000 m -
$z$ - atmospheric lapse rate 0.0065 K/m
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$v_r$ - wind velocity at reference height -
$v_w$ - wind velocity with effect of wind shear (after calculation) -
$h$ - height of turbine: between 20 and 200 m -
$h_r$ - reference height (10 m) -
$\alpha$ - Hellman exponent (0.3)